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Pathway Description
Pyruvate Metabolism
Bos taurus
Category:
Metabolite Pathway
Sub-Category:
Metabolic
Created: 2018-08-10
Last Updated: 2019-08-16
Pyruvate is an intermediate compound in the metabolism of fats, proteins, and carbohydrates. It can be formed from glucose via glycolysis or the transamination of alanine. It can be converted into Acetyl-CoA to be used as the primary energy source for the TCA cycle, or converted into oxaloacetate to replenish TCA cycle intermediates. Pyruvate can also be used to synthesize carbohydrates, fatty acids, ketone bodies, alanine, and steroids. In conditions of inssuficient oxygen or in cells with few mitochondria, pyruvate is reduced to lactate in order to re-oxidize NADH back into NAD+
Pyruvate participates in several key reactions and pathways. In glycolysis, phosphoenolpyruvate (PEP) is converted to pyruvate by pyruvate kinase in an highly exergonic and irreversible reaction. In gluconeogenesis, pyruvate carboxylase and PEP carboxykinase are needed to catalyze the conversion of pyruvate to PEP. In fatty acid synthesis, the pyruvate dehydrogenase complex decarboxylates pyruvate to produce acetyl-CoA. In gluconeogenesis, the carboxylation by pyruvate carboxylase produces oxaloacetate. The fate of pyruvate depends on the cell energy charge. In cells or tissues with a high energy charge pyruvate is directed toward gluconeogenesis, but when the energy charge is low pyruvate is preferentially oxidized to CO2 and H2O in the TCA cycle, with generation of 15 equivalents of ATP per pyruvate. The enzymatic activities of the TCA cycle are located in the mitochondrion. When transported into the mitochondrion, pyruvate encounters two principal metabolizing enzymes: pyruvate carboxylase (a gluconeogenic enzyme) and pyruvate dehydrogenase (PDH). With a high cell-energy charge, acetyl-CoA, is able allosterically to activate pyruvate carboxylase, directing pyruvate toward gluconeogenesis. When the energy charge is low CoA is not acylated, pyruvate carboxylase is inactive, and pyruvate is preferentially metabolized via the PDH complex and the enzymes of the TCA cycle to CO2 and H2O.
References
Pyruvate Metabolism References
Agca C, Bidwell CA, Donkin SS: Cloning of bovine pyruvate carboxylase and 5' untranslated region variants. Anim Biotechnol. 2004 May;15(1):47-66. doi: 10.1081/ABIO-120037897.
Pubmed: 15248600
Sonstegard TS, Capuco AV, White J, Van Tassell CP, Connor EE, Cho J, Sultana R, Shade L, Wray JE, Wells KD, Quackenbush J: Analysis of bovine mammary gland EST and functional annotation of the Bos taurus gene index. Mamm Genome. 2002 Jul;13(7):373-9. doi: 10.1007/s00335-001-2145-4.
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Harhay GP, Sonstegard TS, Keele JW, Heaton MP, Clawson ML, Snelling WM, Wiedmann RT, Van Tassell CP, Smith TP: Characterization of 954 bovine full-CDS cDNA sequences. BMC Genomics. 2005 Nov 23;6:166. doi: 10.1186/1471-2164-6-166.
Pubmed: 16305752
Zimin AV, Delcher AL, Florea L, Kelley DR, Schatz MC, Puiu D, Hanrahan F, Pertea G, Van Tassell CP, Sonstegard TS, Marcais G, Roberts M, Subramanian P, Yorke JA, Salzberg SL: A whole-genome assembly of the domestic cow, Bos taurus. Genome Biol. 2009;10(4):R42. doi: 10.1186/gb-2009-10-4-r42. Epub 2009 Apr 24.
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Agca C, Greenfield RB, Hartwell JR, Donkin SS: Cloning and characterization of bovine cytosolic and mitochondrial PEPCK during transition to lactation. Physiol Genomics. 2002 Oct 29;11(2):53-63. doi: 10.1152/physiolgenomics.00108.2001.
