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直接观察超快电子转移反应揭示了还原型 DNA 损伤的高效性。

Direct observation of ultrafast-electron-transfer reactions unravels high effectiveness of reductive DNA damage.

机构信息

Department of Physics and Astronomy, University of Waterloo, 200 University Avenue West, Waterloo, ON, Canada N2L 3G1.

出版信息

Proc Natl Acad Sci U S A. 2011 Jul 19;108(29):11778-83. doi: 10.1073/pnas.1104367108. Epub 2011 Jul 5.

Abstract

Both water and electron-transfer reactions play important roles in chemistry, physics, biology, and the environment. Oxidative DNA damage is a well-known mechanism, whereas the relative role of reductive DNA damage is unknown. The prehydrated electron (e(pre)-), a novel species of electrons in water, is a fascinating species due to its fundamental importance in chemistry, biology, and the environment. e(pre)- is an ideal agent to observe reductive DNA damage. Here, we report both the first in situ femtosecond time-resolved laser spectroscopy measurements of ultrafast-electron-transfer (UET) reactions of e(pre)- with various scavengers (KNO(3), isopropanol, and dimethyl sulfoxide) and the first gel electrophoresis measurements of DNA strand breaks induced by e(pre)- and OH(•) radicals co-produced by two-UV-photon photolysis of water. We strikingly found that the yield of reductive DNA strand breaks induced by each e(pre)- is twice the yield of oxidative DNA strand breaks induced by each OH(•) radical. Our results not only unravel the long-standing mystery about the relative role of radicals in inducing DNA damage under ionizing radiation, but also challenge the conventional notion that oxidative damage is the main pathway for DNA damage. The results also show the potential of femtomedicine as a new transdisciplinary frontier and the broad significance of UET reactions of e(pre)- in many processes in chemistry, physics, biology, and the environment.

摘要

水和电子转移反应在化学、物理、生物和环境中都起着重要作用。氧化 DNA 损伤是一种众所周知的机制,而还原 DNA 损伤的相对作用尚不清楚。预水化电子 (e(pre)-) 是水中一种新型电子物种,由于其在化学、生物和环境中的基础重要性而备受关注。e(pre)- 是观察还原 DNA 损伤的理想试剂。在这里,我们首次报道了 e(pre)- 与各种猝灭剂(KNO3、异丙醇和二甲基亚砜)的超快电子转移 (UET) 反应的原位飞秒时间分辨激光光谱测量,以及由水的双紫外光解共产生的 e(pre)- 和 OH(•) 自由基引起的 DNA 链断裂的首次凝胶电泳测量。我们惊人地发现,每个 e(pre)- 诱导的还原 DNA 链断裂的产率是每个 OH(•) 自由基诱导的氧化 DNA 链断裂的产率的两倍。我们的结果不仅揭示了在离子辐射下自由基在诱导 DNA 损伤中的相对作用的长期谜团,而且挑战了氧化损伤是 DNA 损伤主要途径的传统观念。结果还表明飞秒医学作为一个新的跨学科前沿的潜力以及 e(pre)- 在化学、物理、生物和环境中的许多过程中的 UET 反应的广泛意义。

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