Hubert Catherine B, Barry Sarah M
Department of Chemistry, Faculty of Natural and Mathematical Sciences, Britannia House, 7 Trinity St, London SE1 1DB, U.K.
Biochem Soc Trans. 2016 Jun 15;44(3):738-44. doi: 10.1042/BST20160063.
Catalysts are a vital part of synthetic chemistry. However, there are still many important reactions for which catalysts have not been developed. The use of enzymes as biocatalysts for synthetic chemistry is growing in importance due to the drive towards sustainable methods for producing both bulk chemicals and high value compounds such as pharmaceuticals, and due to the ability of enzymes to catalyse chemical reactions with excellent stereoselectivity and regioselectivity. Such challenging transformations are a common feature of natural product biosynthetic pathways. In this mini-review, we discuss the potential to use biosynthetic pathways as a starting point for biocatalyst discovery. We introduce the reader to natural product assembly and tailoring, then focus on four classes of enzyme that catalyse C─H bond activation reactions to functionalize biosynthetic precursors. Finally, we briefly discuss the challenges involved in novel enzyme discovery.
催化剂是合成化学的重要组成部分。然而,仍有许多重要反应尚未开发出相应的催化剂。由于人们致力于开发生产大宗化学品和高价值化合物(如药物)的可持续方法,以及酶具有以优异的立体选择性和区域选择性催化化学反应的能力,酶作为合成化学的生物催化剂的应用正变得越来越重要。此类具有挑战性的转化是天然产物生物合成途径的共同特征。在本综述中,我们讨论了将生物合成途径作为发现生物催化剂起点的潜力。我们向读者介绍天然产物的组装和修饰,然后重点介绍四类催化C─H键活化反应以使生物合成前体功能化的酶。最后,我们简要讨论了发现新型酶所涉及的挑战。