| Literature DB >> 28176464 |
Nico Kress1, Johanna Rapp1, Bernhard Hauer1.
Abstract
A deeper understanding of the >99 % S-selective reduction of both isomers of citral catalyzed by NCR ene reductase was achieved by active-site mutational studies and docking simulation. Though structurally similar, the E/Z isomers of citral showed a significantly varying selectivity response to introduced mutations. Although it was possible to invert (E)-citral reduction enantioselectivity to ee 46 % (R) by introducing mutation W66A, for (Z)-citral it remained ≥88 % (S) for all single-residue variants. Residue 66 seems to act as a lever for opposite binding modes. This was underlined by a W66A-based double-mutant library that enhanced the (E)-citral derived enantioselectivity to 63 % (R) and significantly lowered the S selectivity for (Z)-citral to 44 % (S). Formation of (R)-citronellal from an (E/Z)-citral mixture is a desire in industrial (-)-menthol synthesis. Our findings pave the way for a rational enzyme engineering solution.Entities:
Keywords: NCR ene reductase; citral reduction; isomers; protein engineering; structure-activity relationships
Mesh:
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Year: 2017 PMID: 28176464 DOI: 10.1002/cbic.201700011
Source DB: PubMed Journal: Chembiochem ISSN: 1439-4227 Impact factor: 3.164