DFT-based prediction of reactivity of short-chain alcohol dehydrogenase

被引:0
作者
I. Stawoska
A. Dudzik
M. Wasylewski
M. Jemioła-Rzemińska
A. Skoczowski
K. Strzałka
M. Szaleniec
机构
[1] Pedagogical University of Cracow,Institute of Biology
[2] Polish Academy of Sciences,Jerzy Haber Institute of Catalysis and Surface Chemistry
[3] Jagiellonian University,Faculty of Biochemistry, Biophysics and Biotechnology
[4] Jagiellonian University,Malopolska Centre of Biotechnology
[5] Polish Academy of Sciences,The Franciszek Górski Institute of Plant Physiology
来源
Journal of Computer-Aided Molecular Design | 2017年 / 31卷
关键词
Short chain dehydrogenase; (; )-1-phenylethanol dehydrogenase; PEDH; Alcohol dehydrogenase/ketoreductase; Reduction of ketones; Hydride transfer;
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学科分类号
摘要
The reaction mechanism of ketone reduction by short chain dehydrogenase/reductase, (S)-1-phenylethanol dehydrogenase from Aromatoleum aromaticum, was studied with DFT methods using cluster model approach. The characteristics of the hydride transfer process were investigated based on reaction of acetophenone and its eight structural analogues. The results confirmed previously suggested concomitant transfer of hydride from NADH to carbonyl C atom of the substrate with proton transfer from Tyr to carbonyl O atom. However, additional coupled motion of the next proton in the proton-relay system, between O2′ ribose hydroxyl and Tyr154 was observed. The protonation of Lys158 seems not to affect the pKa of Tyr154, as the stable tyrosyl anion was observed only for a neutral Lys158 in the high pH model. The calculated reaction energies and reaction barriers were calibrated by calorimetric and kinetic methods. This allowed an excellent prediction of the reaction enthalpies (R2 = 0.93) and a good prediction of the reaction kinetics (R2 = 0.89). The observed relations were validated in prediction of log Keq obtained for real whole-cell reactor systems that modelled industrial synthesis of S-alcohols.
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页码:587 / 602
页数:15
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