Sandbox 177: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
 
(16 intermediate revisions by 2 users not shown)
Line 1: Line 1:
{{STRUCTURE_3es9| PDB=3es9 | SCENE=Sandbox_177/Jmol3es9/1 }}
{{STRUCTURE_3es9| PDB=3es9 | SCENE=Sandbox_177/Jmol3es9/1 }}
== '''NADPH-cytochrome P450 oxidoreductase''' ==
== '''NADPH-cytochrome P450 oxidoreductase''' ==
Taya O'Neill


==='''General Information'''===
==='''General Information'''===
----
----
NADPH-cytochrome P450 oxidoreductase (CYPOR) is a ~78kDa, multidomain flavoprotein.<ref name="5TSON">PMID:19171935</ref>  Containing three co-factors, FMN, FAD and NADPH, CYPOR is the archetype for the mammalian diflavin-containing enzyme family.<ref name="5TSON"/> Research indicates that the protein, and other FAD/FMN binding proteins, are likely the product of the fusion of two ancestral genes.<ref name="6TSON">PMID:8078947</ref>  This would account for the two distinct binding domains, FMN and FAD/NADPH, which each provide different functional capabilities to the overall protein.<ref name="6TSON"/>
Horecker first identified this protein in 1950 as NADPH-specific cytochrome c reductase, based on his assumption that it was the redox partner for cytochrome c, found in the mitochondria.<ref name="1TSON">Horecker BL. Triphosphopyridine nucleotide-cytochrome ''c'' reductase in liver. J Biol Chem 1950 Apr 1;183(2):593-605</ref>  However, studies in the 1960s and later showed that its main function is actually as the redox partner for cytochrome P450 in microsomal electron transport chains, resulting in a name change.<ref name="5TSON"/><ref name="4TSON">Phillips AH, Langdon RG. Hepatic triphosphopyridine nucleotide-cytochrome c reductase: Isolation, characterization, and kinetic studies. J Biol Chem 1962 Aug 1;237:2652-60</ref>  Today this protein is known as NADPH-cytochrome P450 oxidoreductase (CYPOR).  


Horecker first identified this protein in 1950 as NADPH-specific cytochrome c reductase, based on his assumption that it was the redox partner for cytochrome c, found in the mitochondria.<ref name="1TSON">Horecker BL. Triphosphopyridine nucleotide-cytochrome ''c'' reductase in liver. J Biol Chem 1950 Apr 1;183(2):593-605</ref>  However, studies in the 1960s and later showed that its main function is actually as the redox partner for cytochrome P450 in microsomal electron transport chains, thus the name change.<ref name="5TSON"/><ref name="4TSON">Phillips AH, Langdon RG. Hepatic triphosphopyridine nucleotide-cytochrome c reductase: Isolation, characterization, and kinetic studies. J Biol Chem 1962 Aug 1;237:2652-60</ref>
CYPOR is a ~78kDa, multidomain flavoprotein.<ref name="5TSON">PMID:19171935</ref>  Containing three co-factors, FAD, FMN and NADPH, this protein is the archetype for the mammalian diflavin-containing enzyme family.<ref name="5TSON"/> Research indicates that the protein, and other FAD/FMN binding proteins, are likely the product of the fusion of two ancestral genes.<ref name="6TSON">PMID:8078947</ref>  This would account for the two distinct binding domain areas, FMN and FAD/NADPH, which each provide different functional capabilities to the overall protein.<ref name="6TSON"/>


Regulation of this protein, which is found all tissues to some extent, is largely at the transcriptional level.<ref name="3cTSON">PMID:11306680</ref>  The thyroid hormone T3 in most cases, while adrenocorticotrophic hormone acts as a regulator in a few specific cases.<ref name="3aTSON">PMID:2495435</ref><ref name="3bTSON">PMID:1737785</ref>
Regulation of this protein, which is found all tissues to some extent, is largely at the transcriptional level.<ref name="3cTSON">PMID:11306680</ref>  The thyroid hormone T3 acts as a hormonal regulator in most cases, while adrenocorticotrophic hormone acts as a regulator in a few specific cases.<ref name="3aTSON">PMID:2495435</ref><ref name="3bTSON">PMID:1737785</ref>


