From Catalysis of Evolution to Evolution of Catalysis.

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Rotem Edri, Loren Dean Williams, Moran Frenkel-Pinter
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引用次数: 0

Abstract

ConspectusThe mystery of the origins of life is one of the most difficult yet intriguing challenges to which humanity has grappled. How did biopolymers emerge in the absence of enzymes (evolved biocatalysts), and how did long-lasting chemical evolution find a path to the highly selective complex biology that we observe today? In this paper, we discuss a chemical framework that explores the very roots of catalysis, demonstrating how standard catalytic activity based on chemical and physical principles can evolve into complex machineries. We provide several examples of how prebiotic catalysis by small molecules can be exploited to facilitate polymerization, which in biology has transformed the nature of catalysis. Thus, catalysis evolved, and evolution was catalyzed, during the transformation of prebiotic chemistry to biochemistry. Traditionally, a catalyst is defined as a substance that (i) speeds up a chemical reaction by lowering activation energy through different chemical mechanisms and (ii) is not consumed during the course of the reaction. However, considering prebiotic chemistry, which involved a highly diverse chemical space (i.e., high number of potential reactants and products) and constantly changing environment that lacked highly sophisticated catalytic machinery, we stress here that a more primitive, broader definition should be considered. Here, we consider a catalyst as any chemical species that lowers activation energy. We further discuss various demonstrations of how simple prebiotic molecules such as hydroxy acids and mercaptoacids promote the formation of peptide bonds via energetically favored exchange reactions. Even though the small molecules are partially regenerated and partially retained within the resulting oligomers, these prebiotic catalysts fulfill their primary role. Catalysis by metal ions and in complex chemical mixtures is also highlighted. We underline how chemical evolution is primarily dictated by kinetics rather than thermodynamics and demonstrate a novel concept to support this notion. Moreover, we propose a new perspective on the role of water in prebiotic catalysis. The role of water as simply a "medium" obscures its importance as an active participant in the chemistry of life, specifically as a very efficient catalyst and as a participant in many chemical transformations. Here we highlight the unusual contribution of water to increasing complexification over the course of chemical evolution. We discuss possible pathways by which prebiotic catalysis promoted chemical selection and complexification. Taken together, this Account draws a connection line between prebiotic catalysis and contemporary biocatalysis and demonstrates that the fundamental elements of chemical catalysis are embedded within today's biocatalysts. This Account illustrates how the evolution of catalysis was intertwined with chemical evolution from the very beginning.

Abstract Image

从 "催化进化 "到 "催化进化"。
Conspectus 生命起源之谜是人类面临的最艰巨而又最引人入胜的挑战之一。在没有酶(进化的生物催化剂)的情况下,生物聚合物是如何出现的?持久的化学进化又是如何找到一条通往我们今天观察到的高选择性复杂生物学的道路的?在本文中,我们讨论了一个探索催化根源的化学框架,展示了基于化学和物理原理的标准催化活动如何演变成复杂的机器。我们提供了几个例子,说明如何利用小分子的前生物催化作用促进聚合,这在生物学中改变了催化作用的性质。因此,在前生物化学向生物化学转变的过程中,催化发生了进化,进化也被催化。传统上,催化剂被定义为:(i) 通过不同的化学机制降低活化能,从而加速化学反应;(ii) 在反应过程中不被消耗的物质。然而,考虑到前生物化学涉及高度多样化的化学空间(即大量潜在反应物和生成物)和不断变化的环境,缺乏高度复杂的催化机制,我们在此强调应考虑更原始、更宽泛的定义。在此,我们认为催化剂是任何能降低活化能的化学物质。我们进一步讨论了羟基酸和巯基酸等简单的前生物分子如何通过能量优势交换反应促进肽键形成的各种演示。尽管小分子会部分再生,部分保留在生成的低聚物中,但这些益生元催化剂还是发挥了它们的主要作用。我们还重点介绍了金属离子和复杂化学混合物的催化作用。我们强调了化学进化如何主要由动力学而非热力学决定,并展示了支持这一概念的新概念。此外,我们还就水在前生物催化中的作用提出了一个新的视角。水仅仅是一种 "介质",这掩盖了它作为生命化学的积极参与者的重要性,特别是作为一种非常高效的催化剂和许多化学转化的参与者的重要性。在此,我们强调水在化学进化过程中对日益复杂化的不同寻常的贡献。我们讨论了前生物催化促进化学选择和复杂化的可能途径。总之,本报告在前生物催化和当代生物催化之间划出了一条连接线,并证明化学催化的基本要素蕴含在当今的生物催化剂中。本报告说明了催化的进化如何从一开始就与化学进化交织在一起。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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