Chair of Industrial Organic Chemistry and Biotechnology, Faculty of Chemistry, Bielefeld University, Universitätsstraße 25, 33615, Bielefeld, Germany.
Biotechnology Research Center, Toyama Prefectural University, 5180 Kurokawa, Imizu, Toyama, 939-0398, Japan.
Angew Chem Int Ed Engl. 2021 Aug 23;60(35):19162-19168. doi: 10.1002/anie.202017234. Epub 2021 Jul 21.
In this contribution, the unique and unprecedented stereochemical phenomenon of an aldoxime dehydratase-catalyzed enantioselective dehydration of racemic E- and Z-aldoximes with selective formation of both enantiomeric forms of a chiral nitrile is rationalized by means of molecular modelling, comprising in silico mutations and docking studies. This theoretical investigation gave detailed insight into why with the same enzyme the use of racemic E- and Z-aldoximes leads to opposite forms of the chiral nitrile. The calculated mutants with a larger or smaller cavity in the active site were then prepared and used in biotransformations, showing the theoretically predicted decrease and increase of the enantioselectivities in these nitrile syntheses. This validated model also enabled the rational design of mutants with a smaller cavity, which gave superior enantioselectivities compared to the known wild-type enzyme, with excellent E-values of up to E>200 when the mutant OxdRE-Leu145Phe was utilized.
在本研究中,通过分子建模,包括计算机模拟突变和对接研究,对醛肟脱水酶催化外消旋 E-和 Z-醛肟的对映选择性脱水反应中独特且前所未有的立体化学现象进行了合理化解释,该反应选择性地形成了手性腈的两种对映异构体。这项理论研究深入了解了为什么使用相同的酶,外消旋 E-和 Z-醛肟会导致手性腈的不同形式。然后,制备了计算出的具有较大或较小活性位点空腔的突变体,并将其用于生物转化,表明在这些腈合成中理论预测的对映选择性的降低和增加。该验证模型还能够对具有较小空腔的突变体进行合理设计,与已知的野生型酶相比,这些突变体具有更高的对映选择性,当使用突变体 OxdRE-Leu145Phe 时,E 值高达 E>200,效果非常出色。