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丝裂霉素C不是人肾NAD(P)H:(醌受体)氧化还原酶的代谢产物,而是其抑制剂。

Mitomycin C is not metabolized by but is an inhibitor of human kidney NAD(P)H: (quinone-acceptor)oxidoreductase.

作者信息

Schlager J J, Powis G

机构信息

Department of Pharmacology, Mayo Clinic & Foundation, Rochester, MN 55905.

出版信息

Cancer Chemother Pharmacol. 1988;22(2):126-30. doi: 10.1007/BF00257309.

Abstract

It has been suggested that quinone reductase [NAD(P)H: (quinone-acceptor)oxidoreductase], also known as DT-diaphorase, protects hypoxic cells against mitomycin C cytotoxicity by metabolizing mitomycin C to less toxic metabolites. This hypothesis is based on an increase in mitomycin C's cytotoxicity in the presence of the potent quinone reductase inhibitor dicumarol. It has been suggested that under aerobic conditions the metabolism of mitomycin C by quinone reductase leads to the formation of cytotoxic metabolites. In the present study, mitomycin C was found not to be a substrate for partially purified quinone reductase from human kidney. Mitomycin C did not cause the oxidation of NADPH by quinone reductase and there was no utilization of mitomycin C and no appearance of its metabolites. Quinone reductase did not catalyze the formation of alkylating metabolites from mitomycin C, determined by the lack of formation of 4-(p-nitrobenzyl)pyridine conjugates. However, mitomycin C was a weak competitive inhibitor of quinone reductase with dichloroindophenol as the substrate, with Ki = 0.32 mM. Therefore, the alteration of mitomycin C's cytotoxicity by dicumarol in tumor cell lines appears to involve a mechanism other than the direct inhibition of mitomycin C reduction by quinone reductase.

摘要

有人提出,醌还原酶[NAD(P)H:(醌受体)氧化还原酶],也称为DT-黄递酶,通过将丝裂霉素C代谢为毒性较小的代谢产物来保护缺氧细胞免受丝裂霉素C的细胞毒性。这一假设基于在强效醌还原酶抑制剂双香豆素存在下丝裂霉素C细胞毒性的增加。有人提出,在有氧条件下,醌还原酶对丝裂霉素C的代谢会导致细胞毒性代谢产物的形成。在本研究中,发现丝裂霉素C不是人肾部分纯化醌还原酶的底物。丝裂霉素C不会导致醌还原酶氧化NADPH,也没有丝裂霉素C的利用及其代谢产物的出现。通过缺乏4-(对硝基苄基)吡啶缀合物的形成来确定,醌还原酶不会催化由丝裂霉素C形成烷基化代谢产物。然而,以二氯靛酚为底物时,丝裂霉素C是醌还原酶的弱竞争性抑制剂,Ki = 0.32 mM。因此,双香豆素对肿瘤细胞系中丝裂霉素C细胞毒性的改变似乎涉及一种不同于醌还原酶直接抑制丝裂霉素C还原的机制。

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