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首页> 外文期刊>Molecular cancer therapeutics >Distinct roles of cytochrome P450 reductase in mitomycin C redox cycling and cytotoxicity.
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Distinct roles of cytochrome P450 reductase in mitomycin C redox cycling and cytotoxicity.

机译:细胞色素P450还原酶在丝裂霉素C氧化还原循环和细胞毒性中的不同作用。

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摘要

Mitomycin c (MMC), a quinone-containing anticancer drug, is known to redox cycle and generate reactive oxygen species. A key enzyme mediating MMC redox cycling is cytochrome P450 reductase, a microsomal NADPH-dependent flavoenzyme. In the present studies, Chinese hamster ovary (CHO) cells overexpressing this enzyme (CHO-OR cells) and corresponding control cells (CHO-WT cells) were used to investigate the role of cytochrome P450 reductase in the actions of MMC. In lysates from both cell types, MMC was found to redox cycle and generate H(2)O(2); this activity was greater in CHO-OR cells (V(max) = 1.2 +/- 0.1 nmol H(2)O(2)/min/mg protein in CHO-WT cells versus 32.4 +/- 3.9 nmol H(2)O(2)/min/mg protein in CHO-OR cells). MMC was also more effective in generating superoxide anion and hydroxyl radicals in CHO-OR cells, relative to CHO-WT cells. Despite these differences in MMC redox cycling, MMC-induced cytotoxicity, as measured by growth inhibition, was similar in the two cell types (IC(50) = 72 +/- 20 nmol/L for CHO-WT and 75 +/- 23 nmol/L for CHO-OR cells), as was its ability to induce G(2)-M and S phase arrest. Additionally, in nine different tumor cell lines, although a strong correlation was observed between MMC-induced H(2)O(2) generation and cytochrome P450 reductase activity, there was no relationship between redox cycling and cytotoxicity. Hypoxia, which stabilizes MMC radicals generated by redox cycling, also had no effect on the sensitivity of tumor cells to MMC-induced cytotoxicity. These data indicate that NADPH cytochrome P450 reductase-mediated MMC redox cycling is not involved in the cytotoxicity of this chemotherapeutic agent.
机译:丝裂霉素c(MMC)是一种含醌的抗癌药物,已知其氧化还原循环并产生活性氧。介导MMC氧化还原循环的关键酶是细胞色素P450还原酶,一种依赖NADPH的微粒体黄素酶。在本研究中,过度表达该酶的中国仓鼠卵巢(CHO)细胞(CHO-OR细胞)和相应的对照细胞(CHO-WT细胞)被用于研究细胞色素P450还原酶在MMC作用中的作用。在两种细胞类型的裂解物中,发现MMC氧化还原循环并生成H(2)O(2);此活性在CHO-OR细胞中更大(V(max)= 1.2 +/- 0.1 nmol H(2)O(2)/ min / mg蛋白质在CHO-WT细胞中比32.4 +/- 3.9 nmol H(2) O(2)/ min / mg蛋白在CHO-OR细胞中)。相对于CHO-WT细胞,MMC在CHO-OR细胞中更有效地产生超氧阴离子和羟基自由基。尽管在MMC氧化还原循环中存在这些差异,但通过两种细胞类型(通过生长抑制测量),MMC诱导的细胞毒性在两种细胞类型中均相似(CHO-WT的IC(50)= 72 +/- 20 nmol / L,75-+ /-23 nmol / L的CHO-OR细胞),以及诱导G(2)-M和S期停滞的能力。此外,在九个不同的肿瘤细胞系中,尽管在MMC诱导的H(2)O(2)生成与细胞色素P450还原酶活性之间观察到强相关性,但氧化还原循环与细胞毒性之间没有关系。缺氧可稳定氧化还原循环产生的MMC自由基,对肿瘤细胞对MMC诱导的细胞毒性的敏感性也没有影响。这些数据表明,NADPH细胞色素P450还原酶介导的MMC氧化还原循环不参与该化学治疗剂的细胞毒性。

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