Zeida Ari, Guardia Carlos M, Lichtig Pablo, Perissinotti Laura L, Defelipe Lucas A, Turjanski Adrián, Radi Rafael, Trujillo Madia, Estrin Darío A
Departamento de Química Inorgánica, Analítica y Química-Física and INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Pab. 2, C1428EHA, Buenos Aires, Argentina.
Institute for Biocomplexity and Informatics, Department of Biological Sciences, University of Calgary, 2500 University Drive, Calgary, AB, Canada, T2N 2N4.
Biophys Rev. 2014 Mar;6(1):27-46. doi: 10.1007/s12551-013-0127-x. Epub 2014 Jan 9.
Thiol redox chemical reactions play a key role in a variety of physiological processes, mainly due to the presence of low-molecular-weight thiols and cysteine residues in proteins involved in catalysis and regulation. Specifically, the subtle sensitivity of thiol reactivity to the environment makes the use of simulation techniques extremely valuable for obtaining microscopic insights. In this work we review the application of classical and quantum-mechanical atomistic simulation tools to the investigation of selected relevant issues in thiol redox biochemistry, such as investigations on (1) the protonation state of cysteine in protein, (2) two-electron oxidation of thiols by hydroperoxides, chloramines, and hypochlorous acid, (3) mechanistic and kinetics aspects of the de novo formation of disulfide bonds and thiol-disulfide exchange, (4) formation of sulfenamides, (5) formation of nitrosothiols and transnitrosation reactions, and (6) one-electron oxidation pathways.
硫醇氧化还原化学反应在多种生理过程中起着关键作用,这主要归因于参与催化和调节的蛋白质中存在低分子量硫醇和半胱氨酸残基。具体而言,硫醇反应性对环境的微妙敏感性使得利用模拟技术对于获得微观见解极具价值。在这项工作中,我们回顾了经典和量子力学原子模拟工具在硫醇氧化还原生物化学中选定相关问题研究中的应用,例如对以下方面的研究:(1)蛋白质中半胱氨酸的质子化状态;(2)氢过氧化物、氯胺和次氯酸对硫醇的双电子氧化;(3)二硫键从头形成和硫醇 - 二硫键交换的机理和动力学方面;(4)亚磺酰胺的形成;(5)亚硝基硫醇的形成和转亚硝化反应;以及(6)单电子氧化途径。