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ANTI TOPOISOMERASE DRUG ACTION IN YEAST

ANTI TOPOISOMERASE DRUG ACTION IN YEAST
酵母中的抗拓扑异构酶药物作用
批准号:
6133282
负责人:
JOHN L NITISS
金额:
$25.88万
依托单位国家:
美国
项目类别:
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-06-01 至 2005-05-31

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中文摘要
翻译
DNA拓扑异构酶是一系列临床上有用的抗癌药物的靶点。尽管拓扑异构酶的基本生化反应途径已被人们所熟知,但关于抗拓扑异构酶药物在产生细胞杀伤所必需的稳定共价方面的作用机制仍知之甚少。除了拓扑异构酶毒药外,最近还有人对抑制拓扑异构酶II(TOP2)但不稳定共价复合体的药物感兴趣。这类药物中的一种重要药物是右旋糖苷(ICRF-187),临床上用于预防阿霉素的心脏毒性。最近的实验证明,ICRF-187具有一种意想不到的细胞杀伤机制,即使它不稳定共价化合物,也能够将TOP2转化为毒物。建议进行研究以了解ICRF-187的生化作用机制。遗传和生化方法的结合将被用来进一步揭示ICRF-187等催化抑制剂和依托泊苷等TOP2毒素如何通过正常反应途径阻止酶的进展。酵母被用作一个模型系统,用于分析TOP2突变的影响,并过度表达突变蛋白。研究策略包括构建新的拓扑异构酶突变体,包括对抗拓扑异构酶药物有高血压作用的突变体。突变的蛋白质被提纯,它们的生化特性被用来推断蛋白质的变化:药物相互作用。一种新的工具已经开发出来,可以理解药物是如何捕获共价复合体的:人类拓扑异构酶IIα的一个突变,它模仿TOP2毒药的作用。此外,对TOP2突变体的研究导致了对依托泊苷耐药的研究,开发了一种新的系统,用于研究拓扑异构酶突变是否在获得性临床耐药中发挥作用。最后,最近的实验表明,拓扑异构酶I和II可能是其他DNA损伤剂杀死细胞的重要决定因素,这导致了细胞在DNA损伤后如何调节拓扑异构酶的研究。这项工作旨在深入了解抗拓扑异构酶药物作用的生化机制,并可能有助于开发新的更有效的拓扑异构酶抑制剂。
英文摘要
DNA topoisomerases are the targets for a wide range of clinically useful anti-cancer drugs. Although the basic biochemical reaction pathway for the topoisomerases is fairly well understood, there is still little information available regarding the mechanism of action of anti- topoisomerase drugs in generating the stable covalent that is necessary for cell killing. In addition to topoisomerase poisons, there has been recent interest in drugs that inhibit topoisomerase II (Top2), but do not stabilize a covalent complex. An important drug in this category is dexrazoxane (ICRF-187) which is used clinically to prevent doxorubicin cardiotoxicity. Recent experiments have demonstrated that ICRF-187 has an unexpected mechanism of cell killing, with the ability to convert Top2 into a poison even though it does not stabilize covalent complexes. Studies are proposed to understand the biochemical mechanism of action of ICRF-187. A combination of genetic and biochemical approaches will be used to further unravel how both catalytic inhibitors such as ICRF-187 and Top2 poisons such as etoposide block the enzyme's progression through its normal reaction pathway. Yeast is used as a model system for analyzing the effects of Top2 mutants, and for over-expressing the mutant proteins . The research strategy involves the construction of novel topoisomerase mutants, including mutants that are hypertensive to anti- topoisomerase drugs. The mutant proteins are purified, and their biochemical characteristics are used to infer changes in protein: drug interactions. A new tool has been developed understand how drugs trap covalent complexes: a mutant in human topoisomerase II alpha that mimics the action of Top2 poisons. Additionally, work on Top2 mutants that confer resistance to etoposide has led to the development of a new system for investigating whether mutations in topoisomerases play a role in acquired clinical drug resistance. Finally, recent experiments indicating that topoisomerase I and II may be an important determinant in cell killing by other DNA damaging agents has led to studies of how cells may modulate topoisomerases following DNA damage. This work is designed to provide insight into the biochemical mechanisms of anti- topoisomerase drug action, and may be useful in the development of new and more effective topoisomerase inhibitors.
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Genome Instability induced in cancer cells carrying mutations in Type II topoisomerases
Genome Instability induced in cancer cells carrying mutations in Type II topoisomerases
Novel approaches for studying topoisomerase 2 targeting anti-cancer drugs
DNA REPAIR AND ANTITOPOISOMERASE DRUG EFFECTS
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