Spiegel Katrin, Magistrato Alessandra
University of Pennsylvania, Department of Chemistry, Philadelphia, PA, USA.
Org Biomol Chem. 2006 Jul 7;4(13):2507-17. doi: 10.1039/b604263p. Epub 2006 May 17.
The development of anticancer drugs started over four decades ago, with the serendipitous discovery of the antitumor activity of cisplatin and its successful use in the treatment of various cancer types. Despite the efforts made in unraveling the mechanism of the action of cisplatin, as well as in the rational design of new anticancer compounds, in many cases detailed structural and mechanistic information is still lacking. Many of these drugs exert their anticancer activity by covalently binding to DNA inducing a distortion or simply impeding replication, thus triggering a cellular response, which eventually leads to cell death. A detailed understanding of the structural and electronic properties of drug-DNA complexes and their mechanism of binding is the key step in elucidating the principles of their anticancer activity. At the theoretical level, the description of covalent drug-DNA complexes requires the use of state-of-the-art computer simulation techniques such as hybrid quantum/classical molecular dynamics simulations. In this review we provide a general overview on: drugs which covalently bind to DNA duplexes, the basic concepts of quantum mechanics/molecular mechanics (QM/MM), molecular dynamics methods and a list of selected applications of these simulations to the study of drug-DNA adducts. Finally, the potential and the limitations of this approach to the study of such systems are critically evaluated.
抗癌药物的研发始于四十多年前,顺铂抗肿瘤活性的意外发现及其在多种癌症类型治疗中的成功应用开启了这一进程。尽管在揭示顺铂作用机制以及合理设计新型抗癌化合物方面付出了诸多努力,但在许多情况下,详细的结构和作用机制信息仍然匮乏。这些药物中的许多通过与DNA共价结合发挥抗癌活性,导致DNA扭曲或仅仅阻碍复制,从而引发细胞反应,最终导致细胞死亡。深入了解药物 - DNA复合物的结构和电子性质及其结合机制是阐明其抗癌活性原理的关键步骤。在理论层面,共价药物 - DNA复合物的描述需要使用诸如量子/经典混合分子动力学模拟等先进的计算机模拟技术。在本综述中,我们提供了以下方面的概述:与DNA双链共价结合的药物、量子力学/分子力学(QM/MM)的基本概念、分子动力学方法以及这些模拟在药物 - DNA加合物研究中的一系列选定应用。最后,对这种研究此类系统方法的潜力和局限性进行了批判性评估。