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Microsomal oxidative stress induced by NADPH is inhibited by nitrofurantoin redox biotranformation

机译:NADPH诱导的微粒体氧化应激受到呋喃妥因氧化还原生物转化的抑制

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摘要

Nitrofurantoin is used in the antibacterial therapy of the urinary tract. This therapy is associated with various adverse effects whose mechanisms remain unclear. Diverse studies show that the nitro reductive metabolism of nitrofurantoin leads to ROS generation. This reaction can be catalyzed by several reductases, including the cytochrome P450 (CYP450) reductase. Oxidative stress arising from this nitro reductive metabolism has been proposed as the mechanism underlying the adverse effects associated with nitrofurantoin. There is, however, an apparent paradox between these findings and the ability of nitrofurantoin to inhibit lipid peroxidation provoked by NADPH in rat liver microsomes. This work was aimed to show the potential contribution of different enzymatic systems to the metabolism of this drug in rat liver microsomes. Our results show that microsomal lipid peroxidation promoted by NADPH is inhibited by nitrofurantoin in a concentration-dependent manner. This suggests that the consumption of NADPH in microsomes can be competitively promoted by lipid peroxidation and nitrofurantoin metabolism. The incubation of microsomes with NADPH and nitrofurantoin generated 1-aminohidantoin. In addition, the biotransformation of a classical substrate of CYP450 oxidative system was competitively inhibited by nitrofurantoin. These results suggest that nitrofurantoin is metabolized through CYP450 system. Data are discussed in terms of the in vitro redox metabolism of nitrofurantoin.
机译:呋喃妥因用于泌尿道的抗菌治疗。这种疗法与各种不良反应有关,其机制尚不清楚。各种研究表明,呋喃妥因的硝基还原代谢会导致ROS的产生。该反应可以被几种还原酶催化,包括细胞色素P450(CYP450)还原酶。已经提出由这种硝基还原代谢引起的氧化应激是与呋喃妥因相关的不良作用的潜在机理。但是,这些发现与硝基呋喃妥因抑制NADPH在大鼠肝微粒体中引起的脂质过氧化的能力之间存在明显的矛盾。这项工作旨在表明不同的酶系统对该药物在大鼠肝微粒体中的代谢的潜在贡献。我们的结果表明,NADPH促进的微粒体脂质过氧化被呋喃妥因以浓度依赖性的方式抑制。这表明脂质过氧化和硝基呋喃妥因代谢可以竞争性地促进微粒体中NADPH的消耗。将微粒体与NADPH和硝基呋喃妥因一起孵育,生成了1-aminohidantoin。此外,呋喃妥因竞争性抑制CYP450氧化系统经典底物的生物转化。这些结果表明,呋喃妥因是通过CYP450系统代谢的。关于硝基呋喃妥因的体外氧化还原代谢讨论了数据。

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