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Mechanistic Details of Glutathione Biosynthesis Revealed by Crystal Structures of Saccharomyces cerevisiae Glutamate Cysteine Ligase

机译:酿酒酵母谷氨酸半胱氨酸连接酶的晶体结构揭示了谷胱甘肽生物合成的机械细节。

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摘要

Glutathione is a thiol-disulfide exchange peptide critical for buffering oxidative or chemical stress, and an essential cofactor in several biosynthesis and detoxification pathways. The rate-limiting step in its de novo biosynthesis is catalyzed by glutamate cysteine ligase, a broadly expressed enzyme for which limited structural information is available in higher eukaryotic species. Structural data are critical to the understanding of clinical glutathione deficiency, as well as rational design of enzyme modulators that could impact human disease progression. Here, we have determined the structures of Saccharomyces cerevisiae glutamate cysteine ligase (ScGCL) in the presence of glutamate and MgCl2 (2.1 Å; R = 18.2%, Rfree = 21.9%), and in complex with glutamate, MgCl2, and ADP (2.7 Å; R = 19.0%, Rfree = 24.2%). Inspection of these structures reveals an unusual binding pocket for the α-carboxylate of the glutamate substrate and an ATP-independent Mg2+ coordination site, clarifying the Mg2+ dependence of the enzymatic reaction. The ScGCL structures were further used to generate a credible homology model of the catalytic subunit of human glutamate cysteine ligase (hGCLC). Examination of the hGCLC model suggests that post-translational modifications of cysteine residues may be involved in the regulation of enzymatic activity, and elucidates the molecular basis of glutathione deficiency associated with patient hGCLC mutations.
机译:谷胱甘肽是硫醇-二硫键交换肽,对缓冲氧化或化学应激至关重要,并且是几种生物合成和解毒途径中的重要辅助因子。从头进行生物合成的限速步骤由谷氨酸半胱氨酸连接酶催化,谷氨酸半胱氨酸连接酶是一种广泛表达的酶,在高级真核生物中可获得有限的结构信息。结构数据对于理解临床谷胱甘肽缺乏症以及合理设计可能影响人类疾病进展的酶调节剂至关重要。在这里,我们确定了在存在谷氨酸和MgCl2(2.1Å; R = 18.2%,Rfree = 21.9%)并与谷氨酸,MgCl2和ADP(2.7)结合的情况下酿酒酵母谷氨酸半胱氨酸连接酶(ScGCL)的结构。 ; R = 19.0%,Rfree = 24.2%。检查这些结构后发现,谷氨酸底物的α-羧酸盐具有异常的结合口袋,并且具有不依赖ATP的Mg 2 + 配位点,从而阐明了Mg 2 + 的依赖性。酶促反应。 ScGCL结构还用于生成人谷氨酸半胱氨酸连接酶(hGCLC)催化亚基的可信同源性模型。 hGCLC模型的检查表明,半胱氨酸残基的翻译后修饰可能参与酶活性的调节,并阐明了与患者hGCLC突变相关的谷胱甘肽缺乏的分子基础。

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