Construction of a synthetic metabolic pathway for biosynthesis of the non-natural methionine precursor 2,4-dihydroxybutyric acid

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作者
Thomas Walther
Christopher M. Topham
Romain Irague
Clément Auriol
Audrey Baylac
Hélène Cordier
Clémentine Dressaire
Luce Lozano-Huguet
Nathalie Tarrat
Nelly Martineau
Marion Stodel
Yannick Malbert
Marc Maestracci
Robert Huet
Isabelle André
Magali Remaud-Siméon
Jean Marie François
机构
[1] LISBP,
[2] Université de Toulouse,undefined
[3] CNRS,undefined
[4] INRA,undefined
[5] INSA,undefined
[6] Toulouse,undefined
[7] France,undefined
[8] TWB,undefined
[9] Adisseo SA,undefined
[10] Antony Parc II,undefined
[11] Present address: Institute of Natural Materials Technology,undefined
[12] TU Dresden,undefined
[13] 01062 Dresden,undefined
[14] Germany,undefined
[15] Present address: CEMES-CNRS,undefined
[16] 29 Rue Jeanne Marvig,undefined
[17] F-31055 Toulouse,undefined
[18] France,undefined
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2,4-Dihydroxybutyric acid (DHB) is a molecule with considerable potential as a versatile chemical synthon. Notably, it may serve as a precursor for chemical synthesis of the methionine analogue 2-hydroxy-4-(methylthio)butyrate, thus, targeting a considerable market in animal nutrition. However, no natural metabolic pathway exists for the biosynthesis of DHB. Here we have therefore conceived a three-step metabolic pathway for the synthesis of DHB starting from the natural metabolite malate. The pathway employs previously unreported malate kinase, malate semialdehyde dehydrogenase and malate semialdehyde reductase activities. The kinase and semialdehyde dehydrogenase activities were obtained by rational design based on structural and mechanistic knowledge of candidate enzymes acting on sterically cognate substrates. Malate semialdehyde reductase activity was identified from an initial screening of several natural enzymes, and was further improved by rational design. The pathway was expressed in a minimally engineered Escherichia coli strain and produces 1.8 g l−1 DHB with a molar yield of 0.15.
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