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	<id>https://proteopedia.org/api.php?action=feedcontributions&amp;feedformat=atom&amp;user=Elliott+Wyatt</id>
	<title>Proteopedia - User contributions [en]</title>
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	<updated>2026-10-01T13:19:58Z</updated>
	<subtitle>User contributions</subtitle>
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	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873699</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873699"/>
		<updated>2013-12-07T04:37:39Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
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{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|right|300px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
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==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. &amp;lt;ref&amp;gt;21771585&amp;lt;/ref&amp;gt;. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;350&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human Glutathione Synthetase, [[2HGS]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt;. &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873698</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873698"/>
		<updated>2013-12-07T04:36:59Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|right|300px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. &amp;lt;ref&amp;gt;21771585&amp;lt;/ref&amp;gt;. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;350&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human Glutathione Synthetase, [[2HGS]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt;. &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873695</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873695"/>
		<updated>2013-12-07T04:36:01Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|right|300px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. &amp;lt;ref&amp;gt;21771585&amp;lt;/ref&amp;gt;. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;350&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human Glutathione Synthetase, [[2HGS]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt;. &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873693</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873693"/>
		<updated>2013-12-07T04:35:38Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|right|400px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. &amp;lt;ref&amp;gt;21771585&amp;lt;/ref&amp;gt;. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;350&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human Glutathione Synthetase, [[2HGS]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt;. &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873647</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873647"/>
		<updated>2013-12-07T04:01:58Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. &amp;lt;ref&amp;gt;21771585&amp;lt;/ref&amp;gt;. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt;. &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873628</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873628"/>
		<updated>2013-12-07T03:49:53Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. &amp;lt;ref&amp;gt;21771585&amp;lt;/red&amp;gt;). The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt;. &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873625</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873625"/>
		<updated>2013-12-07T03:48:30Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. &amp;lt;ref&amp;gt;21771585&amp;lt;/red&amp;gt;). The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;.===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;.===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;.==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt;. &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;.==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873620</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873620"/>
		<updated>2013-12-07T03:44:21Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt; &amp;lt;ref&amp;gt;21771585&amp;lt;/red&amp;gt;). The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt; &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873619</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873619"/>
		<updated>2013-12-07T03:42:57Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;. &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt;. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway &amp;lt;ref&amp;gt;http://www.ncbi.nlm.nih.gov/protein/NP_000169.1&amp;lt;/ref&amp;gt; &amp;lt;ref&amp;gt;21771585&amp;lt;/red&amp;gt;). The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi) &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458 &amp;lt;ref&amp;gt;PMID:21771585&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45 &amp;lt;ref&amp;gt;PMID:21683691&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad &amp;lt;ref&amp;gt;PMID:20800579&amp;lt;/ref&amp;gt;===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants &amp;lt;ref&amp;gt;PMID:19672693&amp;lt;/ref&amp;gt;==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome &amp;lt;ref&amp;gt;PMID:10369661&amp;lt;/red&amp;gt; &amp;lt;ref&amp;gt;http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&amp;lt;/ref&amp;gt;==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873578</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1873578"/>