==='''Structure'''===
==='''Structure'''===
----
----
<applet load='3es9' size='200' color='black' frame='true' align='left' scene='Sandbox_177/Cyporplain/2' caption='Highlighting the chains and associated ligands of CYPOR'/>
<applet load='3es9' size='275' color='black' frame='true' align='left' scene='Sandbox_177/Cyporplain/2' caption='Figure 1: Highlighting the chains and associated ligands of CYPOR'/>
CYPOR is a complex, multidomain protein composed of three chains (<scene name='Sandbox_177/Cyporchaina/2'>A</scene>, <scene name='Sandbox_177/Cyporchainb/1'>B</scene>, <scene name='Sandbox_177/Cyporchainc/1'>C</scene>). It also has three different types of associated ligands; one <scene name='Sandbox_177/Cyporfmn/2'>FMN</scene>, three <scene name='Sandbox_177/Cyporfad/2'>FAD</scene> and two <scene name='Sandbox_177/Cypornadph/2'>NADPH</scene>.<ref name="5TSON"/> The three associated binding domains for these ligands, a connecting domain and a transmembrane anchor are the key structural elements of CYPOR.   
<scene name='Sandbox_177/Cyporplain/2'>CYPOR</scene> is a complex, multidomain protein composed of three asymmetric chains, (<scene name='Sandbox_177/Cyporchaina/2'>A</scene>, <scene name='Sandbox_177/Cyporchainb/1'>B</scene>, <scene name='Sandbox_177/Cyporchainc/1'>C</scene>). It also has three different types of associated ligands; one <scene name='Sandbox_177/Cyporfmn/2'>FMN</scene>, three <scene name='Sandbox_177/Cyporfad/2'>FAD</scene> and two <scene name='Sandbox_177/Cypornadph/2'>NADPH</scene> (Fig 1).<ref name="5TSON"/> The three associated binding domains for these ligand types, a connecting domain and a transmembrane anchor make up the important structural elements of CYPOR (Fig 2).   


The N-terminus consists of a single alpha-helix that functions as a transmembrane anchor (~6kDa), holding the protein in the endoplasmic reticulum.  The portion of the protein responsible for reducing cytochrome P450 is soluble and ~66kDa.<ref name="5TSON"/>  The first 170 residues of the soluble region are very similar to those of flavodoxin, which correlates to the fact that this is the area that binds FMN.  The FAD and NADPH binding domains are located closer to the C-terminus, and are very similar to the FAD domain in ferredoxin-NADP<sup>+</sup> oxidoreductase, both in terms of sequence and structure.<ref name="5TSON"/>
The N-terminus of CYPOR consists of a single alpha-helix composed of 25 amino acids that functions as a transmembrane anchor (~6kDa), holding the protein in the endoplasmic reticulum.<ref name="5TSON"/><ref name="10aTSON">PMID:18630181</ref> The remaining, soluble ~66kDa portion of the protein, responsible for reducing cytochrome P450, consists of three binding domains for the ligands involved in the electron transport chain.<ref name="5TSON"/>  The FMN binding domain is composed of the first 170 residues of the soluble region, which are very similar to those of flavodoxin, another FMN binding protein.<ref name="5TSON"/> The FAD and NADPH binding domains are located closer to the C-terminus, and are very similar to the FAD domain in ferredoxin-NADP<sup>+</sup> oxidoreductase, both in terms of sequence and structure.<ref name="5TSON"/>


