GPX4
硒蛋白
毒物
氧化应激
化学
亚砷酸钠
硒
谷胱甘肽
新陈代谢
细胞生物学
生物化学
谷胱甘肽过氧化物酶
GPX1型
亚砷酸盐
砷毒性
过氧化物酶
程序性细胞死亡
抗氧化剂
砷
调节器
氧化磷酸化
脂质代谢
硒蛋白P
磷脂过氧化氢谷胱甘肽过氧化物酶
生物
细胞生长
超氧化物歧化酶
脂质过氧化
硒缺乏症
活性氧
细胞内
细胞
谷胱甘肽代谢
作者
Hayato Takashima,Reiko Makino,Hiroki Taguchi,Junya Ito,Eikan Mishima,Yoshika Takenaka,Yasutoshi Akiyama,Daigo Sumi,Marcus Conrad,Yoshihisa Tomikoka,Takashi Toyama,Yoshiro Saito
出处
期刊:Toxicology
[Elsevier BV]
日期:2026-01-25
卷期号:522: 154409-154409
标识
DOI:10.1016/j.tox.2026.154409
摘要
Arsenic (As), an environmental toxicant commonly found in groundwater, exerts its toxic effects primarily through oxidative stress. Selenium (Se) plays a crucial role in counteracting oxidative stress by promoting the synthesis of Se-containing antioxidant enzymes, such as glutathione peroxidases (GPx). To elucidate the impact of As on cellular Se metabolism, we investigated the effects of inorganic arsenic on cultured cells (HT-1080, Jurkat, and SH-SY5Y). Our findings indicate that As(III) disrupts Se metabolism and inhibits Se-induced GPx expression. By comparing different Se sources (selenoprotein P, selenocysteine, and selenite), we determined that As(III) primarily interferes with Se metabolism downstream of selenite, an inorganic form of Se. Notably, exposure to As(III) reduced Se incorporation into RNA, suggesting inhibition of Sec-tRNASec synthesis, a critical step in selenoprotein biosynthesis. Additionally, As(III) increased cellular susceptibility to ferroptosis, a form of oxidative stress-driven lipid peroxidation-mediated cell death primarily regulated by GPx4. Supporting this, genetic deletion of PRDX6, a recently identified regulator of cellular Se metabolism, further suppressed selenoprotein expression and exacerbated As(III)-induced ferroptosis. These findings provide new insights into the toxicological mechanisms of As compounds, highlighting their role in disrupting Se metabolism and potentially mitigating the side effects associated with arsenic-based anticancer therapies.
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