Citrate Synthase: Difference between revisions

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==The Structure and Mechanism of Citrate Synthase==
==The Structure and Mechanism of Citrate Synthase==
<applet load='2cts' size='300' color='white' frame='true' align='right' caption='Citrate Synthase Closed Form' name='closed'/> <applet load='1cts' size='300' color='white' frame='true' align='right'  caption='Citrate Synthase Open Form' name='open'/>
 
<Structure load='1cts' size='400' frame='true' align='right' scene='Daniel_Eddelman_Sandbox_2/Open_default/1' caption='Citrate Synthase' />
Citrate synthase is an enzyme active in the mitochondria, where it is responsible for catalyzing the first reaction of the citric acid cycle (Krebs Cycle): the condensation of acetyl-CoA and oxaloacetate to form citrate.  Although it is a mitochondrial enzyme (in fact, it is often used as a quantitative enzyme marker for intact mitochondria), it is encoded by nuclear DNA, not mitochondrial <ref>"Citrate Synthase -." Wikipedia, the Free Encyclopedia. Web. 22 Mar. 2010. <http://en.wikipedia.org/wiki/Citrate_synthase></ref>. The standard free energy change (ΔG°’) for the citrate synthase reaction is
Citrate synthase is an enzyme active in the mitochondria, where it is responsible for catalyzing the first reaction of the citric acid cycle (Krebs Cycle): the condensation of acetyl-CoA and oxaloacetate to form citrate.  Although it is a mitochondrial enzyme (in fact, it is often used as a quantitative enzyme marker for intact mitochondria), it is encoded by nuclear DNA, not mitochondrial <ref>"Citrate Synthase -." Wikipedia, the Free Encyclopedia. Web. 22 Mar. 2010. <http://en.wikipedia.org/wiki/Citrate_synthase></ref>. The standard free energy change (ΔG°’) for the citrate synthase reaction is
-31.5kJ/mol <ref name="voet">Voet, Donald, Judith G. Voet, and Charlotte W. Pratt. Fundamentals of Biochemistry: Life at the Molecular Level. Hoboken, NJ: Wiley, 2008.</ref>. This negative free energy value means that citrate synthase is likely to function far from equilibrium under physiological conditions, and is thus a rate-determining enzyme in the citric acid cycle.
-31.5kJ/mol <ref name="voet">Voet, Donald, Judith G. Voet, and Charlotte W. Pratt. Fundamentals of Biochemistry: Life at the Molecular Level. Hoboken, NJ: Wiley, 2008.</ref>. This negative free energy value means that citrate synthase is likely to function far from equilibrium under physiological conditions, and is thus a rate-determining enzyme in the citric acid cycle.
    
    
'''Structure:''' Citrate synthase is a single amino acid chain <scene name='Daniel_Eddelman_Sandbox_2/Cts_open_monomer/1'>monomer</scene>.  Biologically, however, it exists as a  
'''Structure:''' Citrate synthase is a single amino acid chain <scene name='Daniel_Eddelman_Sandbox_2/Cts_open_monomer/1'>monomer</scene>.  Biologically, however, it exists as a  
<scene name='Daniel_Eddelman_Sandbox_2/Cts_open_monomer/2'>homodimer</scene>.  Each identical subunit consists of a large and a small domain, and is comprised almost entirely of α helices (making it an all α protein).  In its free enzyme state, citrate synthase exists in “open” form, with its two domains forming a cleft containing the substrate (oxaloacetate) binding site (PDB: [[1cts]]) <ref>PMID:7120407</ref>.  When oxaloacetate binds, the smaller domain undergoes an 18° rotation, sealing the oxaloacetate binding site and resulting in the <scene name='Daniel_Eddelman_Sandbox_2/Closed_homodimer/1' target='closed' >closed conformation</scene> (PDB: [[2cts]])<ref>PMID:7308213</ref>.  This conformational change not only prevents solvent from reaching the bound substrate, but also generates the acetyl-CoA binding site.  This presence of “open” and “closed” forms results in citrate synthase having Ordered Sequential kinetic behavior <ref name="voet" />.
<scene name='Daniel_Eddelman_Sandbox_2/Cts_open_monomer/2'>homodimer</scene>.  Each identical subunit consists of a large and a small domain, and is comprised almost entirely of α helices (making it an all α protein).  In its free enzyme state, citrate synthase exists in “open” form, with its two domains forming a cleft containing the substrate (oxaloacetate) binding site (PDB: [[1cts]]) <ref>PMID:7120407</ref>.  When oxaloacetate binds, the smaller domain undergoes an 18° rotation, sealing the oxaloacetate binding site and resulting in the <scene name='Daniel_Eddelman_Sandbox_2/Closed_homodimer/1' target='closed' >closed conformation</scene> (PDB: [[2cts]])<ref>PMID:7308213</ref>.  This conformational change is best illustrated via <scene name='User:Wayne_Decatur/1cts_to_2cts_(citrate_synthase)_morph_methods/1ctsto2ctsmorph/5'>a morph between the states</scene>; the conformational change not only prevents solvent from reaching the bound substrate, but also generates the acetyl-CoA binding site.  This presence of “open” and “closed” forms results in citrate synthase having Ordered Sequential kinetic behavior <ref name="voet" />.


'''Mechanism:''' The reaction mechanism for citrate synthase was proposed by James Remington.  In this mechanism, three ionizable side chains in the  
'''Mechanism:''' The reaction mechanism for citrate synthase was proposed by James Remington.  In this mechanism, three ionizable side chains in the  
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'''Regulation:''' Perhaps the most crucial regulators of the citrate synthase reaction are its substrates, acetyl-CoA and oxaloacetate.  Both are present in the mitochondria at concentrations below saturation of citrate synthase.  The metabolic flux is controlled by substrate availability, so controlling the levels of acetyl-CoA and oxaloacetate in the mitochondria controls the rate of reaction.  Furthermore, citrate synthase is inhibited by NADH, <scene name='Daniel_Eddelman_Sandbox_2/Citrate/2'>citrate</scene> (which competes with oxaloacetate), and succinyl-CoA (an example of competitive feedback inhibition) <ref>PMID:3013232</ref>.  
'''Regulation:''' Perhaps the most crucial regulators of the citrate synthase reaction are its substrates, acetyl-CoA and oxaloacetate.  Both are present in the mitochondria at concentrations below saturation of citrate synthase.  The metabolic flux is controlled by substrate availability, so controlling the levels of acetyl-CoA and oxaloacetate in the mitochondria controls the rate of reaction.  Furthermore, citrate synthase is inhibited by NADH, <scene name='Daniel_Eddelman_Sandbox_2/Citrate/2'>citrate</scene> (which competes with oxaloacetate), and succinyl-CoA (an example of competitive feedback inhibition) <ref>PMID:3013232</ref>.  
<applet load='2cts' size='300' color='white' frame='true' align='right'  caption='Citrate Synthase Closed Form' name='closed'/> <applet load='1cts' size='300' color='white' frame='true' align='right'  caption='Citrate Synthase Open Form' name='open'/>


<scene name='Daniel_Eddelman_Sandbox_2/Open_default/1' target='open' >Open Default</scene>
<scene name='Daniel_Eddelman_Sandbox_2/Open_default/1' target='open' >Open Default</scene>