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生物催化的酚的位点和对映选择性氧化去芳构化。

Biocatalytic site- and enantioselective oxidative dearomatization of phenols.

机构信息

Department of Chemistry, University of Michigan, Ann Arbor, Michigan 48109, USA.

Life Sciences Institute, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

Nat Chem. 2018 Feb;10(2):119-125. doi: 10.1038/nchem.2879. Epub 2017 Nov 13.

Abstract

The biocatalytic transformations used by chemists are often restricted to simple functional-group interconversions. In contrast, nature has developed complexity-generating biocatalytic reactions within natural product pathways. These sophisticated catalysts are rarely employed by chemists, because the substrate scope, selectivity and robustness of these catalysts are unknown. Our strategy to bridge the gap between the biosynthesis and synthetic chemistry communities leverages the diversity of catalysts available within natural product pathways. Here we show that, starting from a suite of biosynthetic enzymes, catalysts with complementary substrate scope as well as selectivity can be identified. This strategy has been applied to the oxidative dearomatization of phenols, a chemical transformation that rapidly builds molecular complexity from simple starting materials and cannot be accomplished with high selectivity using existing catalytic methods. Using enzymes from biosynthetic pathways, we have successfully developed a method to produce ortho-quinol products with controlled site- and stereoselectivity. Furthermore, we have capitalized on the scalability and robustness of this method in gram-scale reactions as well as multi-enzyme and chemoenzymatic cascades.

摘要

化学家所使用的生物催化转化通常仅限于简单的官能团转化。相比之下,自然界在天然产物途径中发展了产生复杂性的生物催化反应。由于这些复杂催化剂的底物范围、选择性和稳健性未知,化学家很少使用这些催化剂。我们在生物合成和合成化学两个领域之间架起桥梁的策略是利用天然产物途径中可用的催化剂多样性。在这里,我们展示了,从一系列生物合成酶开始,可以确定具有互补底物范围和选择性的催化剂。该策略已应用于苯酚的氧化脱芳构化反应,这是一种从简单起始原料快速构建分子复杂性的化学反应,使用现有的催化方法无法实现高选择性。我们利用生物合成途径中的酶,成功开发了一种方法,可以在控制位置和立体选择性的情况下生产邻醌产物。此外,我们还利用该方法在克级反应以及多酶和化学酶级联反应中的可扩展性和稳健性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0af/6503525/b8ea4b53968a/nihms-908337-f0002.jpg

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