Department of Chemistry, Brandeis University, 415 South Street, Waltham, Massachusetts 02454, United States.
Chem Rev. 2020 Sep 23;120(18):9994-10078. doi: 10.1021/acs.chemrev.0c00306. Epub 2020 Aug 19.
Enzymatic reactions and noncovalent (i.e., supramolecular) interactions are two fundamental nongenetic attributes of life. Enzymatic noncovalent synthesis (ENS) refers to a process where enzymatic reactions control intermolecular noncovalent interactions for spatial organization of higher-order molecular assemblies that exhibit emergent properties and functions. Like enzymatic covalent synthesis (ECS), in which an enzyme catalyzes the formation of covalent bonds to generate individual molecules, ENS is a unifying theme for understanding the functions, morphologies, and locations of molecular ensembles in cellular environments. This review intends to provide a summary of the works of ENS within the past decade and emphasize ENS for functions. After comparing ECS and ENS, we describe a few representative examples where nature uses ENS, as a rule of life, to create the ensembles of biomacromolecules for emergent properties/functions in a myriad of cellular processes. Then, we focus on ENS of man-made (synthetic) molecules in cell-free conditions, classified by the types of enzymes. After that, we introduce the exploration of ENS of man-made molecules in the context of cells by discussing intercellular, peri/intracellular, and subcellular ENS for cell morphogenesis, molecular imaging, cancer therapy, and other applications. Finally, we provide a perspective on the promises of ENS for developing molecular assemblies/processes for functions. This review aims to be an updated introduction for researchers who are interested in exploring noncovalent synthesis for developing molecular science and technologies to address societal needs.
酶反应和非共价(即超分子)相互作用是生命的两个基本非遗传属性。酶非共价合成(ENS)是指一种过程,其中酶反应控制分子间的非共价相互作用,以实现表现出涌现性质和功能的更高阶分子组装体的空间组织。与酶共价合成(ECS)类似,其中酶催化形成共价键以生成单个分子,ENS 是理解细胞环境中分子组装体的功能、形态和位置的统一主题。
本综述旨在对过去十年中 ENS 的工作进行总结,并强调 ENS 的功能。在比较 ECS 和 ENS 之后,我们描述了一些自然界中使用 ENS 的代表性例子,作为生命的规则,用于在众多细胞过程中创建具有涌现性质/功能的生物大分子组装体。然后,我们专注于无细胞条件下的人造(合成)分子的 ENS,根据酶的类型进行分类。之后,我们通过讨论细胞间、胞内/细胞周和亚细胞 ENS 来介绍在细胞环境中探索人造分子的 ENS 用于细胞形态发生、分子成像、癌症治疗和其他应用的情况。最后,我们对 ENS 开发功能分子组装体/过程的前景进行了展望。
本综述旨在为有兴趣探索非共价合成以开发分子科学和技术来满足社会需求的研究人员提供一个更新的介绍。