		<updated>2013-12-07T03:19:44Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway(6). &#039;&#039;&#039;Glutathione&#039;&#039;&#039; is considered to be one of the most abundant and important antioxidants present across many bacterial (cyano- and proteobacteria), and all plant &amp;amp; mammalian cells (1). In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, toxins in the blood, and even amino acid transport(5).&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione Synthetase&#039;&#039;&#039; is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway(1,2). The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi)(3). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine(2). &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the &#039;&#039;&#039;negative cooperativity&#039;&#039;&#039; of the second step of the cycle -- the step catalyzed by GSS(2). Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458(2)===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The &#039;&#039;&#039;Asp458&#039;&#039;&#039; residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (&#039;&#039;&#039;D458A&#039;&#039;&#039;), asparagine (&#039;&#039;&#039;D458N&#039;&#039;&#039;), or arginine (&#039;&#039;&#039;D458R&#039;&#039;&#039;) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the &#039;&#039;&#039;Michaelis-Menten&#039;&#039;&#039; constant (Km) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45(5)===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Val44&#039;&#039;&#039; and &#039;&#039;&#039;Val45&#039;&#039;&#039; are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad(3)===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – &#039;&#039;&#039;Gly369&#039;&#039;&#039;, &#039;&#039;&#039;Gly370&#039;&#039;&#039;, and &#039;&#039;&#039;Gly371&#039;&#039;&#039;. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants(6)==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome(4)(7)==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with &#039;&#039;&#039;Alzheimers&#039;&#039;&#039; and &#039;&#039;&#039;Parkinsons&#039;&#039;&#039;, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed &#039;&#039;&#039;5-oxoprolinuria&#039;&#039;&#039;. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GSH&#039;&#039;&#039; &#039;&#039;&#039;deficiency&#039;&#039;&#039; has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
3. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
4. Polekhina G, Board PG, Gali RR, Rossjohn J, Parker MW. 1999. Molecular basis of glutathione synthetase deficiency and a rare gene permutation event. EMBO Jour, 18: 3204-3213. doi: 10.1093/emboj/18.12.3204&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;br /&gt;
&lt;br /&gt;
7. http://ghr.nlm.nih.gov/condition/glutathione-synthetase-deficiency&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_761&amp;diff=1872593</id>
		<title>Sandbox Reserved 761</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_761&amp;diff=1872593"/>
		<updated>2013-12-05T16:25:05Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
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{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
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&amp;lt;Structure load=&#039;1HWZ&#039; size=&#039;500&#039; frame=&#039;true&#039; align=&#039;right&#039; caption=&#039;Glutamate Dehydrogenase complexed with NADPH, Glutamate, and GTP&#039; scene=&#039;Insert optional scene name here&#039;/&amp;gt;&lt;br /&gt;
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&lt;br /&gt;
==&#039;&#039;&#039;Glutamate Dehydrogenase&#039;&#039;&#039;==&lt;br /&gt;
&lt;br /&gt;
[[Image:traces.jpg|frame|left|Figure 1. Image of Glutamate Dehydrogenase]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutamate Dehydrogenase&#039;&#039;&#039; (GDH) is a homohexameric enzyme found in all organisms that catalyses the reversible oxidative deamination of L-glutamate to α-ketoglutarate, and vice versa using NAD+ and/or NADP+ as coenzyme. Located in the mitochondria, GDH plays a key role in urea synthesis, nitrogen and glutamate (Glu) metabolism, and the energy homeostasis. In humans,GDH is expressed at high levels in liver, brain, pancreas and kidney. Acting as an oxidoreductase (Enzyme Class I) , GDH catalyzes the reversible NAD (P)+-linked oxidative deamination of L-glutamate into alpha ketoglutarate and ammonia in two steps.  The first step involves a Schiff base intermediate being formed between ammonia and alpha ketoglutarate.  This Schiff base intermediate is crucial because it establishes the alpha carbon atom in glutamate’s stereochemistry.  The second step involves the Schiff base intermediate being protonated, which is done by the transfer of a hydride ion from NADPH resulting in L-glutamate.  GDH is unique because it is able to utilize both NAD+ and NADP+ &amp;lt;ref&amp;gt;Stryer (Ed.). Biochemistry (5th Ed.) 2002. W.H. Freeman and Company, New York.&amp;lt;/ref&amp;gt;.  NADP+ is utilized in the forward reaction of alpha ketogluterate and free ammonia, which are converted to L-glutamate via a hydride transfer from NADPH to glutamate (15).  NAD+ is utilized in the reverse reaction, which involves L-glutamate being converted to alpha ketoglutarate and free ammonia via an oxidative deamination reaction &amp;lt;ref&amp;gt;PMID:9405044&amp;lt;/ref&amp;gt;.  The extensive production of ammonia by peripheral tissue or glutamate dehydrogenase is not allowed because of the highly toxic effects of circulating ammonia in cells.  As a result, the ammonia produced in the reverse reaction of GDH is excreted as NH4+ in the urine, by first going through the urea cycle.&lt;br /&gt;
&lt;br /&gt;
==Glutamate Dehydrogenase Structure==&lt;br /&gt;
&lt;br /&gt;
