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Conformation, protein recognition and repair of DNA interstrand and intrastrand cross-links of antitumor trans-[PtCl2(NH3)(thiazole)]

机译:反肿瘤反式[PtCl2(NH3)(噻唑)]的DNA链间和链内交联的构象,蛋白质识别和修复

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摘要

Replacement of one ammine in clinically ineffective trans-[PtCl2(NH3)(2)] (transplatin) by a planar N-heterocycle, thiazole, results in significantly enhanced cytotoxicity. Unlike 'classical' cisplatin {cis-[PtCl2(NH3)(2)]} or transplatin, modification of DNA by this prototypical cytotoxic transplatinum complex trans-[PtCl2(NH3)(thiazole)] (trans-PtTz) leads to monofunctional and bifunctional intra or interstrand adducts in roughly equal proportions. DNA fragments containing site-specific bifunctional DNA adducts of trans-PtTz were prepared. The structural distortions induced in DNA by these adducts and their consequences for high-mobility group protein recognition, DNA polymerization and nucleotide excision repair were assessed in cell-free media by biochemical methods. Whereas monofunctional adducts of trans-PtTz behave similar to the major intrastrand adduct of cisplatin [J. Kasparkova, O. Novakova, N. Farrell and V. Brabec (2003) Biochemistry, 42, 792-800], bifunctional cross-links behave distinctly differently. The results suggest that the multiple DNA lesions available to trans-planaramine complexes may all contribute substantially to their cytotoxicity so that the overall drug cytotoxicity could be the sum of the contributions of each of these adducts. However, acquisition of drug resistance could be a relatively rare event, since it would have to entail resistance to or tolerance of multiple, structurally dissimilar DNA lesions.
机译:用平面N杂环噻唑代替临床上无效的反式[PtCl2(NH3)(2)](反式铂)中的一种胺,可显着提高细胞毒性。与“经典”顺铂{cis- [PtCl2(NH3)(2)]}或反式铂不同,这种典型的细胞毒性反式铂复合物反式[[PtCl2(NH3)(噻唑)](反式PtTz)对DNA进行修饰双功能的内部或内部链间加合物的比例大致相等。制备含有反式PtTz的位点特异性双功能DNA加合物的DNA片段。在这些无细胞培养基中,通过生化方法评估了这些加合物在DNA中引起的结构变形及其对高迁移率族蛋白质识别,DNA聚合和核苷酸切除修复的影响。反式PtTz的单官能加合物的行为与顺铂的主要链内加合物相似[J. Kasparkova,O.Novakova,N.Farrell和V.Brabec(2003)Biochemistry,42,792-800],双功能交联的行为明显不同。结果表明,反式-平面胺复合物可利用的多个DNA损伤都可能对它们的细胞毒性产生实质性的贡献,因此总的药物细胞毒性可能是这些加合物各自贡献的总和。然而,获得耐药性可能是一个相对罕见的事件,因为它必须引起对多个结构不同的DNA损伤的耐药性或耐受性。

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