顺铂是一种dna损伤的抗肿瘤化合物,在癌细胞中引发多因子生化反应:凋亡途径的重要性。

Yuliya Sedletska, Marie-Josèphe Giraud-Panis, Jean-Marc Malinge
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引用次数: 192

摘要

顺-二胺二氯铂(顺铂)是人类化疗中最有效的抗肿瘤药物之一。本综述的目的是对介导癌细胞对该药物敏感性的几个分子机制进行深入了解,并展示我们在一些关键分子事件方面的最新知识进展如何为更合理的抗癌药物设计方法奠定基础。顺铂主要被认为是一种破坏DNA的抗癌药物,其与细胞DNA的反应主要形成不同类型的双功能加合物。我们将解决顺铂可能通过结合更敏感的基因组区域(如端粒)引起的细胞活性破坏问题。顺铂耐药的细胞机制是多因素的,这严重限制了顺铂在临床上的应用。它们包括调节药物- dna相互作用量的分子事件,如癌细胞内顺铂积累的减少或含硫醇物种对顺铂的失活。其他作用于顺铂与DNA初始反应下游的重要机制包括加合物修复的增加和细胞凋亡诱导的减少。最近越来越多的证据表明,长贴片DNA错配修复系统在感知顺铂损伤的DNA和通过c-Abl和p73依赖级联触发细胞死亡中的作用;另外两个重要的途径已经被揭示,它们是丝裂原激活的蛋白激酶级联和肿瘤抑制因子p53。一些潜在的顺铂耐药机制已经被用来设计新的铂衍生物。这一问题将在本次审查中讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cisplatin is a DNA-damaging antitumour compound triggering multifactorial biochemical responses in cancer cells: importance of apoptotic pathways.

cis-diamminedichloroplatinum(II) (cisplatin) is among the most active antitumour agent used in human chemotherapy. The purpose of this review is to give an insight in several molecular mechanisms that mediate the sensitivity of cancer cells to this drug and to show how recent progress in our knowledge on some critical molecular events should lay the foundations of a more rational approach to anticancer drug design. Cisplatin is primarily considered as a DNA-damaging anticancer drug, mainly forming different types of bifunctional adducts in its reaction with cellular DNA. We will address the question of cellular activity disruption that cisplatin could cause through binding to more sensitive region of the genome such as telomeres. Cellular mechanisms of resistance to cisplatin are multifactorial and contribute to severe limitation in the use of this drug in clinics. They include molecular events modulating the amount of drug-DNA interaction, such as a reduction in cisplatin accumulation inside cancer cells or inactivation of cisplatin by thiol-containing species. Other important mechanisms acting downstream to the initial reaction of cisplatin with DNA, include an increase in adducts repair and a decrease in induction of apoptosis. Recently accumulating evidence suggest a role of the long patch DNA mismatch repair system in sensing cisplatin-damaged DNA and in triggering cell death through a c-Abl- and p73-dependent cascade; two other important pathways have been unravelled that are the mitogen-activated protein kinase cascade and the tumor suppressor p53. Several of these mechanisms underlying cisplatin resistance have been exploited to design new platinum derivatives. This issue will be covered in the present review.

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