Department of Chemistry - BMC, Uppsala University, Box 576, 751 23 Uppsala, Sweden.
J Am Chem Soc. 2020 Jul 1;142(26):11324-11342. doi: 10.1021/jacs.0c04924. Epub 2020 Jun 17.
Recent years have witnessed an explosion of interest in understanding the role of conformational dynamics both in the evolution of new enzymatic activities from existing enzymes and in facilitating the emergence of enzymatic activity on scaffolds that were previously non-catalytic. There are also an increasing number of examples in the literature of targeted engineering of conformational dynamics being successfully used to alter enzyme selectivity and activity. Despite the obvious importance of conformational dynamics to both enzyme function and evolvability, many (although not all) computational design approaches still focus either on pure sequence-based approaches or on using structures with limited flexibility to guide the design. However, there exist a wide variety of computational approaches that can be (re)purposed to introduce conformational dynamics as a key consideration in the design process. Coupled with laboratory evolution and more conventional existing sequence- and structure-based approaches, these techniques provide powerful tools for greatly expanding the protein engineering toolkit. This Perspective provides an overview of evolutionary studies that have dissected the role of conformational dynamics in facilitating the emergence of novel enzymes, as well as advances in computational approaches that allow one to target conformational dynamics as part of enzyme design. Harnessing conformational dynamics in engineering studies is a powerful paradigm with which to engineer the next generation of designer biocatalysts.
近年来,人们越来越关注构象动力学在现有酶中产生新酶活性的演变以及在促进先前非催化支架上酶活性出现方面的作用。文献中也越来越多的例子表明,有针对性地对构象动力学进行工程设计可成功改变酶的选择性和活性。尽管构象动力学对酶功能和可进化性都很重要,但许多(尽管不是全部)计算设计方法仍然侧重于纯基于序列的方法,或者使用灵活性有限的结构来指导设计。然而,存在着各种各样的计算方法,可以(重新)用于将构象动力学作为设计过程中的关键考虑因素。与实验室进化以及更传统的基于序列和结构的方法相结合,这些技术为极大地扩展蛋白质工程工具包提供了强大的工具。本观点概述了研究构象动力学在促进新型酶出现方面的作用的进化研究,以及可以将构象动力学作为酶设计的一部分进行靶向的计算方法的进展。在工程研究中利用构象动力学是一种强大的范例,可以用来设计下一代的设计生物催化剂。