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线粒体脂质心磷脂的丧失导致谷胱甘肽合成减少。

Loss of the mitochondrial lipid cardiolipin leads to decreased glutathione synthesis.

机构信息

Department of Biological Sciences, Wayne State University, Detroit, MI, USA.

Department of Biological Sciences, Wayne State University, Detroit, MI, USA.

出版信息

Biochim Biophys Acta Mol Cell Biol Lipids. 2020 Feb;1865(2):158542. doi: 10.1016/j.bbalip.2019.158542. Epub 2019 Oct 28.

Abstract

Previous studies demonstrated that loss of CL in the yeast mutant crd1Δ leads to perturbation of mitochondrial iron‑sulfur (FeS) cluster biogenesis, resulting in decreased activity of mitochondrial and cytosolic Fe-S-requiring enzymes, including aconitase and sulfite reductase. In the current study, we show that crd1Δ cells exhibit decreased levels of glutamate and cysteine and are deficient in the essential antioxidant, glutathione, a tripeptide of glutamate, cysteine, and glycine. Glutathione is the most abundant non-protein thiol essential for maintaining intracellular redox potential in almost all eukaryotes, including yeast. Consistent with glutathione deficiency, the growth defect of crd1Δ cells at elevated temperature was rescued by supplementation of glutathione or glutamate and cysteine. Sensitivity to the oxidants iron (FeSO) and hydrogen peroxide (HO), was rescued by supplementation of glutathione. The decreased intracellular glutathione concentration in crd1Δ was restored by supplementation of glutamate and cysteine, but not by overexpressing YAP1, an activator of expression of glutathione biosynthetic enzymes. These findings show for the first time that CL plays a critical role in regulating intracellular glutathione metabolism.

摘要

先前的研究表明,酵母突变体 crd1Δ 中 CL 的缺失会导致线粒体铁硫簇(FeS)生物发生的紊乱,从而导致线粒体和细胞质中需要 Fe-S 的酶的活性降低,包括 aconitase 和亚硫酸盐还原酶。在本研究中,我们表明 crd1Δ 细胞表现出谷氨酸和半胱氨酸水平降低,并缺乏必需的抗氧化剂谷胱甘肽,这是一种由谷氨酸、半胱氨酸和甘氨酸组成的三肽。谷胱甘肽是维持几乎所有真核生物(包括酵母)细胞内氧化还原电势的最丰富的非蛋白巯基。与谷胱甘肽缺乏一致,在高温下,crd1Δ 细胞的生长缺陷通过补充谷胱甘肽或谷氨酸和半胱氨酸得到挽救。氧化应激剂铁(FeSO)和过氧化氢(HO)的敏感性通过补充谷胱甘肽得到挽救。通过补充谷氨酸和半胱氨酸可以恢复 crd1Δ 细胞中细胞内谷胱甘肽浓度的降低,但通过过表达 YAP1(一种谷胱甘肽生物合成酶表达的激活剂)则不行。这些发现首次表明 CL 在调节细胞内谷胱甘肽代谢中起着关键作用。

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