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9-苯基吖啶的化疗潜力:与 DNA 结合的生物物理研究。

Chemotherapeutic potential of 9-phenyl acridine: biophysical studies on its binding to DNA.

机构信息

Department of Biochemistry and Biophysics, University of Kalyani, Kalyani, 741235, WB, India.

出版信息

Eur Biophys J. 2010 Jul;39(8):1243-9. doi: 10.1007/s00249-010-0577-z. Epub 2010 Feb 5.

Abstract

Acridines and their derivatives are well-known probes for nucleic acids as well as being relevant in the field of drug development to establish new chemotherapeutic agents. We have shown from molecular modelling studies that 9-phenyl acridine and some of its derivatives can act as inhibitors of topoisomerase I and thus have potential to act as anticancer agents. Rational design of new compounds for therapeutics requires knowledge about their structural stability and interactions with various cellular macromolecules. In this regard it is important to know how these molecules would interact with DNA. Here we report the interaction of 9-phenyl acridine (ACPH) with calf thymus DNA (CT-DNA) based on various biophysical and molecular modelling studies. Spectrophotometric studies indicated that ACPH binds to CT-DNA. DNA melting studies revealed that binding of ACPH to CT-DNA resulted in a small increase in melting temperature, which is unlikely in case of classical intercalator; rather, it indicates external binding. Viscosity measurements show that ACPH exhibits groove binding. Competitive binding of ACPH to CT-DNA pre-bound to ethidium bromide (EB) showed slow quenching. Measurement of the binding constant of ACPH by fluorescent intercalator displacement (FID) assay corroborated the notion that there was groove binding. Molecular modelling studies also supported this finding. Results indicate that binding of ACPH is through partial intercalation in the minor groove of DNA.

摘要

吖啶及其衍生物是众所周知的核酸探针,在药物开发领域也与开发新的化疗药物有关。我们通过分子建模研究表明,9-苯基吖啶及其一些衍生物可以作为拓扑异构酶 I 的抑制剂,因此具有作为抗癌剂的潜力。为了治疗目的而合理设计新化合物需要了解它们的结构稳定性以及与各种细胞大分子的相互作用。在这方面,了解这些分子将如何与 DNA 相互作用非常重要。在这里,我们根据各种生物物理和分子建模研究报告了 9-苯基吖啶 (ACPH) 与小牛胸腺 DNA (CT-DNA) 的相互作用。分光光度研究表明,ACPH 与 CT-DNA 结合。DNA 熔点研究表明,ACPH 与 CT-DNA 的结合导致熔点略有升高,这在经典嵌入剂的情况下不太可能;而是表明外部结合。粘度测量表明 ACPH 表现出沟结合。ACPH 与溴化乙锭 (EB) 预先结合的 CT-DNA 的竞争性结合显示出缓慢的猝灭。通过荧光嵌入剂置换 (FID) 测定法测量 ACPH 的结合常数证实了存在沟结合的观点。分子建模研究也支持了这一发现。结果表明,ACPH 的结合是通过 DNA 小沟的部分嵌入实现的。

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