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首页> 外文期刊>Journal of Organometallic Chemistry >DFT Mechanism Studies: Biomimetic 1,4-NADH Chemoselective, Co-factor Regeneration with [Cp*Rh(bpy)H](+), in Tandem with the Biocatalysis Pathways of a Core Model of the (HLADH)-Zn(II) Mediated Enzyme, in the Enantioselective Reduction of Achiral Ketones to Chiral S-Alcohols
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DFT Mechanism Studies: Biomimetic 1,4-NADH Chemoselective, Co-factor Regeneration with [Cp*Rh(bpy)H](+), in Tandem with the Biocatalysis Pathways of a Core Model of the (HLADH)-Zn(II) Mediated Enzyme, in the Enantioselective Reduction of Achiral Ketones to Chiral S-Alcohols

机译:DFT机制研究:仿生1,4-NADH化学选择,与[CP * RH(BPE)H](+)的共聚因子再生,与(HLADH)-ZN(II)的核心模型的生物发作途径串联 介导的酶,在映的酮对手性s-醇的映选择性还原

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摘要

Quantum Chemical (QC) calculations, utilizing Density Functional Theory (DFT), were performed to investigate the mechanistic aspects of the chemoselective catalyzed reaction of [Cp*Rh(bpy)H](+) with the biomimetic NAD(+) analogues, N-benzylnicotinamide triflate, 1, and beta-nicotinamide ribose-5'-methyl phosphate, 2, in the conversion to their 1,4-NADH analogues, 1,4-dihydro-N-benzylnicotinamide, 4, and beta-1,4-dihydronicotinamide-5'-ribose methyl phosphate, 5. This reaction was in tandem with the 1,4-NADH dependent HLADH-Zn(II)-catalyzed reduction of achiral ketones to chiral S-alcohols. The [Cp*Rh(bpy)H](+) complex, and not its equilibrium tautomer, [eta(4)-Cp*HRh(bpy)](+), was found to control the hydride transfer during the biomimetic NAD(+)/1,4-NADH conversion, through the non-covalent interactions of the biomimetic co-factors with [Cp*Rh(bpy)H](+). The thermodynamics and kinetics for the chiral reduction of the Zn(II) bound ketones, 2-pentanone and 4-phenyl-2-butanone, with co-factor, 4, catalyzed by Zn(SCH3)(2)(Imidazole), a core model of the Zn(II)-based catalytic center of HLADH, was also investigated by the evaluation of two possible reaction pathways: (1) formation of a ZnH from the C4-H hydride transfer of co-factor, 4, followed by reaction of the postulated ZnH with the bound 2-pentanone or 4-phenyl-2-butanone substrate, and (2), the direct C4-H transfer to the bound achiral ketone substrates, to provide the dominant chiral alcohols, S-2-pentanol or S-4-phenyl-2-butanol. The latter pathway was found most viable, and DFT calculations also revealed an essential eta(2)-coordination of the 5,6 double bond of co-factor, 4, to the HLADH-Zn(II) metal ion center, upon imidazole decomplexation, providing an asymmetric differentiation of S-eta(2)-5,6-1,4-NADH-Zn(II) binding. A proposed new paradigm for the Zn(II)'s non-innocent role in the HLADH-Zn(II) biocatalysis reduction mechanism, for enantioselective hydride transfer to a Zn(II) bound ketone, providing S-alcohols. (C) 2021 Elsevier B.V. All rights reserved.
机译:利用密度泛函理论(DFT)进行量子化学(QC)计算,以研究[Cp*Rh(bpy)H](+)与仿生NAD(+)类似物N-苄基烟酰胺三氟酸酯1和β-烟酰胺核糖-5'-甲基磷酸2在转化为其1,4-NADH类似物1,4-二氢-N-苄基烟酰胺时的化学选择性催化反应的机理,和β-1,4-二氢烟酰胺-5'-核糖磷酸甲酯,5。该反应与依赖于1,4-NADH的HLADH-Zn(II)催化非手性酮还原为手性S-醇的反应同时进行。我们发现,[Cp*Rh(bpy)H](+)复合物,而不是其平衡互变异构体[eta(4)-Cp*HRh(bpy)](+)通过仿生辅因子与[Cp*Rh(bpy)H](+)的非共价相互作用,在仿生NAD(+)/1,4-NADH转化过程中控制氢化物转移。通过评估两种可能的反应途径,还研究了锌(II)结合酮、2-戊酮和4-苯基-2-丁酮在Zn(SCH3)(2)(咪唑)催化下与辅因子4的手性还原的热力学和动力学。Zn(SCH3)(2)(咪唑)是HLADH基于锌(II)的催化中心的核心模型,然后假设的ZnH与结合的2-戊酮或4-苯基-2-丁酮底物反应,以及(2)直接C4-H转移到结合的非手性酮底物,以提供主要的手性醇,S-2-戊醇或S-4-苯基-2-丁醇。后一种途径被发现是最可行的,DFT计算还显示,在咪唑解折叠后,辅因子4的5,6双键与HLADH Zn(II)金属离子中心之间存在一个基本的eta(2)-配位,提供了S-eta(2)-5,6-1,4-NADH-Zn(II)结合的不对称分化。在HLADH-Zn(II)生物催化还原机制中,Zn(II)的非无害作用提出了一种新的范例,用于将对映选择性氢化物转移到Zn(II)结合的酮,提供s-醇。(c)2021爱思唯尔B.V.保留所有权利。

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