Pyruvate Kinase: Difference between revisions
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<StructureSection load='2vgb' size='350' side='right' scene='' caption='Human pyruvate kinase tetramer complex with fructose diphosphate, phosphoglycolic acid, Mn+2 and K+ (purple) ions (PDB code [[2vgb]])'> | |||
[[Pyruvate Kinase]] is an enzyme that is involved in glycolysis. Pyruvate kinase’s function is to catalyze the last step of glycolysis; thereby, generating the second ATP of glycolysis and pyruvate. It is able to catalyze this step by transferring the phosphate group from phosphoenolpyruvate (PEP) to ADP <ref>{{book |author=Voet, Donald; Voet, Judith C.; Pratt, Charlotte W.|title=Fundamentals of Biochemistry: Life at the Molecular Level|edition= 3|pages=501|}}</ref>. See [[Glycolysis Enzymes]]. | [[Pyruvate Kinase]] is an enzyme that is involved in glycolysis. Pyruvate kinase’s function is to catalyze the last step of glycolysis; thereby, generating the second ATP of glycolysis and pyruvate. It is able to catalyze this step by transferring the phosphate group from phosphoenolpyruvate (PEP) to ADP <ref>{{book |author=Voet, Donald; Voet, Judith C.; Pratt, Charlotte W.|title=Fundamentals of Biochemistry: Life at the Molecular Level|edition= 3|pages=501|}}</ref>. See [[Glycolysis Enzymes]]. | ||
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This particular protein is found in Homo sapiens and has the abbreviation PK. Pyruvate kinase belongs to the all beta proteins class and has the PK beta-barrel domain-like fold. It belongs to the PK beta-barrel domain-like superfamily and pyruvate kinase beta-barrel domain family<ref>{{website| title=SCOP: Protein: Pyruvate kinase (PK) from Human (Homo sapiens) [TaxId: 9606]|url=http://scop.berkeley.edu/data/scop.b.c.jh.b.b.d.html|}}</ref>. | This particular protein is found in Homo sapiens and has the abbreviation PK. Pyruvate kinase belongs to the all beta proteins class and has the PK beta-barrel domain-like fold. It belongs to the PK beta-barrel domain-like superfamily and pyruvate kinase beta-barrel domain family<ref>{{website| title=SCOP: Protein: Pyruvate kinase (PK) from Human (Homo sapiens) [TaxId: 9606]|url=http://scop.berkeley.edu/data/scop.b.c.jh.b.b.d.html|}}</ref>. | ||
Though pyruvate kinase is classified into all beta proteins, pyruvate kinase's <scene name='Keegan_Gelvoria_Sandbox_1/Secondary_structure/1'>secondary structure</scene> comprises of both alpha helices and beta sheets. In the quaternary structure of pyruvate kinase, it can be observed to have <scene name='Keegan_Gelvoria_Sandbox_1/Structure_4_domains/1'>four domains</scene> in humans. Thus, this enzyme is tetrameric with <scene name='Keegan_Gelvoria_Sandbox_1/Metal_binding_sites/1'>metal binding sites</scene> on each domain for the <scene name='Keegan_Gelvoria_Sandbox_1/Ligands/1'>K+</scene> and Mg2+ ligands to bind to. There are four types of tissue-specific isozymes: L (liver), R (red blood cells), M1 (muscle, heart, and brain), and M2 (early fetal tissue)<ref>{{website| title=SCOP: Protein: Pyruvate kinase (PK) from Human (Homo sapiens) [TaxId: 9606]|url=http://scop.berkeley.edu/data/scop.b.c.jh.b.b.d.html|}}</ref>. | Though pyruvate kinase is classified into all beta proteins, pyruvate kinase's <scene name='Keegan_Gelvoria_Sandbox_1/Secondary_structure/1'>secondary structure</scene> comprises of both alpha helices and beta sheets. In the quaternary structure of pyruvate kinase, it can be observed to have <scene name='Keegan_Gelvoria_Sandbox_1/Structure_4_domains/1'>four domains</scene> in humans. Thus, this enzyme is tetrameric with <scene name='Keegan_Gelvoria_Sandbox_1/Metal_binding_sites/1'>metal binding sites</scene> on each domain for the <scene name='Keegan_Gelvoria_Sandbox_1/Ligands/1'>K+</scene> and Mg2+ ligands to bind to. There are four types of tissue-specific isozymes: '''L''' (liver), '''R''' (red blood cells), '''M1''' (muscle, heart, and brain), and '''M2''' (early fetal tissue)<ref>{{website| title=SCOP: Protein: Pyruvate kinase (PK) from Human (Homo sapiens) [TaxId: 9606]|url=http://scop.berkeley.edu/data/scop.b.c.jh.b.b.d.html|}}</ref>. | ||
