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4.2.1.11: phosphopyruvate hydratase

This is an abbreviated version!
For detailed information about phosphopyruvate hydratase, go to the full flat file.

Word Map on EC 4.2.1.11

Reaction

2-phospho-D-glycerate
=
phosphoenolpyruvate
+
H2O

Synonyms

14-3-2 protein, 2-phospho-D-glycerate hydro-lyase, 2-phospho-D-glycerate hydrolase, 2-phospho-D-glycerate hydrolyase, 2-phospho-D-glyceratehydrolyase, 2-phosphoglycerate dehydratase, 2-phosphoglycerate enolase, 2-phosphoglycerate hydrolase, 2-phosphoglycerate hydrolyase, 2-phosphoglyceric dehydratase, 2-phosphopyruvate hydrolyase, alpha,alpha-enolase, alpha-enolase, alpha-enolase 1, alpha-enolase 2, Alt a XI, beta,beta-enolase, beta-enolase, Cla h VI, Csenolase, cytotoxin B, EhENO, ENO, ENO-1, Eno-alpha, ENO-S, ENO1, Eno1p, Eno2, ENOA, EnoA I, EnoA1, ENOL, Enol-1, enolase, enolase 1, enolase 2, enolase alpha, enolase gamma, enolase S, enolase-1, enolase-alpha, enolase-beta, Enolase-phosphatase E1, enolase2p, Err2p, Err3p, gamma,gamma-enolase, gamma-enolase, hENO1, HLE1, human alpha-enolase, human neuron-specific enolase, hydratase, phosphoenolpyruvate, Laminin binding protein, Major allergen Alt a 11, MASA, MSE, Neural enolase, neuron specific enolase, neuron-specific enolase, neuronal enolase, NNE, Non-neural enolase, NSE, OSE1, p45, P46, Pfen, Pfeno, phosphoenolpyruvate enolase, phosphoenolpyruvate hydratase, Phosphopyruvate hydratase, plasminogen-binding alpha-enolase, R-NSE, r-Pfen, rBaEn, rSsEno, SEN, SjENO, Skeletal muscle enolase, SPM2, SsEno, SSO0913, streptococcal surface enolase, Tau-crystallin, tv-ENO1, tv-rENO1, XEP, yeast enolase

ECTree

     4 Lyases
         4.2 Carbon-oxygen lyases
             4.2.1 Hydro-lyases
                4.2.1.11 phosphopyruvate hydratase

Application

Application on EC 4.2.1.11 - phosphopyruvate hydratase

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APPLICATION
ORGANISM
UNIPROT
COMMENTARY hide
LITERATURE
biofuel production
proteome analysis as well as enzyme assays performed in cell-free extracts demonstrates that glycerol is degraded via glyceraldehyde-3-phosphate, which is further metabolized through the lower part of glycolysis leading to formation of mainly ethanol and hydrogen. Fermentation of glycerol to ethanol and hydrogen by this bacterium represents a remarkable option to add value to the biodiesel industries by utilization of surplus glycerol
drug development
medicine
molecular biology