Protein-derived cofactors: chemical innovations expanding enzyme catalysis

IF 40.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Angelica Graciano and Aimin Liu
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Abstract

Protein-derived cofactors, formed through posttranslational modification of a single amino acid or covalent crosslinking of amino acid side chains, represent a rapidly expanding class of catalytic moieties that redefine enzyme functionality. Once considered rare, these cofactors are recognized across all domains of life, with their repertoire growing from 17 to 38 types in two decades in our survey. Their biosynthesis proceeds via diverse pathways, including oxidation, metal-assisted rearrangements, and enzymatic modifications, yielding intricate motifs that underpin distinctive catalytic strategies. These cofactors span paramagnetic and non-radical states, including both mono-radical and crosslinked radical forms, sometimes accompanied by additional modifications. While their discovery has accelerated, mechanistic understanding lags, as conventional mutagenesis disrupts cofactor assembly. Emerging approaches, such as site-specific incorporation of non-canonical amino acids, now enable precise interrogation of cofactor biogenesis and function, offering a viable and increasingly rigorous means to gain mechanistic insights. Beyond redox chemistry and electron transfer, these cofactors confer enzymes with expanded functionalities. Recent studies have unveiled new paradigms, such as long-range remote catalysis and redox-regulated crosslinks as molecular switches. Advances in structural biology, mass spectrometry, and biophysical spectroscopy continue to elucidate their mechanisms. Moreover, synthetic biology and biomimetic chemistry are increasingly leveraging these natural designs to engineer enzyme-inspired catalysts. This review integrates recent advances in cofactor biogenesis, reactivity, metabolic regulation, and synthetic applications, highlighting the expanding chemical landscape and growing diversity of protein-derived cofactors and their far-reaching implications for enzymology, biocatalysis, and biotechnology.

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Abstract Image

蛋白质衍生的辅助因子:扩大酶催化的化学创新
蛋白质衍生的辅助因子,通过翻译后修饰单个氨基酸或氨基酸侧链的共价交联形成,代表了一类快速扩展的催化片段,重新定义了酶的功能。这些辅助因子曾经被认为是罕见的,但在我们的调查中,它们的种类在20年内从17种增加到38种,在生命的所有领域都得到了认可。它们的生物合成通过多种途径进行,包括氧化,金属辅助重排和酶修饰,产生复杂的基序,支撑独特的催化策略。这些辅因子跨越顺磁性和非自由基状态,包括单自由基和交联自由基形式,有时伴随着额外的修饰。虽然他们的发现加速了,但机制上的理解滞后了,因为传统的诱变破坏了辅因子的组装。新兴的方法,如非规范氨基酸的位点特异性结合,现在可以精确地询问辅因子的生物发生和功能,提供了一种可行的和日益严格的方法来获得机制的见解。除了氧化还原化学和电子转移,这些辅因子赋予酶扩展的功能。最近的研究揭示了新的范例,如远程远程催化和氧化还原调节的交联作为分子开关。结构生物学、质谱和生物物理光谱的进展继续阐明其机制。此外,合成生物学和仿生化学越来越多地利用这些自然设计来设计酶激发的催化剂。本文综述了辅助因子的生物发生、反应性、代谢调节和合成应用方面的最新进展,重点介绍了蛋白质衍生的辅助因子在化学领域的发展和多样性,以及它们在酶学、生物催化和生物技术方面的深远意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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