砷酸通过ROS介导的MST1-FOXO信号通路抑制皮肤成纤维细胞增殖,促进细胞衰老。

Y. Yamaguchi, H. Madhyastha, R. Madhyastha, N. Choijookhuu, Y. Hishikawa, Y. Pengjam, Y. Nakajima, M. Maruyama
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引用次数: 34

摘要

通过饮用水接触砷是一个重大的公共卫生问题。它会对皮肤产生一系列的毒性作用。据报道,砷在体外条件下抑制细胞增殖。然而,关于分子机制的报道有限。本研究以小鼠皮肤成纤维细胞系为研究对象,探讨了砷酸介导的细胞增殖抑制机制。目前的研究发现,10 ppm的砷酸抑制细胞增殖,但对细胞死亡没有任何影响。砷酸诱导活性氧(ROS)的产生,对DNA造成氧化应激。它还激活了哺乳动物ste20样蛋白激酶1 (MST1);而丝氨酸/苏氨酸激酶Akt下调。叉头盒O (FOXO)转录因子在胁迫条件下被MST1磷酸化激活。它们通过外部和内部刺激被Akt磷酸化抑制。FOXOs的激活导致其核定位,随后是转录活性的增加。我们的研究结果表明,砷诱导FOXO1和FOXO3a的核易位,改变细胞周期,细胞在G2/M期积聚。这些影响导致细胞衰老。综上所述,我们的研究结果表明,砷酸通过MST1-FOXO信号通路调控的细胞衰老过程抑制细胞增殖。
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Arsenic acid inhibits proliferation of skin fibroblasts, and increases cellular senescence through ROS mediated MST1-FOXO signaling pathway.
Arsenic exposure through drinking water is a major public health problem. It causes a number of toxic effects on skin. Arsenic has been reported to inhibit cell proliferation in in vitro conditions. However, reports about the molecular mechanisms are limited. Here, we investigated the mechanism involved in arsenic acid-mediated inhibition of cell proliferation using mouse skin fibroblast cell line. The present study found that 10 ppm arsenic acid inhibited cell proliferation, without any effect on cell death. Arsenic acid induced the generation of reactive oxygen species (ROS), resulting in oxidative stress to DNA. It also activated the mammalian Ste20-like protein kinase 1 (MST1); however the serine/threonine kinase Akt was downregulated. Forkhead box O (FOXO) transcription factors are activated through phosphorylation by MST1 under stress conditions. They are inhibited by phosphorylation by Akt through external and internal stimuli. Activation of FOXOs results in their nuclear localization, followed by an increase in transcriptional activity. Our results showed that arsenic induced the nuclear translocation of FOXO1 and FOXO3a, and altered the cell cycle, with cells accumulating at the G2/M phase. These effects caused cellular senescence. Taken together, our results indicate that arsenic acid inhibited cell proliferation through cellular senescence process regulated by MST1-FOXO signaling pathway.
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