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首页> 外文期刊>Toxicology Letters: An International Journal Providing a Forum for Original and Pertinent Contributions in Toxicology Research >Furazolidone induced oxidative DNA damage via up-regulating ROS that caused cell cycle arrest in human hepatoma G2 cells.
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Furazolidone induced oxidative DNA damage via up-regulating ROS that caused cell cycle arrest in human hepatoma G2 cells.

机译:呋喃唑酮通过上调ROS诱导氧化性DNA损伤,导致人肝癌G2细胞的细胞周期停滞。

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Furazolidone (FZD) is an antimicrobial agent that has been shown to have mutagenic, genotoxic and potentially carcinogenic properties when tested in a variety of systems in vitro and in vivo. In this study, we investigated FZD's DNA damaging effect in human hepatoma cells aiming at further defining the molecular mechanism of FZD's cytotoxicity. Addition of FZD resulted in cell growth suppression and cell cycle arrest in S phase accompanied by remarkable DNA strand breaks with increased levels of intracellular reactive oxygen species (ROS) and 8-hydroxydeoxyguanosine. Activities of antioxidases were down-regulated following FZD treatment and antioxidant agent catalase and superoxide dismutase ameliorated FZD's DNA damaging effects. Moreover, FZD caused much more extensive damage to mitochondrial DNA (mtDNA) than to nuclear DNA for which the decrease in mtDNA content correlated with FZD usage in a dose-dependent manner. However, there was no evidence of FZD induced mtDNA mutation in the mitochondrial DNA displacement loop. These results demonstrate that FZD up-regulates the production of intracellular ROS to cause oxidative DNA damage with mtDNA being the most vulnerable targets. Oxidative stress and the injury of mtDNA could be early indicators of FZD-induced cytotoxicity, with the resulting abnormal progression of the cell cycle.
机译:呋喃唑酮(FZD)是一种抗菌剂,在各种体外和体内系统中进行测试时,已显示具有诱变,遗传毒性和潜在的致癌特性。在这项研究中,我们研究了FZD对人肝癌细胞的DNA破坏作用,旨在进一步确定FZD细胞毒性的分子机制。 FZD的添加导致细胞生长抑制和S期细胞周期停滞,伴随着显着的DNA链断裂以及细胞内活性氧(ROS)和8-羟基脱氧鸟苷水平的增加。 FZD处理后抗氧化酶的活性被下调,抗氧化剂过氧化氢酶和超氧化物歧化酶改善了FZD的DNA破坏作用。此外,FZD对线粒体DNA(mtDNA)的损害要比对核DNA的损害大得多,因为线粒体DNA的mtDNA含量降低与FZD的使用呈剂量依赖性。然而,在线粒体DNA置换环中没有FZD诱导的mtDNA突变的证据。这些结果表明,FZD上调细胞内ROS的产生以引起氧化性DNA损伤,而mtDNA是最易受攻击的靶标。氧化应激和mtDNA损伤可能是FZD诱导的细胞毒性的早期指标,从而导致细胞周期异常进展。

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