Glycerol-3-Phosphate Dehydrogenase
From Proteopedia
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===Function=== | ===Function=== | ||
- | GlpD functions in the intracellular membrane of E. coli and in the inner-mitochondrial membrane of eukaryotes. In E. Coli, GlpD catalyzes and reduces the reaction of dihydroxyacetone phosphate to glycerol 3-phosphate in the [http://www.pnas.org/content/105/9/3280/F1.large.jpg glycerol metabolism pathway]. The binding of the substrate analogues (glyceraldehydes 3-phosphate, glyceric acid 2-phosphate and phosphoenolpyruvate, dihydroxyacetone phosphate)or UQ substrate analogues (2-n-heptyl-4-hydroxyquinoline N-oxide and menadione). The conformational change of the structure and resiudes of GlpD catalyzes many different metabolic reactions. | + | GlpD functions in the intracellular membrane of E. coli and in the inner-mitochondrial membrane of eukaryotes. In E. Coli, GlpD catalyzes and reduces the reaction of dihydroxyacetone phosphate (DHAP) to glycerol 3-phosphate in the [http://www.pnas.org/content/105/9/3280/F1.large.jpg glycerol metabolism pathway]. The binding of the substrate analogues (glyceraldehydes 3-phosphate, glyceric acid 2-phosphate and phosphoenolpyruvate, dihydroxyacetone phosphate) or UQ substrate analogues (2-n-heptyl-4-hydroxyquinoline N-oxide and menadione). The conformational change of the structure and resiudes of GlpD catalyzes many different metabolic reactions. |
===Metabolic Pathways=== | ===Metabolic Pathways=== | ||
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====Phosphoplipid Biosynthesis==== | ====Phosphoplipid Biosynthesis==== | ||
- | GlpD reduces | + | GlpD reduces DHAP to glycerol 3-phosphate. Then the glycerol 3-phosphate is catalyzed by acyl transferase to 1-acylglyverol-3-phosphate, and then another acyl transferase catalyzes that to a phosphatidic acid. head groups are added to the phosphatidic acid to synthesize phospholipids. |
====Glyceroneogenesis==== | ====Glyceroneogenesis==== | ||
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</StructureSection> | </StructureSection> | ||
- | ==3D structures of glycerol-3-phosphate dehydrogenase== | ||
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- | Updated on {{REVISIONDAY2}}-{{MONTHNAME|{{REVISIONMONTH}}}}-{{REVISIONYEAR}} | ||
- | {{#tree:id=OrganizedByTopic|openlevels=0| | ||
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- | *GPDH | ||
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- | **[[3da1]] – GPDH + FAD – ''Bacillus halodurans''<br /> | ||
- | **[[2qcu]] - EcGPDH + FAD – ''Escherichia coli''<br /> | ||
- | **[[2r4j]], [[2r4e]] - EcGPDH + FAD + DHAP<br /> | ||
- | **[[2r46]] - EcGPDH + FAD + 2-phosphopyruvic acid<br /> | ||
- | **[[2r45]] - EcGPDH + FAD + 2-phospho-glyceric acid<br /> | ||
- | **[[1yj8]] – GPDH – ''Plasmodium falciparum'' | ||
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- | *NADPH-dependent GPDH | ||
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- | **[[1x0x]] – hGPDH + NAD – human<br /> | ||
- | **[[1wpq]] - hGPDH + NAD + DHA<br /> | ||
- | **[[1x0v]] – hGPDH<br /> | ||
- | **[[4fgw]] – GPDH - yeast<br /> | ||
- | **[[1z82]] – GPDH + NADP + G3P + glyceraldehydes-3-phosphate – ''Thermotoga maritima''<br /> | ||
- | **[[1txg]] – GPDH + glycerol – ''Archaeoglobus fulgidus''<br /> | ||
- | **[[1evy]] – GPDH – ''Leishmania mexicana''<br /> | ||
- | **[[1n1g]], [[1m66]], [[1m67]], [[1jdj]] – LmGPDH + inhibitor<br /> | ||
- | **[[1evz]] - LmGPDH + NAD<br /> | ||
- | **[[1n1e]] – LmGPDH + NAD + DHAP<br /> | ||
- | **[[3k96]] – GPDH – ''Coxiella burnetii''<br /> | ||
- | **[[5ocm]] – GPDH + NADP – ''Streptosporangium roseum''<br /> | ||
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- | *NAD-dependent GPDH or imine reductase | ||
- | **[[6e8y]], [[1x0v]] – hGPDH-C - human<br /> | ||
- | **[[6e8z]], [[1x0x]] – hGPDH-C + NAD<br /> | ||
- | **[[1wpq]] - hGPDH + NAD + DHA<br /> | ||
- | **[[6e90]] – hGPDH-C + NAD + DHAP<br /> | ||
- | **[[4fgw]] – GPDH - yeast<br /> | ||
- | **[[1evy]] – GPDH – ''Leishmania mexicana''<br /> | ||
- | **[[1n1g]], [[1m66]], [[1m67]], [[1jdj]] – LmGPDH + inhibitor<br /> | ||
- | **[[1evz]] - LmGPDH + NAD<br /> | ||
- | **[[1n1e]] – LmGPDH + NAD + DHAP<br /> | ||
- | }} | ||
==References== | ==References== | ||
<references /> | <references /> |
Current revision
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References
- ↑ Yeh JI, Chinte U, Du S. Structure of glycerol-3-phosphate dehydrogenase, an essential monotopic membrane enzyme involved in respiration and metabolism. Proc Natl Acad Sci U S A. 2008 Mar 4;105(9):3280-5. Epub 2008 Feb 22. PMID:18296637
- ↑ Yeh JI, Charrier V, Paulo J, Hou L, Darbon E, Claiborne A, Hol WG, Deutscher J. Structures of enterococcal glycerol kinase in the absence and presence of glycerol: correlation of conformation to substrate binding and a mechanism of activation by phosphorylation. Biochemistry. 2004 Jan 20;43(2):362-73. PMID:14717590 doi:10.1021/bi034258o
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