GDH is a homohexamer of 505 residues with a molecular weight of 55.638 KDa &amp;lt;ref&amp;gt;http://www.rcsb.org/pdb&amp;lt;/ref&amp;gt;. The overall &amp;lt;scene name=&#039;56/564037/Secondary_structures/1&#039;&amp;gt;secondary structures&amp;lt;/scene&amp;gt; of GDH is composed of eighteen &amp;lt;font color=&amp;quot;#ff0080&amp;quot;&amp;gt;&#039;&#039;&#039;alpha helices&#039;&#039;&#039;&amp;lt;/font&amp;gt; and thirteen &amp;lt;font color=&amp;quot;#d0a000&amp;quot;&amp;gt;&#039;&#039;&#039;beta strands&#039;&#039;&#039;&amp;lt;/font&amp;gt;, which are both parallel and anti-parallel and flanked by a layer of alpha helices &amp;lt;ref&amp;gt;http://www.rcsb.org/pdb&amp;lt;/ref&amp;gt;. &lt;br /&gt;
The monomer unit of GDH is essentially two trimers of six identical subunits containing &amp;lt;scene name=&#039;56/564037/Domains/1&#039;&amp;gt;two distinct domains&amp;lt;/scene&amp;gt;—the Glutamate (Glu) binding domain at the N terminus and the NAD binding doman—and a 48-residue antenna-like projection that extends from the top of each NAD binding domain, separated by a large active site cleft &amp;lt;ref&amp;gt;PMID:11258921&amp;lt;/ref&amp;gt;. The antenna consists of an ascending helix and a descending random coil strand that contains a small α-helix toward the C-terminal end of the strand. Domain I is made up of residues 4-181 and 400-421, and is responsible for directing the assembly of the subunits into a hexamer.  Domain I is colored blue. Domain II makes up the glutamate-binding domain, and is composed of mainly beta sheets involving residues 182-399, which is colored orange &amp;lt;ref&amp;gt;PMID:16285734&amp;lt;/ref&amp;gt;.  Domain I is also called the C-domain, whereas the Domain II is called the N-domain &amp;lt;ref&amp;gt;PMID:11258921&amp;lt;/ref&amp;gt;. The NAD+ cofactor binds at the C-terminal end of the parallel beta strands in the N-domain, lying in the cleft between the N and C-domains.  The glutamate substrate binds deep in this cleft, with the side chain of the glutamate lying in a pocket on the enzyme surface.  Residues 193-204, and 383-393 are essential for the glutamate to bind in the cleft &amp;lt;ref&amp;gt;PMID:9405044&amp;lt;/ref&amp;gt;. These residues are colored &amp;lt;scene name=&#039;56/564037/Domains1/1&#039;&amp;gt;green&amp;lt;/scene&amp;gt; &amp;lt;ref&amp;gt;PMID:9405044&amp;lt;/ref&amp;gt;.   &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:GDH1.jpg|frame|left|Figure 2. Each domain is colored differently - Glu-BD, NAD(P)-BD, antenna, the pivot helix. The allosteric regulators are shown as sphere models. This particular structure of GDH is a combination of two X-ray structures - one with a bound GTP (1HWZ) and the second one with a bound ADP (1NQT). Although not real, this structure shows the relative position of the allosteric effectors when bound to GDH. NADPH and Glu are shown as well.]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:closed.jpg|frame|right|Figure 3. When GDH is bound to Glutamate (blue) it&#039;s cleft is closed. ]]&lt;br /&gt;
&lt;br /&gt;
Located on top of the glutamate binding domain, these NAD+ binding domains rotate down upon the substrate and coenzyme to initiate catalysis.  The forty eight-residue “antenna” that extends from the top of the NAD+ binding domain undergoes conformational changes as the cleft of the active site opens and closes &amp;lt;ref&amp;gt;PMID:12653548&amp;lt;/ref&amp;gt;. When GDH is not bound by glutamate its cleft is open, however, when GDH is bound to glutamate it is closed. This position difference between the two domains allows the cleft to be closed, which brings the C4 of the nicotinamide ring and the alpha carbon of the glutamate substrate into the appropriate orientation for a hydride transfer to occur. Residues 200-206, 375-379, and 421-423 are critical for the control of the hinges that open or close the cleft between the two domains &amp;lt;ref&amp;gt;PMID:9405044&amp;lt;/ref&amp;gt;. These residues are colored &amp;lt;scene name=&#039;56/564037/Open_cleft2/1&#039;&amp;gt;green.&amp;lt;/scene&amp;gt; The residues that form this hinge, which allow the cleft to open or close are both near and far from the active site.  The &amp;lt;scene name=&#039;56/564037/Active_site_final/1&#039;&amp;gt;active site&amp;lt;/scene&amp;gt; of GDH is composed of residues: 209-210, 213, 217, 261, 265, 289, 292, 450. &lt;br /&gt;
&lt;br /&gt;
The N-terminal glutamate (Glu) binding domains, composed of mainly beta sheets,are mainly responsible in the build up of the core structure of the hexamer, a stacked dimer of trimers. The NAD+ binding domain and Glu binding domain form the catalytic cleft. During substrate binding, the NAD+ binding domain moves significantly. This movement has two components, rotating along the long axis of a helix at the back of the NAD+ binding domain, called &amp;quot;the pivot helix&amp;quot;, and twisting about the antenna in a clockwise fashion. A comparison of the open and closed conformations of GDH reveals changes in the small helix of the descending strand of the antenna, which seems to recoil as the catalytic cleft opens &amp;lt;ref&amp;gt;PMID:12054821&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
The Glu binding domains of the monomers are position as such that the rotation about the pivot helix in each monomer is not restricted. The antennae from three subunits within the trimers wrap around each other and undergo conformational changes as the catalytic cleft opens and closes. The antenna serves as an intersubunit communication conduit during negative cooperativity and allosteric regulation.&lt;br /&gt;
