Identification of Ubr1 as an amino acid sensor of steatosis in liver and muscle

IF 8.9 1区 医学 Journal of Cachexia, Sarcopenia and Muscle Pub Date : 2023-04-13 DOI:10.1002/jcsm.13233
Wanni Zhao, Yansong Zhang, Siyuan Lin, Yajuan Li, Alan Jian Zhu, Hanping Shi, Min Liu
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引用次数: 1

Abstract

Background

Malnutrition is implicated in human metabolic disorders, including hepatic steatosis and myosteatosis. The corresponding nutrient signals and sensors as well as signalling pathways have not yet been well studied. This study aimed to unravel the nutrient-sensing mechanisms in the pathogenesis of steatosis.

Methods

Plin2, a lipid droplet (LD) protein-inhibiting lipolysis, is associated with steatosis in liver and muscle. Taking advantage of the Gal4-UAS system, we used the Drosophila melanogaster wing imaginal disc as an in vivo model to study the regulation of Plin2 proteostasis and LD homeostasis. Drosophila Schneider 2 (S2) cells were used for western blotting, immunoprecipitation assays, amino acid-binding assays and ubiquitination assays to further investigate the regulatory mechanisms of Plin2 in response to nutrient signals. Mouse AML12 hepatocytes, human JHH-7 and SNU-475 hepatoma cells were used for immunofluorescence, western blotting and immunoprecipitation to demonstrate that the mode of Plin2 regulation is evolutionarily conserved. In addition, we purified proteins from HEK293 cells and reconstituted in vitro cell-free systems in amino acid-binding assays, pulldown assays and ubiquitination assays to directly demonstrate the molecular mechanism by which Ubr1 senses amino acids to regulate Plin2 proteostasis.

Results

As a lipolysis inhibitor, Plin2 was significantly elevated in liver (P < 0.05) and muscle (P < 0.05) in patients with steatosis. Consistently, we found that the ubiquitin moiety can be conjugated to any Lys residue in Plin2, ensuring robust clearance of Plin2 by protein degradation. We further demonstrated that the E3 ubiquitin ligase Ubr1 targets Plin2 for degradation in an amino acid-dependent manner. Ubr1 uses two canonical substrate-binding pockets, independent of each other, to bind basic and bulky hydrophobic amino acids, respectively. Mechanistically, amino acid binding allosterically activates Ubr1 by alleviating Ubr1's auto-inhibition. In the absence of amino acids, or when the amino acid-binding capacity of Ubr1 is diminished, Ubr1-mediated Plin2 degradation is inactivated, leading to steatosis.

Conclusions

We identified Ubr1 as an amino acid sensor regulating Plin2 proteostasis, bridging the knowledge gap between steatosis and nutrient sensing. Our work may provide new strategies for the prevention and treatment of steatosis.

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肝脏和肌肉脂肪变性氨基酸传感器Ubr1的鉴定
营养不良与人类代谢紊乱有关,包括肝脂肪变性和肌骨化病。相应的营养信号和传感器以及信号通路尚未得到很好的研究。本研究旨在揭示脂肪变性发病机制中的营养感测机制。方法脂滴蛋白Plin2是一种抑制脂肪分解的蛋白,与肝脏和肌肉脂肪变性有关。利用Gal4-UAS系统,我们以黑腹果蝇翅膀影像盘为体内模型,研究Plin2蛋白稳态和LD稳态的调控。利用果蝇Schneider 2 (S2)细胞进行western blotting、免疫沉淀、氨基酸结合和泛素化实验,进一步研究Plin2对营养信号的调控机制。利用小鼠AML12肝细胞、人JHH-7和SNU-475肝癌细胞进行免疫荧光、western blotting和免疫沉淀,证实Plin2的调控模式具有进化保守性。此外,我们从HEK293细胞中纯化蛋白质,并通过氨基酸结合实验、拉下实验和泛素化实验重建体外无细胞系统,直接证明了Ubr1感知氨基酸调节Plin2蛋白稳态的分子机制。结果Plin2作为一种脂解抑制剂,在肝脏中显著升高(P <0.05)和肌肉(P <脂肪变性患者0.05)。一致地,我们发现泛素片段可以与Plin2中的任何赖氨酸残基结合,确保蛋白质降解对Plin2的强大清除。我们进一步证明E3泛素连接酶Ubr1以氨基酸依赖的方式靶向Plin2降解。Ubr1使用两个相互独立的典型底物结合口袋,分别结合碱性和大体积疏水氨基酸。机制上,氨基酸结合变构激活Ubr1,减轻Ubr1的自抑制作用。在缺乏氨基酸的情况下,或者当Ubr1的氨基酸结合能力降低时,Ubr1介导的Plin2降解就会失活,导致脂肪变性。我们发现Ubr1是调节Plin2蛋白停滞的氨基酸传感器,弥合了脂肪变性和营养感知之间的知识差距。我们的工作可能为脂肪变性的预防和治疗提供新的策略。
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来源期刊
Journal of Cachexia, Sarcopenia and Muscle
Journal of Cachexia, Sarcopenia and Muscle Medicine-Orthopedics and Sports Medicine
自引率
12.40%
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期刊介绍: The Journal of Cachexia, Sarcopenia, and Muscle is a prestigious, peer-reviewed international publication committed to disseminating research and clinical insights pertaining to cachexia, sarcopenia, body composition, and the physiological and pathophysiological alterations occurring throughout the lifespan and in various illnesses across the spectrum of life sciences. This journal serves as a valuable resource for physicians, biochemists, biologists, dieticians, pharmacologists, and students alike.
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