School of Chemistry, University of Nottingham, University Park, Nottingham, NG7 2RD, UK.
School of Chemistry, University College Dublin, Belfield, Dublin 4, Ireland.
Curr Opin Chem Biol. 2020 Oct;58:146-154. doi: 10.1016/j.cbpa.2020.08.006. Epub 2020 Nov 2.
Nature exploits biosynthetic cascades to construct numerous molecules from a limited set of starting materials. A deeper understanding of biosynthesis and extraordinary developments in gene technology has allowed the manipulation of natural pathways and construction of artificial cascades for the preparation of a range of molecules, which would be challenging to access using traditional synthetic chemical approaches. Alongside these metabolic engineering strategies, there has been continued interest in developing in vivo and in vitro biocatalytic cascades. Advancements in both metabolic engineering and biocatalysis are complementary, and this article aims to highlight some of the most exciting developments in these two areas with a particular focus on exploring those that have the potential to advance both pathway engineering and more traditional biocatalytic cascade development.
自然界利用生物合成级联反应从有限的起始原料构建大量分子。对生物合成的更深入了解和基因技术的非凡发展,使得人们能够操纵天然途径并构建人工级联反应,从而制备一系列用传统合成化学方法难以获得的分子。除了这些代谢工程策略外,人们还一直有兴趣开发体内和体外生物催化级联反应。代谢工程和生物催化的进步是相辅相成的,本文旨在重点探讨这两个领域中最令人兴奋的一些进展,特别关注那些有可能推进途径工程和更传统的生物催化级联反应发展的进展。