Rieske加氧酶:理解电子转移和氧化化学的自然协调的强大模型。

IF 3 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Hui Miao,  and , Sandy Schmidt*, 
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引用次数: 0

摘要

Rieske加氧酶(ROs)是一个多样化的非血红素铁酶家族,在分解代谢和生物合成途径中催化广泛的氧化转化。它们的催化范围涵盖双氧、单氧、氧化N-和o -脱烷基、去饱和、亚砜化、C-C键形成、N-氧合和C-N键裂解等反应,这些反应通常很难通过合成方法选择性地实现。这些不同的功能突出了活性氧在天然产物生物合成中的重要性,并使它们成为生物催化应用的有希望的候选者。尽管进行了广泛的研究,但我们对ROs如何在分子水平上协调这些不同反应的理解仍然不完整。特别是,电子转移事件的瞬态、动态性和氧结合中间体的有限结构表征阻碍了我们对结构特征如何控制电子转移效率、O2活化及其催化多样性起源的理解。最近的研究结果挑战了反渗透催化循环的传统观点,强调了将静态结构数据与氧化还原相互作用的动态研究相结合的重要性。在这个观点中,我们探索RO功能的结构和机制基础的新见解。我们关注的是加氧酶组分的结构如何影响反应性、电子转移和氧化还原伙伴的相互作用。最后,我们讨论了利用ROs进行生物催化的当前限制和未来机会,强调了工程方法的潜力──特别是氧化还原伴侣相容性的优化──以扩大其功能效用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rieske Oxygenases: Powerful Models for Understanding Nature’s Orchestration of Electron Transfer and Oxidative Chemistry

Rieske oxygenases (ROs) are a diverse family of nonheme iron enzymes that catalyze a wide array of oxidative transformations in both catabolic and biosynthetic pathways. Their catalytic repertoire spans dioxygenation, monooxygenation, oxidative N- and O-dealkylation, desaturation, sulfoxidation, C–C bond formation, N-oxygenation, and C–N bond cleavage─reactions that are often challenging to achieve selectively through synthetic methods. These diverse functions highlight the increasing importance of ROs in natural product biosynthesis and establish them as promising candidates for biocatalytic applications. Despite extensive study, our understanding of how ROs orchestrate these diverse reactions at the molecular level remains incomplete. In particular, the transient, dynamic nature of electron transfer events and the limited structural characterization of oxygen-bound intermediates hinder our understanding of how structural features govern electron transfer efficiency, O2 activation, and the origins of their catalytic diversity. Recent findings challenge traditional views of the RO catalytic cycle and underscore the importance of integrating static structural data with dynamic studies of redox interactions. In this Perspective, we explore emerging insights into the structural and mechanistic basis of RO function. We focus on how the architecture of the oxygenase component shapes reactivity, electron transfer, and redox partner interactions. Finally, we discuss current limitations and future opportunities in harnessing ROs for biocatalysis, emphasizing the potential of engineering approaches─particularly the optimization of redox partner compatibility─to expand their functional utility.

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来源期刊
Biochemistry Biochemistry
Biochemistry Biochemistry 生物-生化与分子生物学
CiteScore
5.50
自引率
3.40%
发文量
336
审稿时长
1-2 weeks
期刊介绍: Biochemistry provides an international forum for publishing exceptional, rigorous, high-impact research across all of biological chemistry. This broad scope includes studies on the chemical, physical, mechanistic, and/or structural basis of biological or cell function, and encompasses the fields of chemical biology, synthetic biology, disease biology, cell biology, nucleic acid biology, neuroscience, structural biology, and biophysics. In addition to traditional Research Articles, Biochemistry also publishes Communications, Viewpoints, and Perspectives, as well as From the Bench articles that report new methods of particular interest to the biological chemistry community.
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