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拜耳-维利格单加氧酶:从蛋白质工程到生物催化应用

Baeyer-Villiger monooxygenases: From protein engineering to biocatalytic applications.

作者信息

Schmidt Sandy, Bornscheuer Uwe T

机构信息

Groningen Research Institute of Pharmacy, Chemical and Pharmaceutical Biology, Groningen, The Netherlands.

University of Greifswald, Institute of Biochemistry, Greifswald, Germany.

出版信息

Enzymes. 2020;47:231-281. doi: 10.1016/bs.enz.2020.05.007. Epub 2020 Jul 18.

Abstract

Biocatalytic processes are well established for the synthesis of high-value fine chemicals, especially for chiral pharmaceutical intermediates, by using natural or engineered enzymes. In contrast, examples for the enzymatic synthesis of bulk chemicals are still rare. Especially for the synthesis of polymer precursors such as ɛ-caprolactone, that is still produced under harsh conditions by using peracetic acid, Baeyer-Villiger monooxygenases (BVMOs) represent promising alternative catalysts that can perform the reaction under mild conditions. However, industrial production of this bulk chemical using a biocatalyst such as a BVMO has not been achieved yet due to a number of reasons. In this book chapter, we are emphasizing the versatility of BVMOs and their catalyzed reactions, and address several examples where protein engineering was applied in order to overcome several limitations associated to the use of BVMOs. Finally, we highlight several examples of BVMO applications, either in single enzyme transformations, or BVMOs involved in cascade reactions. By mainly focusing on recent developments and achievements in the field, we outline different concepts that were developed in order to pave the way for an industrial application of BVMOs.

摘要

生物催化过程已被广泛用于合成高价值精细化学品,特别是用于合成手性药物中间体,通过使用天然或工程改造的酶来实现。相比之下,酶促合成大宗化学品的例子仍然很少。特别是对于聚合物前体如ε-己内酯的合成,目前仍在苛刻条件下使用过氧乙酸进行生产,而拜耳-维利格单加氧酶(BVMOs)是有前景的替代催化剂,能够在温和条件下进行该反应。然而,由于多种原因,目前尚未实现使用诸如BVMO这样的生物催化剂进行这种大宗化学品的工业化生产。在本章中,我们强调BVMOs的多功能性及其催化反应,并介绍几个应用蛋白质工程来克服与使用BVMOs相关的若干限制的例子。最后,我们重点介绍BVMOs在单酶转化或参与级联反应中的几个应用实例。通过主要关注该领域的最新进展和成就,我们概述了为BVMOs的工业应用所开发的不同概念。

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