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依布硒啉:谷氨酸脱氢酶和谷氨酰胺酶的抑制机制

Ebselen: Mechanisms of Glutamate Dehydrogenase and Glutaminase Enzyme Inhibition.

作者信息

Yu Yan, Jin Yanhong, Zhou Jie, Ruan Haoqiang, Zhao Han, Lu Shiying, Zhang Yue, Li Di, Ji Xiaoyun, Ruan Benfang Helen

机构信息

College of Pharmaceutical Science, Collaborative Innovation Center of Yangtza River Delta Region Green Pharmaceuticals, Zhejiang University of Technology , Hangzhou, China.

Center for Medicinal Resources Research, Zhejiang Academy of Traditional Chinese Medicine , Hangzhou, China.

出版信息

ACS Chem Biol. 2017 Dec 15;12(12):3003-3011. doi: 10.1021/acschembio.7b00728. Epub 2017 Nov 7.

Abstract

Ebselen modulates target proteins through redox reactions with selenocysteine/cysteine residues, or through binding to the zinc finger domains. However, a recent contradiction in ebselen inhibition of kidney type glutaminase (KGA) stimulated our interest in investigating its inhibition mechanism with glutamate dehydrogenase (GDH), KGA, thioredoxin reductase (TrxR), and glutathione S-transferase. Fluorescein- or biotin-labeled ebselen derivatives were synthesized for mechanistic analyses. Biomolecular interaction analyses showed that only GDH, KGA, and TrxR proteins can bind to the ebselen derivative, and the binding to GDH and KGA could be competed off by glutamine or glutamate. From the gel shift assays, the fluorescein-labeled ebselen derivative could co-migrate with hexameric GDH and monomeric/dimeric TrxR in a dose-dependent manner; it also co-migrated with KGA but disrupted the tetrameric form of the KGA enzyme at a high compound concentration. Further proteomic analysis demonstrated that the ebselen derivative could cross-link with proteins through a specific cysteine at the active site of GDH and TrxR proteins, but for KGA protein, the binding site is at the N-terminal appendix domain outside of the catalytic domain, which might explain why ebselen is not a potent KGA enzyme inhibitor in functional assays. In conclusion, ebselen could inhibit enzyme activity by binding to the catalytic domain or disruption of the protein complex. In addition, ebselen is a relatively potent selective GDH inhibitor that might provide potential therapeutic opportunities for hyperinsulinism-hyperammonemia syndrome patients who have the mutational loss of GTP inhibition.

摘要

依布硒啉通过与硒代半胱氨酸/半胱氨酸残基发生氧化还原反应,或通过与锌指结构域结合来调节靶蛋白。然而,最近依布硒啉对肾型谷氨酰胺酶(KGA)抑制作用中的一个矛盾现象激发了我们研究其对谷氨酸脱氢酶(GDH)、KGA、硫氧还蛋白还原酶(TrxR)和谷胱甘肽S-转移酶抑制机制的兴趣。合成了荧光素或生物素标记的依布硒啉衍生物用于机制分析。生物分子相互作用分析表明,只有GDH、KGA和TrxR蛋白能与依布硒啉衍生物结合,且谷氨酰胺或谷氨酸能竞争性抑制它们与GDH和KGA的结合。从凝胶迁移试验可知,荧光素标记的依布硒啉衍生物能以剂量依赖方式与六聚体GDH和单体/二聚体TrxR共同迁移;它也能与KGA共同迁移,但在高化合物浓度下会破坏KGA酶的四聚体形式。进一步的蛋白质组学分析表明,依布硒啉衍生物可通过GDH和TrxR蛋白活性位点的特定半胱氨酸与蛋白质交联,但对于KGA蛋白,结合位点在催化结构域之外的N端附加结构域,这可能解释了为什么依布硒啉在功能试验中不是一种有效的KGA酶抑制剂。总之,依布硒啉可通过与催化结构域结合或破坏蛋白质复合物来抑制酶活性。此外,依布硒啉是一种相对有效的选择性GDH抑制剂,这可能为因GTP抑制功能突变缺失而患高胰岛素血症-高氨血症综合征的患者提供潜在的治疗机会。

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