Mansfield Kyle D, Simon M Celeste, Keith Brian
Abramson Family Cancer Research Institute, 438 BRB II/III, 421 Curie Blvd, Philadelphia, PA 19104, USA.
J Appl Physiol (1985). 2004 Oct;97(4):1358-66. doi: 10.1152/japplphysiol.00449.2004. Epub 2004 Jun 4.
When exposed to hypoxia (1.5% O2), several cell types have been shown to increase production of reactive O2 species derived from the mitochondrial electron transport chain (mtROS). The general physiological consequences of hypoxic mtROS production are not completely understood, although several groups have demonstrated that mtROS promote the stabilization and activity of hypoxia inducible factor-1alpha (HIF-1alpha) transcription factor, alter cardiac myocyte contractility, and modulate Na+-K+-ATPase activity. To investigate the effects of hypoxia-induced mtROS on general cellular oxidative metabolism, we measured the levels of glutathione, a major cellular antioxidant, in response to hypoxic treatment. Our data indicate that HEK293 and Hep3B cells exposed to 1.5% O2 exhibit a time-dependent decrease in cellular glutathione stores and concomitant inhibition of glutathione biosynthesis, which correlates to impaired transport of the substrate cystine. Using a combination of ROS scavengers, mitochondrial electron transport inhibitors, and mitochondrial DNA-deficient rho0 cells, we demonstrate that this decrease in cellular glutathione levels is mediated by hypoxia-induced mtROS. Intriguingly, this effect is also inhibited by cyclohexamide but is not dependent on HIF-mediated transcription. Overall, these data suggest a novel HIF-independent role for mitochondrial ROS in regulating glutathione synthesis, and hence cellular oxidative homeostasis, during hypoxic exposure.
当暴露于低氧环境(1.5% O₂)时,已显示几种细胞类型会增加源自线粒体电子传递链(mtROS)的活性氧的产生。尽管有几个研究小组已证明mtROS可促进缺氧诱导因子-1α(HIF-1α)转录因子的稳定性和活性、改变心肌细胞收缩力并调节钠钾ATP酶活性,但低氧mtROS产生的一般生理后果尚未完全了解。为了研究缺氧诱导的mtROS对一般细胞氧化代谢的影响,我们测量了主要细胞抗氧化剂谷胱甘肽在低氧处理后的水平。我们的数据表明,暴露于1.5% O₂的HEK293和Hep3B细胞表现出细胞谷胱甘肽储备随时间的减少以及谷胱甘肽生物合成的相应抑制,这与底物胱氨酸转运受损相关。使用活性氧清除剂、线粒体电子传递抑制剂和线粒体DNA缺陷的ρ⁰细胞的组合,我们证明细胞谷胱甘肽水平的这种降低是由缺氧诱导的mtROS介导的。有趣的是,这种作用也受到环己酰亚胺的抑制,但不依赖于HIF介导的转录。总体而言,这些数据表明线粒体活性氧在低氧暴露期间调节谷胱甘肽合成以及细胞氧化稳态方面具有一种新的不依赖HIF的作用。