&lt;br /&gt;
==Glutamate Dehydrogenase Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:GDH.jpg|frame|left|250px|Figure 4. Mechanism of Glutamate Dehydrogenase]]&lt;br /&gt;
The first step in the mechanism for catalytic activity of GDH is the deprotonation of the α-amino group of glutamate via Asp 165, which acts as a general base.  Next, a hydride transfer to NAD+ occurs, forming a Schiff base intermediate &amp;lt;ref&amp;gt;PMID:8263917&amp;lt;/ref&amp;gt;.  During the first step a large movement between C-domain and N-domain occurs, which closes the cleft and brings C4 of the nicotinamide ring and the α-carbon of the substrate into the correct position for a hydride transfer &amp;lt;ref&amp;gt;PMID:9405044&amp;lt;/ref&amp;gt;.  The second step in the mechanism of GDH involves the attack of a water molecule on the Schiff base intermediate. This step is enhanced by Lys 125.  The direction of the attack is very specific, so that the stereochemistry of the developing carbinolamine will be the L isomer and not the D isomer.  During the generation of the carbinolamine intermediate and its conversion to alpha ketoglutarate, residue Asp 165 is very crucial for the transfer of the protons to and from the substrate.  The final step that GDH catalyzes involves the loss of a single proton from each Lys 125 and Asp 165, which is transferred from water to GDH &amp;lt;ref&amp;gt;PMID:8263917&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Regulation of Glutamate Dehydrogenase==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GTP:&#039;&#039;&#039;&lt;br /&gt;
*GTP is a potent inhibitor for the reaction and binds at the base of the antenna, wedged in between the NAD binding domain and the pivot helix. This binding site is only available for GTP binding when the catalytic cleft is closed. Therefore, after GTP binds to the &#039;closed&#039; conformation it is more difficult for the &#039;mouth&#039; to open and release either NAD+ and NADP+ as coenzyme &amp;lt;ref&amp;gt;D&#039;Mello, J. P. F.. &amp;quot;Glutamate Dehydrogenase.&amp;quot; Amino Acids in Human Nutrition and Health. 2012. 1-23. Print&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;GDP:&#039;&#039;&#039;&lt;br /&gt;
* GDP is an activator. &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;ADP:&#039;&#039;&#039;&lt;br /&gt;
*In the reductive amination reaction, ADP is a potent activator at low pH and low substrate concentration. At pH 6.0, high concentrations of α-ketoglutarate and NADH, inhibit the reaction. This substrate inhibition is alleviated by ADP. Therefore, while GTP and glutamate bind synergistically with NADH to inhibit GDH, ADP activates the reaction by decreasing the affinity of the active site. However, under conditions where the enzyme is not saturated (e.g. low substrate concentrations), this loss in binding affinity causes inhibition. &amp;lt;ref&amp;gt;D&#039;Mello, J. P. F.. &amp;quot;Glutamate Dehydrogenase.&amp;quot; Amino Acids in Human Nutrition and Health. 2012. 1-23. Print&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
*Inhibition by high [ADP] is due to competition between ADP and the adenosine moiety of the coenzyme at the active site 1 &amp;lt;ref&amp;gt;D&#039;Mello, J. P. F.. &amp;quot;Glutamate Dehydrogenase.&amp;quot; Amino Acids in Human Nutrition and Health. 2012. 1-23. Print&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&#039;&#039;&#039;NADH:&#039;&#039;&#039;&lt;br /&gt;
*NADH, is another major allosteric inhibitor of GDH. &amp;lt;ref&amp;gt;D&#039;Mello, J. P. F.. &amp;quot;Glutamate Dehydrogenase.&amp;quot; Amino Acids in Human Nutrition and Health. 2012. 1-23. Print&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;NAD+:&#039;&#039;&#039;&lt;br /&gt;
*This oxidized coenzyme binding causes activation. &amp;lt;ref&amp;gt;D&#039;Mello, J. P. F.. &amp;quot;Glutamate Dehydrogenase.&amp;quot; Amino Acids in Human Nutrition and Health. 2012. 1-23. Print&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;ATP:&#039;&#039;&#039;&lt;br /&gt;
Different concentration levels of ATP have different effects on GDH activity:&lt;br /&gt;
*Low [ATP] causes inhibition due to mediated through the GTP binding site. &amp;lt;ref&amp;gt;PMID:11903050&amp;lt;/ref&amp;gt;.&lt;br /&gt;
*Intermediate [ATP] causes activation, mediated through the ADP effector site. &amp;lt;ref&amp;gt;PMID:11903050&amp;lt;/ref&amp;gt;.&lt;br /&gt;
*High [ATP] concentration causes inhibition due to a competition between ATP and the adenosine moiety of the coenzyme at the active site &amp;lt;ref&amp;gt;PMID:11903050&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
==Implicatons==&lt;br /&gt;
&lt;br /&gt;
[[Image:Implications.jpg|frame|left|Figure 5. This schematic shows how the loss GTP inhibition can cause the hyperstimulated secretion of insulin (top) and the elevated serum levels of ammonium (bottom). In the pancreas, the loss of GTP inhibition increases the flux of glutamate to the Krebs cycle, leading to elevated ATP levels and secretion of insulin. In the liver, not only does accelerated catabolism increase the levels of ammonium, but the lower levels of glutamate also decrease the production of N-acetylglutamate.]] Hyperosmolar hyperglycemic state (HHS) was one of the first diseases that clearly linked GDH regulation to insulin and ammonia homeostasis. Recent studies demonstrate that the activation of GDH was tightly correlated with increased glutaminolysis and release of insulin. HHS syndrome is caused by the loss of GTP regulation of GDH. Children with HHS have increased β-cell responsiveness to leucine and susceptibility to hypoglycemia following high protein meals. This is due to uncontrolled catabolism of amino acids yielding high ATP levels that stimulate insulin secretion and high serum levels of ammonium. The elevation of serum ammonia levels induces an altered regulation of GDH, leading to increased ammonia production from glutamate oxidation. In addition to that, it can cause impaired urea synthesis by carbmoylphosphate synthetase (CPS) due to reduced formation of N-actyl-glutamate (activator) from glutamate (figure 4). This genetic lesion disrupts the regulator linkage between glycolysis and amino acid catabolism. &amp;lt;ref&amp;gt;D&#039;Mello, J. P. F.. &amp;quot;Glutamate Dehydrogenase.&amp;quot; Amino Acids in Human Nutrition and Health. 2012. 1-23. Print&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
