Bornscheuer Uwe T
Department of Biotechnology & Enzyme Catalysis, Institute of Biochemistry, Greifswald University, Felix-Hausdorff-Str. 4, 17489 Greifswald, Germany
Philos Trans A Math Phys Eng Sci. 2018 Jan 13;376(2110). doi: 10.1098/rsta.2017.0063.
Biocatalysis has undergone a tremendous development in the past few years. A plethora of methods enable the rather rapid tailored-design of an enzyme for a targeted reaction such as asymmetric synthesis of a chiral building block by the combination of information from sequence and structure databases with modern molecular biology methods and high-throughput screening tools. Moreover, novel non-natural reactions could be implemented into protein scaffolds and new enzyme classes are emerging, both broadening the repertoire of reactions now available for organic synthesis. Furthermore, impressive examples of metabolic engineering-the combination of several newly introduced reaction steps in a microbial host-have been developed, paving the way for large-scale processes for both pharmaceuticals and bulk chemicals. This contribution highlights recent developments in this area and points out future challenges.This article is part of a discussion meeting issue 'Providing sustainable catalytic solutions for a rapidly changing world'.
在过去几年中,生物催化经历了巨大的发展。大量方法能够通过将序列和结构数据库中的信息与现代分子生物学方法及高通量筛选工具相结合,为靶向反应(如手性结构单元的不对称合成)相当快速地量身设计一种酶。此外,新的非天然反应能够被引入蛋白质支架中,并且新的酶类别正在出现,这两者都拓宽了目前可用于有机合成的反应种类。此外,已经开发出代谢工程的令人印象深刻的实例——在微生物宿主中组合几个新引入的反应步骤——为药物和大宗化学品的大规模生产铺平了道路。本论文突出了该领域的最新进展并指出了未来的挑战。本文是“为快速变化的世界提供可持续催化解决方案”讨论会议特刊的一部分。