在DNA中诱导紫外线电荷转移状态促进序列选择性自我修复
Dominik Benjamin Bucher1,2, Corinna Lucia Kufner1, Alexander Schlueter1
1BioMolecular Optics and Center for Integrated Protein Science, Ludwigs-Maximilians-Universität München , Oettingenstrasse 67, 80538 München, Germany.
Journal of the American Chemical Society
|December 15, 2015
概括
通过光激发的电荷转移状态触发了DNA的自我修复. 关氨酸-氨酸序列促进了氨酸基的重组,揭示了依赖序列的DNA修复机制.
科学领域:
- 摄影化学
- 分子生物学
- DNA 修复机制
背景情况:
- 核酸对紫外线的吸收会导致DNA受损.
- 光激发的DNA可以形成反应电荷转移状态,这是一个关键的衰变途径.
- 环丁二聚 (CPD) 是一种常见的紫外线诱导的DNA损伤.
研究的目的:
- 研究电荷转移状态在DNA自我修复中的作用.
- 为了确定DNA光损伤修复的序列依赖性.
- 阐明电荷转移状态修复DNA的机制.
主要方法:
- 紫外线光谱用于研究光物理过程.
- 高性能液体染色学 (HPLC) 分析了寡核酸的修饰.
- 对各种单链和双链寡核酸进行了实验,这些寡核酸具有CPD病变.
主要成果:
- 在CPD附近的腺激发没有影响病变.
- 与CPD相邻的关氨酸-腺氨酸序列导致了氨基基基的重构.
- 修复机制涉及负电荷的腺因基离子向CPD捐赠电子,诱导环分裂.
- 胺- 氨酸序列没有修复CPD病变,表明序列特异性.
- 修复效率与基离子的氧化潜力有关,而不仅仅是它的存在.
结论:
- 可以触发光损伤的自我修复.
- DNA 自修是高度依赖序列的,受邻近基的电子性质的影响.
- 这代表了一个基本的,由序列驱动的DNA自我修复系统.
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