Topoisomerase I-DNA complex stability induced by camptothecins and its role in drug activity.

Randy M Wadkins, David Bearss, Govindarajan Manikumar, Mansukhlal C Wani, Monroe E Wall, Daniel D Von Hoff
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引用次数: 17

Abstract

The mechanism of cytotoxicity of the camptothecin family of antitumor drugs is thought to be the consequence of a collision between moving replication forks and camptothecin-stabilized cleavable DNA-topoisomerase I complexes. One property of camptothecin analogs relevant to their potent antitumor activity is the slow reversal of the cleavable complexes formed with these drugs. The persistence of cleavable complexes with time may be an essential property for increasing the likelihood of a collision between the replication fork and a cleavable complex, giving rise to lethal DNA lesions. In this paper, we examined a number of camptothecin analogs forming cleavable complexes with distinctly different stabilities. Absolute reaction rate analysis was carried out for each derivative. Our results indicate that the stability of the cleavable complex is dominated by the activation entropy (DeltaS++) of the reversal process. We measured the relative lipophilicity of the CPT analogs by reverse-phase HPLC, but the DeltaS++ of complex reversal is not directly related to the lipophilicity of the CPT analog being used. We suggest that solvent ordering around the 7- through 10-position of the CPT ring may be responsible for reversal rate's dependence on DeltaS++. We demonstrate that the cleavable complex stability conferred by each camptothecin analog is directly correlated with the induction of apoptosis and cytotoxicity to tumor cells.

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喜树碱诱导拓扑异构酶I-DNA复合物的稳定性及其在药物活性中的作用。
喜树碱家族抗肿瘤药物的细胞毒性机制被认为是移动复制叉与喜树碱稳定的可切割dna拓扑异构酶I复合物碰撞的结果。喜树碱类似物与其有效的抗肿瘤活性相关的一个特性是与这些药物形成的可切割复合物的缓慢逆转。随着时间的推移,可切割复合体的持久性可能是增加复制叉和可切割复合体之间碰撞的可能性的基本特性,从而导致致命的DNA损伤。在本文中,我们研究了许多喜树碱类似物形成具有明显不同稳定性的可切割复合物。对各衍生物进行了绝对反应速率分析。我们的研究结果表明,可切割配合物的稳定性主要取决于反转过程的激活熵(delta++)。我们通过反相高效液相色谱法测定了CPT类似物的相对亲脂性,但复反转的delta++与所使用的CPT类似物的亲脂性没有直接关系。我们认为溶剂在CPT环的7- 10位附近的排序可能是逆转速率依赖于delta++的原因。我们证明,每种喜树碱类似物所赋予的可切割复合物稳定性与诱导肿瘤细胞凋亡和细胞毒性直接相关。
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