4.5 Article

Structural and enzymatic characterization of Bacillus subtilis R, R-2,3-butanediol dehydrogenase

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DOI: 10.1016/j.bbagen.2023.130326

Keywords

3-butanediol; Acetoin; 3-butanediol dehydrogenase; Crystal structure; Molecular docking

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In this study, the X-ray crystal structure of Bacillus subtilis R,R-BDH was successfully crystallized and solved. A zinc ion was found in the catalytic center, coordinated by Cys37, His70 and Glu152, stabilizing the chiral substrates observed in the predicted molecular docking model. The interaction patterns of different chiral substrates in the molecular docking model explained the react priority measured by the enzyme activity assay of R,R-BDH. Site-directed mutation experiments determined the importance of amino acids Cys37, Thr244, Ile268, and Lys340 in the catalytic active center. The structural information presented in this study enhances the understanding of the catalytic mechanism of BDHs and provides useful guidance for directional engineering of R,R-BDH for high-purity monochiral BD and AC.
2,3-butanediol dehydrogenase (BDH, EC 1.1.1.76) also known as acetoin reductase (AR, EC 1.1.1.4) is the key enzyme converting acetoin (AC) into 2,3-butanediol (BD) and undertaking the irreversible conversion of diacetyl to acetoin in various microorganisms. The existence of three BDHs (R,R-, meso-, and S,S-BDH) product different BD isomers. Catalyzing mechanisms of meso-and S,S-BDH have been understood with the assistance of their X-ray crystal structures. However, the lack of structural data for R,R-BDH restricts the integral understanding of the catalytic mechanism of BDHs. In this study, we successfully crystallized and solved the X-ray crystal structure of Bacillus subtilis R,R-BDH. A zinc ion was found locating in the catalytic center and coordinated by Cys37, His70 and Glu152, helping to stabilize the chiral substrates observed in the predicted molecular docking model. The interaction patterns of different chiral substrates in the molecular docking model explained the react priority measured by the enzyme activity assay of R,R-BDH. Site-directed mutation experiments determined that the amino acids Cys37, Thr244, Ile268 and Lys340 are important in the catalytically active center. The structural information of R,R-BDH presented in this study accomplished the understanding of BDHs catalytic mechanism and more importantly provides useful guidance for the directional engineering of R,R-BDH to obtain high-purity monochiral BD and AC.

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