==Applications==&lt;br /&gt;
GDH can be measured in a medical laboratory to evaluate the liver function. Elevated blood serum GDH levels indicate liver damage and GDH plays an important role in the differential diagnosis of liver disease, especially in combination with aminotransferases. GDH is localised in mitochondria, therefore practically none is liberated in generalised inflammatory diseases of the liver such as viral hepatitides. Liver diseases in which necrosis of hepatocytes is the predominant event, such as toxic liver damage or hypoxic liver disease, are characterised by high serum GDH levels. GDH is important for distinguishing between acute viral hepatitis and acute toxic liver necrosis or acute hypoxic liver disease, particularly in the case of liver damage with very high aminotransferases. In clinical trials, GDH can serve as a measurement for the safety of a drug.&lt;br /&gt;
&lt;br /&gt;
==Isozymes==&lt;br /&gt;
*GLUD1&lt;br /&gt;
*GLUD2&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{{reflist}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Dimerization_site_GSS.jpg&amp;diff=1872567</id>
		<title>File:Dimerization site GSS.jpg</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Dimerization_site_GSS.jpg&amp;diff=1872567"/>
		<updated>2013-12-05T14:22:53Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
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&lt;div&gt;Shown in purple is the site of dimerization formed by the two homogenous protein subunits.&lt;br /&gt;
&lt;br /&gt;
Image borrowed from the NCBI databank for non-profit and educational purposes only. I claim no credit for the image shown. All credit goes to Slavens, et al (2011) at the following article:&lt;br /&gt;
&lt;br /&gt;
Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Atp_binding.jpg&amp;diff=1872566</id>
		<title>File:Atp binding.jpg</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Atp_binding.jpg&amp;diff=1872566"/>
		<updated>2013-12-05T14:21:16Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;Borrowed from the NCBI databank for non-profit and educational purposes. I claim no credit for the image shown. All credit goes to Brown, et al (2011) at the following article:&lt;br /&gt;
&lt;br /&gt;
Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872481</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872481"/>
		<updated>2013-12-05T02:37:22Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed 5-oxoprolinuria. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
GSH deficiency has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss&amp;lt;/i&amp;gt; gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872475</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872475"/>
		<updated>2013-12-05T02:07:38Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glutathione Deficiency Syndrome==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a very rare metabolic deficiency in which there is a large build up of 5-oxoproline in the urine - termed 5-oxoprolinuria. It is so rare that, as of 2006, it had been diagnosed in less than 100 people worldwide.&lt;br /&gt;
&lt;br /&gt;
GSH deficiency has been sub-divided into three forms: Mild, Moderate, and Severe. Mild deficiencies usually result in what is known as hemolytic anemia, and is a result of the degradation of red blood cells. Rarely, mild GSH deficiencies can result in 5-oxoprolinuria. More moderate GSS deficiencies will result in a higher likelihood of developing 5-oxoprolinuria, hemolytic anemia, and metabolic acidosis - a condition in which the blood pH is lower than the homeostatic pH of 7 - shortly after birth. Finally, individuals with severe GSH deficiencies experience severe neurological symptoms in addition to those associated with moderate GSH deficiencies. Slowed physical movements, reactions, and speech, as well as intellectual retardation and a loss of coordination are those frequently associated with severe GSH deficiency. &lt;br /&gt;
&lt;br /&gt;
Studies suggest that the rarity of this disorder can be attributed to the fact it is autosomal recessive and thus both copies of the cell&#039;s chromosome must contain the genetic coding for the disorder. Each of the parents must carry a single copy of the mutated &amp;lt;i&amp;gt;gss gene, thus displaying no physical symptoms, and both must pass their mutated copy on to the child. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872467</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872467"/>
		<updated>2013-12-05T01:25:20Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872465</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872465"/>
		<updated>2013-12-05T01:24:38Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;&amp;lt;font color=&#039;yellow&#039;&amp;gt;Glycine Triad&amp;lt;/font&amp;gt;&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872464</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872464"/>