Between the FMN and FAD/NADPH bind domains is a connecting domain, which is a highly flexible random coil.<ref name="5TSON"/>  The hinge region is composed of 12 residues from Gly232 to Arg243, and is highly conserved among most known CYPOR molecules (ie in rats and even in yeast).<ref name="5TSON"/>  This section is presumed to be responsible for the relatively increased mobility of the FMN domain, changes to conformation and the relative orientation of the binding domains.<ref name="5TSON"/>  Because of this, it plays a key role in the transfer of electrons between FMN and FAD. <ref name="5TSON"/>
Between the FMN and FAD/NADPH bind domains is a connecting domain, which is a highly flexible random coil.<ref name="5TSON"/>  The hinge region is composed of 12 residues from <scene name='Sandbox_177/Cyporhinge/5'>Gly232 to Arg243</scene>, and is highly conserved among most known CYPOR proteins, including those found in humans, rats and even yeast.<ref name="5TSON"/>  For simplicity the hinge region has only been highlighted in the A chain (Fig 1), however it is present in all three chains.  The hinge section is presumed to be responsible for the relatively increased mobility of the FMN domain, changes to conformation and the relative orientation of the binding domains.<ref name="5TSON"/>  Studies that examined the rate of electron transfer within CYPOR seem to confirm this, as electron transfer rate appears to decrease proportionally to increases in the viscosity of the fluid medium it is in.<ref name="5TSON"/> Within the hinge, if residues are mutated or added (2-4 residues), the effect on electron transport is positive or negligible.<ref name="5TSON"/>  However the same study found that the removal four residues from the hinge, as seen in Figure 1, prevents CYPOR from effectively transferring electrons to cytochrome P450, unless there is a high electron pool available.<ref name="5TSON"/>  This indicates that without the hinge movement electrons are not able to be efficiently moved from FAD to FMN, decreasing the reductase capabilities of CYPOR.<ref name="5TSON"/>  


==='''Function'''===
==='''Function'''===
----
----
[[Image:CPR chargepair.gif|thumb|right|250px|Electrostatic charge pairing between Cyt P450 and the FMN binding domain induces the interaction between CYPOR and Cyt P450.]]
[[Image:CPR chargepair.gif|thumb|right|300px|Figure 2: Electrostatic charge pairing between Cyt P450 and the FMN binding domain induces the interaction between CYPOR and Cyt P450.]]
''In vivo'' CYPOR is believe to alternate between a one and a three electron reduced form.  While the 1 electron form is fairly stable, forming a neutral blue semiquinone, it is the hydroquinone, or 3 electron form, that is able to donate electrons to the desired redox partners.
''In vivo'' CYPOR is believe to alternate between a one and a three electron reduced form.  While the 1 electron form is fairly stable, forming a neutral blue semiquinone, it is the hydroquinone, or 3 electron form, that is able to donate electrons to the desired redox partners.


As part of the microsomal electron transport system, CYPOR moves electrons from:
As part of the microsomal electron transport system, CYPOR moves electrons from:


'''<span style="background-color:#FFA07A">NADPH</span> → <span style="background-color:#F0E68C">FAD</span> → <span style="background-color:#98FB98">FMN</span> → <span style="background-color:#AFEEEE">Cytochrome P450</span>'''  
:::'''<span style="background-color:#FFA07A">NADPH</span> → <span style="background-color:#F0E68C">FAD</span> → <span style="background-color:#98FB98">FMN</span> → <span style="background-color:#AFEEEE">Cytochrome P450</span>'''  


