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有氧 CODH 的 Mo/Cu 辅因子的 W/Cu 合成模型表明,生化 CO 氧化需要一对受挫折的路易斯酸碱对。

A W/Cu Synthetic Model for the Mo/Cu Cofactor of Aerobic CODH Indicates That Biochemical CO Oxidation Requires a Frustrated Lewis Acid/Base Pair.

机构信息

Department of Chemistry, University of Illinois at Chicago, 845 W. Taylor Street, Chicago, Illinois 60607, United States.

Department of Pharmaceutical Sciences, College of Pharmacy, 833 S. Wood Street, Chicago, Illinois 60612, United States.

出版信息

J Am Chem Soc. 2020 Jul 22;142(29):12635-12642. doi: 10.1021/jacs.0c03343. Epub 2020 Jul 13.

Abstract

Constructing synthetic models of the Mo/Cu active site of aerobic carbon monoxide dehydrogenase (CODH) has been a long-standing synthetic challenge thought to be crucial for understanding how atmospheric concentrations of CO and CO are regulated in the global carbon cycle by chemolithoautotrophic bacteria and archaea. Here we report a W/Cu complex that is among the closest synthetic mimics constructed to date, enabled by a silyl protection/deprotection strategy that provided access to a kinetically stabilized complex with mixed O/S ligation between (bdt)(O)W and Cu(NHC) (bdt = benzene dithiolate, NHC = N-heterocyclic carbene) sites. Differences between the inorganic core's structural and electronic features outside the protein environment relative to the native CODH cofactor point to a biochemical CO oxidation mechanism that requires a strained active site geometry, with Lewis acid/base frustration enforced by the protein secondary structure. This new mechanistic insight has the potential to inform synthetic design strategies for multimetallic energy storage catalysts.

摘要

构建需氧一氧化碳脱氢酶(CODH)的 Mo/Cu 活性位点的人工合成模型一直是一个长期存在的合成挑战,被认为对于理解化能自养细菌和古菌如何调节大气中 CO 和 CO 的浓度至关重要。在这里,我们报告了一种 W/Cu 配合物,它是迄今为止构建的最接近的人工模拟物之一,这得益于一种硅保护/去保护策略,该策略提供了一种动力学稳定的配合物,其在(bdt)(O)W 和 Cu(NHC)(bdt = 苯二硫代酸盐,NHC = 氮杂环卡宾)位点之间具有混合 O/S 配体。与天然 CODH 辅因子相比,在蛋白质环境之外,无机核的结构和电子特征的差异表明需要应变活性位点几何形状的生物化学 CO 氧化机制,该机制由蛋白质二级结构强制实施路易斯酸碱受挫。这种新的机理见解有可能为多金属储能催化剂的合成设计策略提供信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2c1/9307224/3eb825216276/nihms-1823337-f0002.jpg

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