		<updated>2013-12-05T01:20:59Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872463</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872463"/>
		<updated>2013-12-05T01:19:35Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “&amp;lt;scene name=&#039;56/564047/Glycine_triad/1&#039;&amp;gt;Glycine_Triad&amp;lt;/scene&amp;gt;” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Dimerization_site_GSS.jpg&amp;diff=1872451</id>
		<title>File:Dimerization site GSS.jpg</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Dimerization_site_GSS.jpg&amp;diff=1872451"/>
		<updated>2013-12-05T01:09:19Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: Shown in purple is the site of dimerization formed by the two homogenous protein subunits.&lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;Shown in purple is the site of dimerization formed by the two homogenous protein subunits.&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Atp_binding.jpg&amp;diff=1872450</id>
		<title>File:Atp binding.jpg</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Atp_binding.jpg&amp;diff=1872450"/>
		<updated>2013-12-05T01:08:23Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872448</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872448"/>
		<updated>2013-12-05T01:07:10Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “Glycine Triad” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&amp;lt;/StructureSection&amp;gt;&lt;br /&gt;
==References==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872447</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872447"/>
		<updated>2013-12-05T01:06:44Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “Glycine Triad” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872445</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872445"/>
		<updated>2013-12-05T01:03:27Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;StructureSection load=&amp;quot;2hgs&amp;quot; size=&amp;quot;400&amp;quot; color=&amp;quot;&amp;quot; frame=&amp;quot;true&amp;quot;  spin=&amp;quot;on&amp;quot; Scene=  align=&amp;quot;right&amp;quot; caption=&#039;Human glutathione synthetase (GSS), [[2hgs]] &#039; &amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “Glycine Triad” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872444</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872444"/>
		<updated>2013-12-05T01:02:44Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “Glycine Triad” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872443</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872443"/>
		<updated>2013-12-05T01:02:24Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Image:Dimerized_color.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
[[Image:atp_binding.jpg|left|200px]]&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
[[Image:dimerization_site_GSS.jpg|right|200px]]&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “Glycine Triad” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Dimerized_color.jpg&amp;diff=1872442</id>
		<title>File:Dimerized color.jpg</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Dimerized_color.jpg&amp;diff=1872442"/>
		<updated>2013-12-05T01:00:24Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;== Licensing ==&lt;br /&gt;
{{subst:Non-commercial from license selector}}&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872441</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872441"/>
		<updated>2013-12-05T00:53:16Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “Glycine Triad” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
Though reduced levels of GSH have been observed in patients with Alzheimers and Parkinsons, inborn errors in the endogenous GSS enzyme resulting in significantly low levels of GSH is believed to be the cause of a metabolic deficiency termed 5-oxoprolinuria. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872439</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872439"/>
		<updated>2013-12-05T00:50:43Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
===Glycine Triad===&lt;br /&gt;
&lt;br /&gt;
As stated previously, the catalytic active site of GSS is composed of the G-loop, S-loop, and A-loop. The G-loop has been termed the “Glycine Triad” due to the contribution of three glycine residues in this loop to the enzymatic activity of GSS – Gly369, Gly370, and Gly371. While all three residues are essential to the activity of the enzyme, kinetic experiments have shown Gly369 and Gly370 to have much more critical roles than Gly371. G369V and G370V variants were found to contain a mere 0.7% and 0.3% of the activity of the wild type GSS enzyme, respectively. G371V mutants still contained approximately 13% of the wild type activity, indicating a level of importance similar to the Asp458 residue of the A-loop. These experimental results suggest that the mechanism of activity interference lies in a decreased ligand binding and failure to close the active site once the ligand has bound. &lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872438</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872438"/>
		<updated>2013-12-05T00:45:45Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione (GSH) during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in a wide range of cells - including bacterial, plant, and mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The condensation begins by binding of ATP to GSS in the presence of γ-Glutamylcysteine, to form an enzyme-bound acyl-phosphate that binds glycine and generates the enzyme-product complex. Dissociation of GSS from the E::P complex results in release of GSH, ADP, and inorganic phosphate (Pi). The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme superfamily. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
