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谷胱甘肽的降解是谷胱甘肽动态平衡的关键决定因素。

Glutathione degradation is a key determinant of glutathione homeostasis.

机构信息

Commissariat à I'Energie Atomique (CEA), Institut de Biologie et Technologies de Saclay (iBiTecS), Service de Biologie Integrative et Genetique Moleculaire (SBIGeM), 91191 Gif-sur-Yvette, France.

出版信息

J Biol Chem. 2012 Feb 10;287(7):4552-61. doi: 10.1074/jbc.M111.315705. Epub 2011 Dec 13.

Abstract

Glutathione (GSH) has several important functions in eukaryotic cells, and its intracellular concentration is tightly controlled. Combining mathematical models and (35)S labeling, we analyzed Saccharomyces cerevisiae sulfur metabolism. This led us to the observation that GSH recycling is markedly faster than previously estimated. We set up additional in vivo assays and concluded that under standard conditions, GSH half-life is around 90 min. Sulfur starvation and growth with GSH as the sole sulfur source strongly increase GSH degradation, whereas cadmium (Cd(2+)) treatment inhibits GSH degradation. Whatever the condition tested, GSH is degraded by the cytosolic Dug complex (composed of the three subunits Dug1, Dug2, and Dug3) but not by the γ-glutamyl-transpeptidase, raising the question of the role of this enzyme. In vivo, both DUG2/3 mRNA levels and Dug activity are quickly induced by sulfur deprivation in a Met4-dependent manner. This suggests that Dug activity is mainly regulated at the transcriptional level. Finally, analysis of dug2Δ and dug3Δ mutant cells shows that GSH degradation activity strongly impacts on GSH intracellular concentration and that GSH intracellular concentration does not affect GSH synthesis rate. Altogether, our data led us to reconsider important aspects of GSH metabolism, challenging notions on GSH synthesis and GSH degradation that were considered as established.

摘要

谷胱甘肽 (GSH) 在真核细胞中具有几个重要功能,其细胞内浓度受到严格控制。我们结合数学模型和 (35)S 标记分析了酿酒酵母的硫代谢。这使我们观察到 GSH 的循环回收速度明显快于之前的估计。我们设计了其他体内测定实验,得出结论,在标准条件下,GSH 的半衰期约为 90 分钟。硫饥饿和以 GSH 作为唯一硫源的生长强烈促进 GSH 的降解,而镉 (Cd(2+)) 处理抑制 GSH 的降解。无论测试何种条件,GSH 都是由细胞质中的 Dug 复合物(由三个亚基 Dug1、 Dug2 和 Dug3 组成)降解的,而不是由 γ-谷氨酰转肽酶降解的,这就提出了该酶的作用问题。在体内,DUG2/3 mRNA 水平和 Dug 活性都以 Met4 依赖性方式迅速被硫剥夺诱导。这表明 Dug 活性主要受转录水平调控。最后,对 dug2Δ 和 dug3Δ 突变细胞的分析表明,GSH 降解活性对 GSH 细胞内浓度有很大影响,而 GSH 细胞内浓度不会影响 GSH 合成速率。总之,我们的数据使我们重新考虑了 GSH 代谢的重要方面,挑战了关于 GSH 合成和 GSH 降解的既定观念。

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