首页> 外文期刊>Molecular cancer therapeutics >Roles of DNA repair and reductase activity in the cytotoxicity of the hypoxia-activated dinitrobenzamide mustard PR-104A.
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Roles of DNA repair and reductase activity in the cytotoxicity of the hypoxia-activated dinitrobenzamide mustard PR-104A.

机译:DNA修复和还原酶活性在缺氧激活的二硝基苯甲酰胺芥菜PR-104A的细胞毒性中的作用。

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PR-104 is a dinitrobenzamide mustard currently in clinical trial as a hypoxia-activated prodrug. Its major metabolite, PR-104A, is metabolized to the corresponding hydroxylamine (PR-104H) and amine (PR-104M), resulting in activation of the nitrogen mustard moiety. We characterize DNA damage responsible for cytotoxicity of PR-104A by comparing sensitivity of repair-defective hamster Chinese hamster ovary cell lines with their repair-competent counterparts. PR-104H showed a repair profile similar to the reference DNA cross-linking agents chlorambucil and mitomycin C, with marked hypersensitivity of XPF(-/-), ERCC1(-/-), and Rad51D(-/-) cells but not of XPD(-/-) or DNA-PK(CS)(-/-) cells. This pattern confirmed the expected dependence on the ERCC1-XPF endonuclease, implicated in unhooking DNA interstrand cross-links at blocked replication forks, and homologous recombination repair (HRR) in restarting collapsed forks. However, even under anoxia, the hypersensitivity of XPF(-/-), ERCC1(-/-), and Rad51D(-/-) cells to PR-104A itself was lower than for chlorambucil. To test whether this reflects inefficient PR-104A reduction, a soluble form of human NADPH:cytochrome P450 oxidoreductase was stably expressed in Rad51D(-/-) cells and their HRR-restored counterpart. This expression increased hypoxic metabolism of PR-104A to PR-104H and PR-104M as well as hypoxia-selective cytotoxicity of PR-104A and its dependence on HRR. We conclude that PR-104A cytotoxicity is primarily due to DNA interstrand cross-linking by its reduced metabolites, although under conditions of inefficient PR-104A reduction (low reductase expression or aerobic cells), a second mechanism contributes to cell killing. This study shows that hypoxia, reductase activity, and DNA interstrand cross-link repair proficiency are key variables that interact to determine PR-104A sensitivity.
机译:PR-104是一种二硝基苯甲酰胺芥末,目前处于缺氧激活前药的临床试验中。它的主要代谢物PR-104A被代谢为相应的羟胺(PR-104H)和胺(PR-104M),导致氮芥子气部分的活化。我们通过比较修复缺陷的仓鼠中国仓鼠卵巢细胞系与具有修复能力的对应物的敏感性来表征造成PR-104A细胞毒性的DNA损伤。 PR-104H显示出与参考DNA交联剂苯丁酸氮芥和丝裂霉素C相似的修复特征,对XPF(-/-),ERCC1(-/-)和Rad51D(-/-)细胞有明显的超敏反应,但对XPD(-/-)或DNA-PK(CS)(-/-)细胞。这种模式证实了预期的对ERCC1-XPF核酸内切酶的依赖性,这牵涉到封闭的复制叉处的脱钩DNA链间交联,以及重启折叠叉中的同源重组修复(HRR)。但是,即使在缺氧条件下,XPF(-/-),ERCC1(-/-)和Rad51D(-/-)细胞对PR-104A本身的超敏性也低于苯丁酸氮芥。若要测试这是否反映了低效的PR-104A还原,人类NADPH:细胞色素P450氧化还原酶的可溶形式在Rad51D(-/-)细胞及其恢复HRR的对应物中稳定表达。这种表达增加了PR-104A对PR-104H和PR-104M的低氧代谢,以及PR-104A的低氧选择性细胞毒性及其对HRR的依赖性。我们得出的结论是,PR-104A的细胞毒性主要是由于其减少的代谢产物引起的DNA链间交联,尽管在PR-104A还原效率低下(还原酶表达低或需氧细胞)的情况下,第二种机制也有助于细胞杀伤。这项研究表明,低氧,还原酶活性和DNA链间交联修复能力是决定PR-104A敏感性的关键变量。

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