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PMID: 27294321 Published · ppublish English

A conserved phosphatase destroys toxic glycolytic side products in mammals and yeast.

Nature chemical biology ·Vol. 12 ·No. 8 ·0000-00-00

Collard François, Baldin Francesca, Gerin Isabelle, Bolsée Jennifer, Noël Gaëtane, Graff Julie, Veiga-da-Cunha Maria, Stroobant Vincent, Vertommen Didier, Houddane Amina, Rider Mark H, Linster Carole L, Van Schaftingen Emile, Bommer Guido T

Abstract

Metabolic enzymes are very specific. However, most of them show weak side activities toward compounds that are structurally related to their physiological substrates, thereby producing side products that may be toxic. In some cases, 'metabolite repair enzymes' eliminating side products have been identified. We show that mammalian glyceraldehyde 3-phosphate dehydrogenase and pyruvate kinase, two core glycolytic enzymes, produce 4-phosphoerythronate and 2-phospho-L-lactate, respectively. 4-Phosphoerythronate strongly inhibits an enzyme of the pentose phosphate pathway, whereas 2-phospho-L-lactate inhibits the enzyme producing the glycolytic activator fructose 2,6-bisphosphate. We discovered that a single, widely conserved enzyme, known as phosphoglycolate phosphatase (PGP) in mammals, dephosphorylates both 4-phosphoerythronate and 2-phospho-L-lactate, thereby preventing a block in the pentose phosphate pathway and glycolysis. Its yeast ortholog, Pho13, similarly dephosphorylates 4-phosphoerythronate and 2-phosphoglycolate, a side product of pyruvate kinase. Our work illustrates how metabolite repair enzymes can make up for the limited specificity of metabolic enzymes and permit high flux in central metabolic pathways.

Article Info
Journal
Nature chemical biology
Abbr.
Nat Chem Biol
Published
0000-00-00
Indexed
2016-07-20
Updated
2016-07-20
Language
English
Country/Region
United States
NLM ID
101231976
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