Pubmed: 12388798
McGrane MM, Yun JS, Roesler WJ, Park EA, Wagner TE, Hanson RW: Developmental regulation and tissue-specific expression of a chimaeric phosphoenolpyruvate carboxykinase/bovine growth hormone gene in transgenic animals. J Reprod Fertil Suppl. 1990;41:17-23.
Pubmed: 2213709
Schade SZ, Early SL, Williams TR, Kezdy FJ, Heinrikson RL, Grimshaw CE, Doughty CC: Sequence analysis of bovine lens aldose reductase. J Biol Chem. 1990 Mar 5;265(7):3628-35.
Pubmed: 2105951
Rahmatullah M, Gopalakrishnan S, Andrews PC, Chang CL, Radke GA, Roche TE: Subunit associations in the mammalian pyruvate dehydrogenase complex. Structure and role of protein X and the pyruvate dehydrogenase component binding domain of the dihydrolipoyl transacetylase component. J Biol Chem. 1989 Feb 5;264(4):2221-7.
Pubmed: 2914903
Neagle J, De Marcucci O, Dunbar B, Lindsay JG: Component X of mammalian pyruvate dehydrogenase complex: structural and functional relationship to the lipoate acetyltransferase (E2) component. FEBS Lett. 1989 Aug 14;253(1-2):11-5. doi: 10.1016/0014-5793(89)80919-6.
Pubmed: 2759236
Rice JE, Dunbar B, Lindsay JG: Sequences directing dihydrolipoamide dehydrogenase (E3) binding are located on the 2-oxoglutarate dehydrogenase (E1) component of the mammalian 2-oxoglutarate dehydrogenase multienzyme complex. EMBO J. 1992 Sep;11(9):3229-35.
Pubmed: 1505515
Mao J, Marcos S, Davis SK, Burzlaff J, Seyfert HM: Genomic distribution of three promoters of the bovine gene encoding acetyl-CoA carboxylase alpha and evidence that the nutritionally regulated promoter I contains a repressive element different from that in rat. Biochem J. 2001 Aug 15;358(Pt 1):127-35. doi: 10.1042/0264-6021:3580127.
Pubmed: 11485560
Pazzagli L, Ikram UK, Liguri G, Taddei N, Gentilini A, Cecchi C, Manao G, Cappugi G: Purification, kinetic properties and primary structure of bovine erythrocyte acylphosphatase. Ital J Biochem. 1993 Jul-Aug;42(4):233-45.
Pubmed: 8262761
Pazzagli L, Cappugi G, Camici G, Manao G, Ramponi G: Bovine testis acylphosphatase: purification and amino acid sequence. J Protein Chem. 1993 Oct;12(5):593-601.
Pubmed: 8142002
Thunnissen MM, Taddei N, Liguri G, Ramponi G, Nordlund P: Crystal structure of common type acylphosphatase from bovine testis. Structure. 1997 Jan 15;5(1):69-79.
Pubmed: 9016712
Guan KL, Weiner H: Sequence of the precursor of bovine liver mitochondrial aldehyde dehydrogenase as determined from its cDNA, its gene, and its functionality. Arch Biochem Biophys. 1990 Mar;277(2):351-60. doi: 10.1016/0003-9861(90)90590-u.
Pubmed: 1689984
Farres J, Guan KL, Weiner H: Primary structures of rat and bovine liver mitochondrial aldehyde dehydrogenases deduced from cDNA sequences. Eur J Biochem. 1989 Mar 1;180(1):67-74. doi: 10.1111/j.1432-1033.1989.tb14616.x.
Pubmed: 2540003
Lee JE, Cho YD: Purification and characterization of bovine brain gamma-aminobutyraldehyde dehydrogenase. Biochem Biophys Res Commun. 1992 Nov 30;189(1):450-4.
Pubmed: 1449496
This pathway was propagated using PathWhiz -
Pon, A. et al. Pathways with PathWhiz (2015) Nucleic Acids Res. 43(Web Server issue): W552–W559.
Propagated from SMP0000060
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