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赖氨酸-372 依赖性 SUMOylation 抑制谷氨酰胺合成酶的酶活性。

Lysine-372-dependent SUMOylation inhibits the enzymatic activity of glutamine synthases.

机构信息

Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, China.

Department of analytical chemistry, University of Chinese Academy of Sciences, Beijing, China.

出版信息

FASEB J. 2023 Dec;37(12):e23319. doi: 10.1096/fj.202301462RR.

Abstract

Glutamine synthetase (GS) is a crucial enzyme involved in de novo synthesis of glutamine and participates in several biological processes, including nitrogen metabolism, nucleotide synthesis, and amino acid synthesis. Post-translational modification makes GS more adaptable to the needs of cells, and acetylation modification of GS at double sites has attracted considerable attention. Despite very intensive research, how SUMOylation affects GS activity at a molecular level remains unclear. Here, we report that previously undiscovered GS SUMOylation which is deficient mutant K372R of GS exhibits more bluntness under glutamine starvation. Mechanistically, glutamine deprivation triggers the GS SUMOylation, and this SUMOylation impaired the protein stability of GS, within a concomitant decrease in enzymatic activity. In addition, we identified SAE1, Ubc9, and PIAS1 as the assembly enzymes of GS SUMOylation respectively. Furthermore, Senp1/2 functions as a SUMO-specific protease to reverse the SUMOylation of GS. This study provides the first evidence that SUMOylation serves as a regulatory mechanism for determining the GS enzymatic activity, contributing to understanding the GS regulation roles in various cellular and pathophysiological processes.

摘要

谷氨酰胺合成酶(GS)是一种参与谷氨酰胺从头合成的关键酶,参与多种生物过程,包括氮代谢、核苷酸合成和氨基酸合成。翻译后修饰使 GS 更能适应细胞的需求,而 GS 的双位点乙酰化修饰引起了相当大的关注。尽管进行了非常深入的研究,但 SUMOylation 如何在分子水平上影响 GS 活性仍不清楚。在这里,我们报告了以前未发现的 GS SUMOylation,GS 的缺陷突变体 K372R 在谷氨酰胺饥饿下表现出更迟钝的现象。在机制上,谷氨酰胺剥夺触发了 GS 的 SUMOylation,这种 SUMOylation损害了 GS 的蛋白质稳定性,同时酶活性降低。此外,我们分别鉴定了 SAE1、Ubc9 和 PIAS1 作为 GS SUMOylation 的组装酶。此外,Senp1/2 作为 SUMO 特异性蛋白酶发挥作用,逆转 GS 的 SUMOylation。这项研究提供了第一个证据,证明 SUMOylation 是决定 GS 酶活性的调节机制,有助于理解 GS 在各种细胞和病理生理过程中的调节作用。

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