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靶向DNA的铂菲啶鎓配合物与DNA的相互作用。

The interaction of DNA-targeted platinum phenanthridinium complexes with DNA.

作者信息

Whittaker J, McFadyen W D, Wickham G, Wakelin L P, Murray V

机构信息

School of Biochemistry and Molecular Genetics and School of Chemistry, University of New South Wales, Sydney, NSW 2052, Australia.

出版信息

Nucleic Acids Res. 1998 Sep 1;26(17):3933-9. doi: 10.1093/nar/26.17.3933.

Abstract

Cisplatin analogues were synthesised that consisted of platinum(II) diamine complexes tethered via a polymethylene chain ( n = 3, 5, 8 and 10) to a phenanthridinium cation. Both chloro and iodo leaving groups were examined. DNA adduct formation was quantitatively analysed using a linear amplification system with the plasmid pGEM-3Zf(+). This system utilised Taq DNA polymerase to extend from an oligonucleotide primer to the damage site. This damage site inhibited the extension of the DNA polymerase. The products were electrophoresed on a DNA sequencing gel enabling adduct formation to be determined at base pair resolution. The damage intensity at each site was determined by densitometry. The platinum phenanthridinium complexes were shown to damage DNA at shorter incubation times than cisplatin. To produce similar levels of damage, an 18 h incubation was required for cisplatin compared to 30 min for the n = 3 platinum phenanthridinium complexes; this indicates that the intercalating chromophore causes a large increase in the rate of platination. A reaction mechanism involving direct displacement of the chloride by the N-7 of guanine may account for the rate increase. These results indicate that further development of these compounds could lead to more effective cancer chemotherapeutic agents.

摘要

合成了顺铂类似物,其由通过亚甲基链(n = 3、5、8和10)连接到菲啶鎓阳离子的铂(II)二胺配合物组成。研究了氯和碘离去基团。使用带有质粒pGEM-3Zf(+)的线性扩增系统对DNA加合物的形成进行了定量分析。该系统利用Taq DNA聚合酶从寡核苷酸引物延伸至损伤位点。该损伤位点抑制了DNA聚合酶的延伸。产物在DNA测序凝胶上进行电泳,从而能够以碱基对分辨率确定加合物的形成。通过密度测定法确定每个位点的损伤强度。结果表明,与顺铂相比,铂菲啶鎓配合物在较短的孵育时间内就能损伤DNA。为了产生相似程度的损伤,顺铂需要18小时的孵育时间,而对于n = 3的铂菲啶鎓配合物则只需30分钟;这表明嵌入发色团使铂化速率大幅提高。涉及鸟嘌呤的N-7直接取代氯的反应机制可能解释了速率的增加。这些结果表明,这些化合物的进一步开发可能会产生更有效的癌症化疗药物。

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