==Mechanism== | ==Mechanism== | ||
<scene name='Keegan_Gelvoria_Sandbox_1/N_c_rainbow/null'>Pyruvate Kinase</scene> catalyzes the final reaction of glycolysis. It couples the free energy of PEP cleavage to the generation of ATP during the synthesis of the final product, pyruvate. This reaction necessitates one K+ and two Mg2+ cations to be used in two steps. The first step is the nucleophilic attack of the PEP phosphorous atom by β-phosphoryl oxygen of ADP; this step displaces enolpyruvate while forming ATP. In the second step, enolpyruvate tautomerizes to pyruvate <ref>{{book |author=Voet, Donald; Voet, Judith C.; Pratt, Charlotte W.|title=Fundamentals of Biochemistry: Life at the Molecular Level|edition= 3|pages=502|}}</ref>. The formation of a high-energy intermediate by enolase in the 9th reaction of glycolysis allows for the synthesis of ATP in this reaction. Though the hydrolysis of 2PG is insufficient in driving the synthesis of ATP, the dehydration of 2PG allows for such a reaction to occur by forming a high-energy intermediate. The high potential of PEP reflects the large release of energy that occurs with the conversion of enolpyruvate to its keto tautomer, pyruvate <ref>{{book |author=Voet, Donald; Voet, Judith C.; Pratt, Charlotte W.|title=Fundamentals of Biochemistry: Life at the Molecular Level|edition= 3|pages=503|}}</ref>. | <scene name='Keegan_Gelvoria_Sandbox_1/N_c_rainbow/null'>Pyruvate Kinase</scene> catalyzes the final reaction of glycolysis. It couples the free energy of PEP cleavage to the generation of ATP during the synthesis of the final product, pyruvate. This reaction necessitates one K+ and two Mg2+ cations to be used in two steps. The first step is the nucleophilic attack of the PEP phosphorous atom by β-phosphoryl oxygen of ADP; this step displaces enolpyruvate while forming ATP. In the second step, enolpyruvate tautomerizes to pyruvate <ref>{{book |author=Voet, Donald; Voet, Judith C.; Pratt, Charlotte W.|title=Fundamentals of Biochemistry: Life at the Molecular Level|edition= 3|pages=502|}}</ref>. The formation of a high-energy intermediate by enolase in the 9th reaction of glycolysis allows for the synthesis of ATP in this reaction. Though the hydrolysis of 2PG is insufficient in driving the synthesis of ATP, the dehydration of 2PG allows for such a reaction to occur by forming a high-energy intermediate. The high potential of PEP reflects the large release of energy that occurs with the conversion of enolpyruvate to its keto tautomer, pyruvate <ref>{{book |author=Voet, Donald; Voet, Judith C.; Pratt, Charlotte W.|title=Fundamentals of Biochemistry: Life at the Molecular Level|edition= 3|pages=503|}}</ref>. | ||
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==3D structures of pyruvate kinase== | ==3D structures of pyruvate kinase== | ||
[[Pyruvate kinase 3D structures]] | |||
</StructureSection> | |||
==Additional Resources== | ==Additional Resources== | ||
Latest revision as of 09:44, 11 September 2022
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Additional Resources
For additional information, see: Glycolysis Enzymes
References
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Keegan Gelvoria, Andrew Alexander, Michal Harel, David Canner, Ann Taylor, Alexander Berchansky