4.7 Article

Phylogenetics-based identification and characterization of a superior 2,3-butanediol dehydrogenase for Zymomonas mobilis expression

期刊

BIOTECHNOLOGY FOR BIOFUELS
卷 13, 期 1, 页码 -

出版社

BMC
DOI: 10.1186/s13068-020-01820-x

关键词

Butanediol dehydrogenase; Serratia marcescens; Acetoin; 2,3-Butanediol; Crystallography; Phylogenetics

资金

  1. U.S. Department of Energy Office of Energy Efficiency and Renewable Energy Bioenergy Technologies Office [DE-AC36-08GO28308]

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Background: Zymomonas mobilis has recently been shown to be capable of producing the valuable platform biochemical, 2,3-butanediol (2,3-BDO). Despite this capability, the production of high titers of 2,3-BDO is restricted by several physiological parameters. One such bottleneck involves the conversion of acetoin to 2,3-BDO, a step catalyzed by 2,3-butanediol dehydrogenase (Bdh). Several Bdh enzymes have been successfully expressed in Z. mobilis, although a highly active enzyme is yet to be identified for expression in this host. Here, we report the application of a phylogenetic approach to identify and characterize a superior Bdh, followed by validation of its structural attributes using a mutagenesis approach. Results:Of the 11 distinct bdh genes that were expressed in Z. mobilis, crude extracts expressing Serratia marcescens Bdh (SmBdh) were found to have the highest activity (8.89 mu mol/min/mg), when compared to other Bdh enzymes (0.34-2.87 mu mol/min/mg). The SmBdh crystal structure was determined through crystallization with cofactor (NAD(+)) and substrate (acetoin) molecules bound in the active site. Active SmBdh was shown to be a tetramer with the active site populated by a Gln247 residue contributed by the diagonally opposite subunit. SmBdh showed a more extensive supporting hydrogen-bond network in comparison to the other well-studied Bdh enzymes, which enables improved substrate positioning and substrate specificity. This protein also contains a short alpha 6 helix, which provides more efficient entry and exit of molecules from the active site, thereby contributing to enhanced substrate turnover. Extending the alpha 6 helix to mimic the lower activity Enterobacter cloacae (EcBdh) enzyme resulted in reduction of SmBdh function to nearly 3% of the total activity. In great contrast, reduction of the corresponding alpha 6 helix of the EcBdh to mimic the SmBdh structure resulted in similar to 70% increase in its activity. Conclusions: This study has demonstrated that SmBdh is superior to other Bdhs for expression in Z. mobilis for 2,3-BDO production. SmBdh possesses unique structural features that confer biochemical advantage to this protein. While coordinated active site formation is a unique structural characteristic of this tetrameric complex, the smaller alpha 6 helix and extended hydrogen network contribute towards improved activity and substrate promiscuity of the enzyme.

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