Morris Daniel L
Biomol Concepts. 2014 Oct;5(5):397-407. doi: 10.1515/bmc-2014-0021.
The affinity of metal ions for DNA is logical considering that the structure of DNA includes a phosphate backbone with a net-negative charge, a deoxyribose sugar with O atoms, and purine and pyrimidine bases that contain O and N atoms. DNA-metal ion interactions encompass a large area of research that ranges from the most fundamental characterization of DNA-metal ion binding to the role of DNA-bound metal ions in disease and human health. Alternative DNA base pairing mediated by metal binding is also being investigated and manipulated for applications in logic gates, molecular machines, and nanotechnology. This review highlights recent work aimed at understanding interactions of redox-active metal ions with DNA that provides a better understanding of the mechanisms by which various types of oxidative DNA damage (strand breakage and base modifications) occur. Antioxidants that mitigate oxidative DNA damage by coordinating metal ions that produce reactive oxygen species are addressed, as well as recent work on the effect of DNA-metal ion interactions and the efficacy of quinolone-based antibacterial drugs. Recent advances in metal-mediated base pairing that triggers conformational changes in DNA structure for use as selective metal ion sensors and novel nanotechnology applications are also included.
考虑到DNA的结构包括带负电荷的磷酸主链、含O原子的脱氧核糖以及含O和N原子的嘌呤和嘧啶碱基,金属离子与DNA的亲和力是合乎逻辑的。DNA-金属离子相互作用涵盖了广泛的研究领域,从DNA-金属离子结合的最基本特征到DNA结合金属离子在疾病和人类健康中的作用。由金属结合介导的替代性DNA碱基配对也正在被研究和操控,以应用于逻辑门、分子机器和纳米技术。本综述重点介绍了近期旨在理解氧化还原活性金属离子与DNA相互作用的研究工作,这有助于更好地理解各种类型的氧化性DNA损伤(链断裂和碱基修饰)发生的机制。文中讨论了通过配位产生活性氧的金属离子来减轻氧化性DNA损伤的抗氧化剂,以及近期关于DNA-金属离子相互作用的影响和喹诺酮类抗菌药物疗效的研究工作。还包括了金属介导的碱基配对的最新进展,这种碱基配对会引发DNA结构的构象变化,可用作选择性金属离子传感器和新型纳米技术应用。