Mechanisms in the Synthesis of S-Alcohols with 1,4-NADH Biomimetic Co-factor N-Benzyl-1,4-dihydronicotinamide using Horse Liver Alcohol Dehydrogenase: A Hybrid Computational Study.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Matteo Farina, Matteo Capone, Enrico Bodo, Richard H Fish, Massiliano Aschi, Alessandro Marrone, Isabella Daidone
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Abstract

The enantioselective reduction of prochiral ketones catalyzed by horse liver alcohol dehydrogenase (HLADH), was investigated via a hybrid computational approach, for molecular reactions involved in chiral synthesis of S-alcohols, when the natural co-factor, 1,4-dihyronicotinamide adenine dinucleotide, 1,4-NADH, was replaced with biomimetic co-factor, N-benzyl-1,4-dihydronicotinamide, 1. We surmised that different hydride and proton transfer mechanisms were involved using co-factor, 1. An alternative mechanism, where the hydride transfer step occurred, via an η1-keto-S-η2-5,6-1,4-dihydronicotinamide-Zn(II) complex, was previously investigated with a model of the HLADH-Zn(II) catalytic site (J. Organometal. Chem. 2021, 943, 121810). Presently, we studied canonical and alternative mechanisms compared to models of the entire enzyme structure. We disproved the η2-Zn(II) complex, and discovered a canonical hydride transfer from biomimetic 1,4-NADH, 1, to the Zn(II) bound prochiral ketone substrate, followed by a new proton relay, consisting of a water chain connecting His51 to Ser48 that accomplished the S-alkoxy anion's protonation to yield the final S-alcohol product. The HLADH catalysis, with biomimetic co-factor, 1, that replaced the ribose group, the 5'-diphosphate groups, and the adenine nucleotide with a N-benzyl group, has provided a new paradigm for the design of other structures of 1,4-NADH biomimetic co-factors, including their economic value in biocatalysis reactions.

使用马肝醇脱氢酶与 1,4-NADH 生物模拟辅助因子 N-苄基-1,4-二氢烟酰胺合成 S-醇的机制:混合计算研究。
我们通过混合计算方法研究了马肝醇脱氢酶(HLADH)催化的原手性酮的对映选择性还原,当天然辅助因子 1,4-NADH 被生物模拟辅助因子 N-苄基-1,4-二氢烟酰胺 1 取代时,该反应涉及 S-醇的手性合成。 我们推测,使用辅助因子 1 会涉及不同的氢化物和质子转移机制。另一种机制是通过 η1-keto-S-η2-5,6-1,4-dihydronicotinamide-Zn(II) 复合物进行氢化物转移,我们以前曾利用 HLADH-Zn(II) 催化位点模型对该机制进行过研究(《有机金属化学》2021 年第 943 期,121810 页)。 目前,我们研究了与整个酶结构模型相比较的典型机制和替代机制。 我们推翻了 η2-Zn(II) 复合物,并发现了从仿生物 1,4-NADH 1 到与 Zn(II) 结合的手性酮底物的典型氢化物转移,随后是新的质子中继,由连接 His51 和 Ser48 的水链组成,完成了 S-烷氧基阴离子的质子化,产生最终的 S-醇产物。HLADH 催化作用的生物仿生辅助因子 1 用 N-苄基取代了核糖基团、5'-二磷酸基团和腺嘌呤核苷酸,为设计其他结构的 1,4-NADH 生物仿生辅助因子提供了新的范例,包括其在生物催化反应中的经济价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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