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催化与调控中半胱氨酸亚磺酸功能的结构、氧化还原及机理参数。

Structural, redox, and mechanistic parameters for cysteine-sulfenic acid function in catalysis and regulation.

作者信息

Claiborne A, Mallett T C, Yeh J I, Luba J, Parsonage D

机构信息

Department of Biochemistry, Wake Forest University Medical Center, Winston-Salem, North Carolina 27157, USA.

出版信息

Adv Protein Chem. 2001;58:215-76. doi: 10.1016/s0065-3233(01)58006-7.

Abstract

A primary objective of this review is to facilitate the application of the chemical and structural approaches that are currently being employed in the identification of Cys-SOH, as both transient intermediates and stable redox forms, in biochemical systems where these derivatives are suspected of playing key roles in redox catalysis or regulation. These range from high-resolution crystallographic analyses benefiting from recent technological advances in rapid data collection at cryogenic temperatures to 13C NMR investigations of [3-(13)C]Cys-labeled proteins and chemical modification protocols that can be integrated with both UV-visible and fluorescence spectroscopic as well as mass spectrometric (especially ESI, MALDI-TOF, and even FT ion-cyclotron-resonance) analyses. In summarizing the diversity of biological functions currently identified with Cys-SH reversible Cys-SOH redox cycles (Fig. 17), it should also be [figure: see text] emphasized that in at least one protein (nitrile hydratase) stable Cys-SOH and Cys-SO2H derivatives play important structural roles while also modulating the electronic properties of the iron center; in neither case is the Cys-SOH residue itself involved in reduction and oxidation. The somewhat incomplete structural descriptions of the oxidized Cys forms involved in redox regulation of some transcription factors (e.g., BPV-1 E2 protein and activator protein-1) indicate that there is ample room for the application of the types of investigations employed, for example, with NADH peroxidase and the AhpC peroxiredoxin, with a view toward defining the potential roles of Cys-SOH in these very important contexts of intracellular redox signaling. These advances will also build on the recent progress in defining sulfenic acid stabilization and properties in small molecule model systems, as evidenced in the work of Okazaki, Goto, and others. When viewed in the perspective of Allison's 1976 review on the subject of sulfenic acids in proteins, the reader will hopefully come to appreciate the conclusion that the concept of protein-sulfenic acids has now become a very well-defined and established principle of biochemistry, with current efforts in this and other laboratories being directed to bring about still more detailed understanding of Cys-SOH function in both redox and nonredox modes of enzyme catalysis and regulation of protein function.

摘要

本综述的一个主要目标是促进化学和结构方法的应用,这些方法目前正用于在生物化学系统中鉴定半胱氨酸 - SOH,它作为瞬态中间体和稳定的氧化还原形式,在这些生物化学系统中,这些衍生物被怀疑在氧化还原催化或调节中起关键作用。这些方法包括受益于低温下快速数据收集的最新技术进展的高分辨率晶体学分析,对[3 - (13)C]半胱氨酸标记蛋白的13C NMR研究,以及可与紫外 - 可见光谱、荧光光谱以及质谱(特别是电喷雾电离、基质辅助激光解吸电离飞行时间质谱,甚至傅里叶变换离子回旋共振质谱)分析相结合的化学修饰方案。在总结目前通过半胱氨酸 - SH可逆半胱氨酸 - SOH氧化还原循环所确定的生物功能的多样性时(图17),还应强调,在至少一种蛋白质(腈水合酶)中,稳定的半胱氨酸 - SOH和半胱氨酸 - SO2H衍生物发挥重要的结构作用,同时还调节铁中心的电子性质;在这两种情况下,半胱氨酸 - SOH残基本身均不参与氧化还原反应。一些转录因子(如BPV - 1 E2蛋白和激活蛋白 - 1)的氧化还原调节中涉及的氧化型半胱氨酸形式的结构描述有些不完整,这表明在例如用于NADH过氧化物酶和AhpC过氧化物酶的研究类型的应用方面仍有很大空间,以便在细胞内氧化还原信号传导的这些非常重要的背景下确定半胱氨酸 - SOH的潜在作用。这些进展也将建立在最近在小分子模型系统中定义亚磺酸稳定性和性质方面取得的进展基础上,冈崎、后藤等人的工作证明了这一点。从艾利森1976年关于蛋白质中亚磺酸主题的综述的角度来看,读者有望得出这样的结论:蛋白质亚磺酸概念现在已成为生物化学中一个定义明确且确立的原则,目前本实验室和其他实验室的工作旨在更详细地了解半胱氨酸 - SOH在酶催化的氧化还原和非氧化还原模式以及蛋白质功能调节中的作用。

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