Specifically a hydride anion is moved from NADPH to the FAD.  The two electrons are then individually passed to FMN, in a process that is believed to be conformationally gated, before being passed on to cytochrome P450, again one at a time.<ref name="5TSON"/>  This reduction of cytochrome P450 allows it to function in biosynthesis and biodegradation pathways of a variety of endogenous and foreign hydrophobic substrates, including drugs and steroids.<ref name="5TSON"/><ref name="2TSON">PMID:7743131</ref>
Specifically a hydride anion is moved from NADPH to the FAD.<ref name="5TSON"/> The two electrons are then individually passed to FMN, in a process that is believed to be conformationally gated.<ref name="5TSON"/>  As previously discussed in the structure section, this belief is based upon the fact that electrons do not appear to be able to be transferred from FAD to FMN unless the two ligands are in close proximity.<ref name="5TSON"/>  The protein accomplishes this by undergoing a conformational change, believed to occur because of the flexibility of the hinge domain, which brings the flavin isoalloxazine rings of FMN and FAD into close proximity to one another.<ref name="5TSON"/>  In this closed conformation van der Waals forces help hold the ligands together, allowing for efficient electron movement.<ref name="5TSON"/>  However, for CYPOR to transfer the electrons, again one at a time, from FMN to cytochrome P450, CYPOR cannot be in a closed conformation because it prevents cytochrome P450 from being able to access FMN.<ref name="5TSON"/>  As a result CYPOR must undergo another conformational change so it is in an open conformation allowing the necessary surface residues on the FMN binding domain to form interactions with cytochrome P450 for electron transfer to occur (Fig 2).<ref name="5TSON"/> These surface residues have been found to have an increased number of carboxyl containing amino acids (Aspartate and glutamate), which gives this area a negative charge (Fig 2).<ref name="7aTSON">PMID:1929397</ref><ref name="7bTSON">PMID:3016501</ref> The carboxyl groups can then bind basic residues like leucine found on cytochrome P450 to correctly orient the two proteins for electron transfer.<ref name="7aTSON"/><ref name="7bTSON"/>  Additionally, cytochrome P450 can have an induced dipole moment across it, with a partial positive charge occurring on the side of the protein where the internal heme is closest to the surface of the protein (Fig 2). <ref name="7aTSON"/><ref name="7bTSON"/>  The partial positive charge interacting with the previously mentionned acidic residues of CYPOR is thought to help solidify the interaction between CYPOR and cytochrome P450 in the best orientation for electron transfer.<ref name="7aTSON"/><ref name="7bTSON"/>


Cytochrome b5, cytochrome c and heme oxygenase can also receive electrons from CYPOR.<ref name="5TSON"/>  In these cases CYPOR is functioning in the heme degradation pathway, or with monooxygenase and/or 7-dehydrocholesterol reductase in sterol synthesis.<ref name="5TSON"/>
This reduction of cytochrome P450 allows it to function in biosynthesis and biodegradation pathways of a variety of endogenous and foreign hydrophobic substrates, including drugs and steroids.<ref name="5TSON"/><ref name="2TSON">PMID:7743131</ref>  Cytochrome b5, cytochrome c and heme oxygenase can also receive electrons from CYPOR.<ref name="5TSON"/>  In these cases CYPOR is functioning in the heme degradation pathway, or with monooxygenase and/or 7-dehydrocholesterol reductase in sterol synthesis.<ref name="5TSON"/>


A function that is of particular interest currently is CYPOR’s ability to activate anticancer prodrugs reductively.<ref name="5TSON"/>  This makes it a potential target for anticancer research and therapy.<ref name="5TSON"/>
==='''Medical Significance'''===
----
'''Cancer''' - Studies have shown that the reductase activity of CYPOR is capable of activating anticancer prodrugs.<ref name="5TSON"/><ref name="8TSON">PMID:2228151</ref>  Elevated expression of CYPOR has been found to increase the sensitivity of cancerous cells to certain anticancer drugs like tirapazamine.<ref name="8TSON"/> This makes it a potential target for anticancer research and therapy.


'''Embryology & Development''' - CYPOR is believed to play a key role in the spatial and temporal expression of various signaling factors that are key in establishing correct embryogenesis and development pathways.<ref name="9TSON">PMID:11742006</ref>  Studies with mice have shown that CYPOR is critical for mice embryos to progress into and past mid-gestation, as embryos lacking both CYPOR alleles did not survive past day 13.5 of gestation. <ref name="9TSON"/> Even heterozygous mice were found to have a decreased survival rate after 2 weeks of gestation.<ref name="9TSON"/>  In humans, while deficiencies in CYPOR are not necessarily lethal, they do have some severe side effects, including disordered steroidogenesis and Antley-Bixler syndrome (ABS).<ref name="10aTSON"/><ref name="10bTSON">PMID:16467261</ref>  ABS is associated with urogenital defects (ie: ambiguous genitalia), cranial abnormalities (ie: brachycephaly) and skeletal defects (ie: bowed femurs, narrow ribcage and club feet), often due to disordered steroidogenesis.<ref name="10aTSON"/><ref name="10bTSON"/>  Individuals with ABS and/or disordered steroidogenesis may have mutations in one or both alleles for CYPOR, although some cases are associated with mutations in another gene, fibroblast growth factor receptor 2 gene.<ref name="10bTSON"/><ref name="10aTSON"/>


==References==
==References==