Rational engineering of a malate dehydrogenase for microbial production of 2,4-dihydroxybutyric acid via homoserine pathway

Author:

Frazão Cláudio J.R.1,Topham Christopher M.2,Malbert Yoann3,François Jean Marie13,Walther Thomas1

Affiliation:

1. LISBP, Université de Toulouse, CNRS, INRA, INSA, 135 Avenue de Rangueil, Toulouse F-31077, France

2. Molecular Forces Consulting, 40 rue Boyssonne, Toulouse F-31400, France

3. TWB, 3 Rue des Satellites, Canal Biotech Building 2, Toulouse F-31400, France

Abstract

A synthetic pathway for the production of 2,4-dihydroxybutyric acid from homoserine (HMS), composed of two consecutive enzymatic reaction steps has been recently reported. An important step in this pathway consists in the reduction in 2-keto-4-hydroxybutyrate (OHB) into (l)-dihydroxybutyrate (DHB), by an enzyme with OHB reductase activity. In the present study, we used a rational approach to engineer an OHB reductase by using the cytosolic (l)-malate dehydrogenase from Escherichia coli (Ec-Mdh) as the template enzyme. Structural analysis of (l)-malate dehydrogenase and (l)-lactate dehydrogenase enzymes acting on sterically cognate substrates revealed key residues in the substrate and co-substrate-binding sites responsible for substrate discrimination. Accordingly, amino acid changes were introduced in a stepwise manner into these regions of the protein. This rational engineering led to the production of an Ec-Mdh-5E variant (I12V/R81A/M85E/G179D/D86S) with a turnover number (kcat) on OHB that was increased by more than 2000-fold (from 0.03 up to 65.0 s−1), which turned out to be 7-fold higher than that on its natural substrate oxaloacetate. Further kinetic analysis revealed the engineered enzyme to possess comparable catalytic efficiencies (kcat/Km) between natural and synthetic OHB substrates (84 and 31 s−1 mM−1, respectively). Shake-flask cultivation of a HMS-overproducing E. coli strain expressing this improved OHB reductase together with a transaminase encoded by aspC able to convert HMS to OHB resulted in 89% increased DHB production as compared with our previous report using a E. coli host strain expressing an OHB reductase derived from the lactate dehydrogenase A of Lactococcus lactis.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference44 articles.

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2. Construction of a synthetic metabolic pathway for the production of 2,4-dihydroxybutyric acid from homoserine;Walther;Metab. Eng.,2017

3. Walther, T., Cordier, H., Dressaire, C., François, J. M. and Huet, R. (2014) Method for the preparation of 2,4-dihydroxybutyrate. U.S. Pat. WO/2014/009435A1

4. The synthetic xylulose-1 phosphate pathway increases production of glycolic acid from xylose-rich sugar mixtures;Alkim;Biotechnol. Biofuels,2016

5. Synthetic pathway optimization for improved 1,2,4-butanetriol production;Sun;J. Ind. Microbiol. Biotechnol.,2016

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