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光解酶修复DNA的电子转移机制。

Electron transfer mechanisms of DNA repair by photolyase.

作者信息

Zhong Dongping

机构信息

Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210; email:

出版信息

Annu Rev Phys Chem. 2015 Apr;66:691-715. doi: 10.1146/annurev-physchem-040513-103631.

Abstract

Photolyase is a flavin photoenzyme that repairs two DNA base damage products induced by ultraviolet (UV) light: cyclobutane pyrimidine dimers and 6-4 photoproducts. With femtosecond spectroscopy and site-directed mutagenesis, investigators have recently made significant advances in our understanding of UV-damaged DNA repair, and the entire enzymatic dynamics can now be mapped out in real time. For dimer repair, six elementary steps have been characterized, including three electron transfer reactions and two bond-breaking processes, and their reaction times have been determined. A unique electron-tunneling pathway was identified, and the critical residues in modulating the repair function at the active site were determined. The dynamic synergy between the elementary reactions for maintaining high repair efficiency was elucidated, and the biological nature of the flavin active state was uncovered. For 6-4 photoproduct repair, a proton-coupled electron transfer repair mechanism has been revealed. The elucidation of electron transfer mechanisms and two repair photocycles is significant and provides a molecular basis for future practical applications, such as in rational drug design for curing skin cancer.

摘要

光裂合酶是一种黄素光酶,可修复紫外线(UV)诱导产生的两种DNA碱基损伤产物:环丁烷嘧啶二聚体和6-4光产物。借助飞秒光谱和定点诱变技术,研究人员最近在我们对紫外线损伤的DNA修复的理解方面取得了重大进展,现在可以实时绘制出整个酶促动力学过程。对于二聚体修复,已经确定了六个基本步骤,包括三个电子转移反应和两个断键过程,并且测定了它们的反应时间。确定了一条独特的电子隧穿途径,并确定了在活性位点调节修复功能的关键残基。阐明了基本反应之间维持高修复效率的动态协同作用,并揭示了黄素活性状态的生物学本质。对于6-4光产物修复,已经揭示了一种质子耦合电子转移修复机制。电子转移机制和两个修复光循环的阐明具有重要意义,并为未来的实际应用提供了分子基础,例如用于治疗皮肤癌的合理药物设计。

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