Kaur Amandeep, Gautam Ruchi, Srivastava Ritika, Chandel Avinash, Kumar Akhilesh, Karthikeyan Subramanian, Bachhawat Anand Kumar
From the Department of Biological Sciences, Indian Institute of Science Education and Research, Mohali, S.A.S. Nagar, Punjab 140306, India and.
the CSIR-Institute of Microbial Technology, Council of Scientific and Industrial Research (CSIR), Sector 39A, Chandigarh 160036, India.
J Biol Chem. 2017 Jan 13;292(2):638-651. doi: 10.1074/jbc.M116.727479. Epub 2016 Dec 2.
Glutathione degradation plays an important role in glutathione and redox homeostasis, and thus it is imperative to understand the enzymes and the mechanisms involved in glutathione degradation in detail. We describe here ChaC2, a member of the ChaC family of γ-glutamylcyclotransferases, as an enzyme that degrades glutathione in the cytosol of mammalian cells. ChaC2 is distinct from the previously described ChaC1, to which ChaC2 shows ∼50% sequence identity. Human and mouse ChaC2 proteins purified in vitro show 10-20-fold lower catalytic efficiency than ChaC1, although they showed comparable K values (K of 3.7 ± 0.4 mm and k of 15.9 ± 1.0 min toward glutathione for human ChaC2; K of 2.2 ± 0.4 mm and k of 225.2 ± 15 min toward glutathione for human ChaC1). The ChaC1 and ChaC2 proteins also shared the same specificity for reduced glutathione, with no activity against either γ-glutamyl amino acids or oxidized glutathione. The ChaC2 proteins were found to be expressed constitutively in cells, unlike the tightly regulated ChaC1. Moreover, lower eukaryotes have a single member of the ChaC family that appears to be orthologous to ChaC2. In addition, we determined the crystal structure of yeast ChaC2 homologue, GCG1, at 1.34 Å resolution, which represents the first structure of the ChaC family of proteins. The catalytic site is defined by a fortuitous benzoic acid molecule bound to the crystal structure. The mechanism for binding and catalytic activity of this new enzyme of glutathione degradation, which is involved in continuous but basal turnover of cytosolic glutathione, is proposed.
谷胱甘肽降解在谷胱甘肽和氧化还原稳态中起着重要作用,因此详细了解参与谷胱甘肽降解的酶和机制势在必行。我们在此描述ChaC2,它是γ-谷氨酰环转移酶ChaC家族的成员,是一种在哺乳动物细胞胞质溶胶中降解谷胱甘肽的酶。ChaC2与先前描述的ChaC1不同,ChaC2与ChaC1的序列同一性约为50%。体外纯化的人和小鼠ChaC2蛋白的催化效率比ChaC1低10-20倍,尽管它们的K值相当(人ChaC2对谷胱甘肽的K为3.7±0.4 mM,k为15.9±1.0 min-1;人ChaC1对谷胱甘肽的K为2.2±0.4 mM,k为225.2±15 min-1)。ChaC1和ChaC2蛋白对还原型谷胱甘肽也具有相同的特异性,对γ-谷氨酰氨基酸或氧化型谷胱甘肽均无活性。与严格调控的ChaC1不同,发现ChaC2蛋白在细胞中组成性表达。此外,低等真核生物有一个ChaC家族的单一成员,似乎与ChaC2是直系同源的。此外,我们以1.34 Å的分辨率确定了酵母ChaC2同源物GCG1的晶体结构,这代表了ChaC家族蛋白质的第一个结构。催化位点由与晶体结构结合的一个偶然的苯甲酸分子定义。本文提出了这种参与胞质谷胱甘肽持续但基础周转的新型谷胱甘肽降解酶的结合和催化活性机制。