 &lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872434</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872434"/>
		<updated>2013-12-05T00:26:27Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme family. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The glutathione biosynthesis pathway is an inter-dependent cycle, exhibiting a regulatory ability through the negative cooperativity of the second step of the cycle -- the step catalyzed by GSS. Below, you can see the full cycle including the substrates, cofactors, and enzymes involved in each step of the reaction. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
 &lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872432</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872432"/>
		<updated>2013-12-05T00:24:05Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme family. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
 &lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872431</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872431"/>
		<updated>2013-12-05T00:19:55Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
&lt;br /&gt;
Glutathione Synthetase is the key enzyme involved in the ATP-dependent condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. The ATP-dependence of the catalysis qualifies GSS for inclusion into the ligase enzyme family. Further, a Hill constant of ~0.67 indicates that GSS exhibits negative cooperativity towards the substrate γ-Glutamylcysteine. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
 &lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872430</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1872430"/>
		<updated>2013-12-05T00:18:56Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Residues==&lt;br /&gt;
&lt;br /&gt;
===Aspartate 458===&lt;br /&gt;
&lt;br /&gt;
The active site of GSS is composed of three highly conserved catalytic loops: the G-loop, S-loop, and A-loop; the latter of which received it&#039;s name from being very alanine-rich. The Asp458 residue of the A-loop has been well characterized and found to be an essential component in the catalytic activity of the enzyme. One study demonstrated that by mutating the Asp458 residue to either an alanine (D458A), asparagine (D458N), or arginine (D458R) residue, their enzymatic activity was only 10%, 15%, and 7% of the wild type GSS activity, respectively. Furthermore, the concentration of substrate needed for optimal activity of the enzyme, denoted by the Michaelis-Menten constant (KM) of the mutated enzymes, increased 30-115 fold. Differential scanning calorimetry of the wild type and mutant GSS enzymes confirmed that the relative stability of the folded protein was unaffected by mutating the Asp458 residue, indicating that a conformational change due to such a mutation did not cause the loss of catalytic activity.&lt;br /&gt;
&lt;br /&gt;
===Valine 44 &amp;amp; 45===&lt;br /&gt;
&lt;br /&gt;
Val44 and Val45 are two other residues which have been theorized to be important to the catalytic function of GSS due to their location on the dimerization site of the homogenous subunits. Early computer studies suggested that mutation to Val45 would have a larger detrimental effect than a mutation to Val44, and these predictions have since been verified by experimental studies. Differential scanning calorimetry has demonstrated that mutations to either of these two valines results in a loss of structural stability, with Val45 mutants being less stable than the Val44 mutants. Kinetic experiments suggest little effect on the affinity of GSS for γ-Glutamylcysteine by mutating one of these two residues, therefore it is assumed that the dimerization site is a part of the allosteric pathway rather than involved in the active site of the enzyme. It can be said with confidence, however, that they are integral to the stability of the biologically active protein. &lt;br /&gt;
&lt;br /&gt;
 &lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;br /&gt;
&lt;br /&gt;
3. Brown TR, Drummond ML, Barelier S, Crutchfield AS, Dinescu A, Slavens KD, Cundari TR, Anderson ME. 2011. Asparate 458 of human glutathione synthetase is importatnt for cooperativity and active site structure. Biochem &amp;amp; Biophys Resear Comm, 411(3): 536-542. doi: 10.1016/j.bbrc.2011.06.166&lt;br /&gt;
&lt;br /&gt;
4. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
5. Slavens KD, Brown TR, Barakat KA, Cundari TR, Anderson ME. 2011. Valine 44 and valine 45 of human glutathione synthetase are key for subunit stability and negative cooperativity. Biochem &amp;amp; Biophys Resear Comm, 410(3): 597-601. doi: 10.1016/j.bbrc.2011.06.034&lt;br /&gt;
&lt;br /&gt;
6. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870539</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870539"/>
		<updated>2013-12-04T04:15:38Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
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&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending &amp;lt;scene name=&#039;56/564047/Biological_assembly/2&#039;&amp;gt;ligase&amp;lt;/scene&amp;gt; responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Sites==&lt;br /&gt;
&amp;lt;scene name=&#039;56/564047/Substrate_binding_site/1&#039;&amp;gt;Substrate_binding_interface&amp;lt;/scene&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;scene name=&#039;56/564047/Atp_binding_residues/1&#039;&amp;gt;ATP_binding_residues&amp;lt;/scene&amp;gt;&lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
3. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3 &lt;br /&gt;
&lt;br /&gt;
4. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870538</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870538"/>
		<updated>2013-12-04T04:13:59Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
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&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Sites==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
1. http://www.ncbi.nlm.nih.gov/protein/NP_000169.1 &lt;br /&gt;
&lt;br /&gt;
2. Dinescu A, Brown TR, Barelier S, Cundari TR, Anderson ME. 2010. The role of the glycine triad in human glutathione synthesis. Biochem Biophys Res Commun, 400(4):511-516. doi: 10.1016/j.bbrc.2010.08.081&lt;br /&gt;
&lt;br /&gt;
3. Uchida M, Sugaya M, Janamary T, Hisatomi H. 2010. Alternative RNA splicing in expression of the glutathione synthetase gene in human cells. Mol Biol Rep, 37(4): 2105-2109. doi: 10.1007/s11033-009-9675-3 &lt;br /&gt;
&lt;br /&gt;
4. Breton CV, Salam MT, Vora H, Gauderman WJ, Gilliland FD. 2011. Genetic variation in the glutathione synthesis pathway, air pollution, and children&#039;s lung function growth. Amer Jour Respir Crit Care Med, 183(2): 243-248. doi: 10.1164/rccm.201006-0849OC&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870537</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870537"/>
		<updated>2013-12-04T04:11:23Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&amp;lt;!-- PLEASE DO NOT DELETE THIS TEMPLATE --&amp;gt;&lt;br /&gt;
{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
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&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Sites==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
While the expression of glutathione synthetase (GSS) has been studied and fairly well characterized, the sequence and alternative splicing of the gss gene has been studied very little. Using real-time polymerase chain reaction (qPCR) to quantify mRNA levels of the gss transcript within human cells has revealed one common alternative splicing variant present within colon, kidney, lung, liver, placenta, blood, and uterus cells. It has not, however, been detected within heart, skeletal muscle, and spleen tissue cells. This ASV is produced from a 333 bp in-frame deletion, including the complete removal of exons 4 and 5. &lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870536</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870536"/>
		<updated>2013-12-04T04:10:37Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
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{{User:Michael_B._Goshe/Template_BCH455_555}}&lt;br /&gt;
&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
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&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Reaction Mechanism==&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Substrate and ATP Binding Sites==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Glycine Triad==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Alternative Splicing Variants==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
==Chronic Lung Infections Caused by Alterations to Glutathione Synthesis==&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Cycle1.jpg&amp;diff=1870535</id>
		<title>File:Cycle1.jpg</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Cycle1.jpg&amp;diff=1870535"/>
		<updated>2013-12-04T04:07:57Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
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	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870534</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870534"/>
		<updated>2013-12-04T04:07:31Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
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&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Image:cycle1.jpg]]&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Cycle.jpg&amp;diff=1870533</id>
		<title>File:Cycle.jpg</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Cycle.jpg&amp;diff=1870533"/>
		<updated>2013-12-04T04:06:54Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870532</id>
		<title>Sandbox Reserved 771</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Sandbox_Reserved_771&amp;diff=1870532"/>
		<updated>2013-12-04T04:06:25Z</updated>

		<summary type="html">&lt;p&gt;Elliott Wyatt: &lt;/p&gt;
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&amp;lt;!-- PLEASE ADD YOUR CONTENT BELOW HERE --&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Glutathione synthetase&#039;&#039;&#039; (GSS) is an homo-dimeric, ATP-depending ligase responsible for the condensation of γ-Glutamylcysteine and glycine to form Glutathione during the second step of the glutathione biosynthesis pathway. Glutathione considered to be one of the most abundant and important antioxidants present in mammalian cells. In addition to protecting cells from the oxidative damage caused by free radicals, it is believed to be involved in the detoxification of xenobiotics, as well as membrane transport. Below, the direct enzyme catalysis step is shown in addition to the entire glutathione biosynthesis pathway and GSS&#039;s role in such a cycle. &lt;br /&gt;
&lt;br /&gt;
[[Image:cycle.jpg]]&lt;/div&gt;</summary>
		<author><name>Elliott Wyatt</name></author>
	</entry>
</feed>