EPRS1通过与TβRI相互作用调控肝星状细胞TGF-β信号通路。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2023-01-01 DOI:10.1080/10985549.2023.2205344
Ina Yoon, Ji Ae Song, Ji Hun Suh, Sulhee Kim, Jonghyeon Son, Jong Hyun Kim, Song Yee Jang, Kwang Yeon Hwang, Myung Hee Kim, Sunghoon Kim
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引用次数: 1

摘要

已知谷氨酰脯氨酸trna合成酶1 (EPRS1)通过其催化生成脯氨酸trna的活性与纤维化有关。虽然已知其催化抑制剂halofuginone (HF)可抑制TGF-β通路并减少prolyl-tRNA的产生以控制纤维化,但EPRS1调节TGF-β通路的潜在机制尚不完全清楚。在这里,我们发现EPRS1通过与TGF-β受体I (t -β ri)的相互作用,在控制TGF-β通路和肝星状细胞活化方面具有非催化功能。在TGF-β刺激下,EPRS1被TGF-β活化激酶1 (TAK1)磷酸化,导致其与多trna合成酶复合物分离,随后与t -β ri结合。这种相互作用增加了TβRI与SMAD2/3的关联,而降低了TβRI与SMAD7的关联。因此,EPRS1通过阻止泛素介导的TβRI降解来稳定TβRI。HF破坏EPRS1与TβRI之间的相互作用,降低TβRI蛋白水平,从而抑制TGF-β通路。综上所述,本研究提示EPRS1通过调节TGF-β通路参与纤维化的发展,通过控制EPRS1的两种功能参与HF的抗纤维化作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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EPRS1 Controls the TGF-β Signaling Pathway via Interaction with TβRI in Hepatic Stellate Cell.

Glutamyl-prolyl-tRNA synthetase 1 (EPRS1) is known to associated with fibrosis through its catalytic activity to produce prolyl-tRNA. Although its catalytic inhibitor halofuginone (HF) has been known to inhibit the TGF-β pathway as well as to reduce prolyl-tRNA production for the control of fibrosis, the underlying mechanism how EPRS1 regulates the TGF-β pathway was not fully understood. Here, we show a noncatalytic function of EPRS1 in controlling the TGF-β pathway and hepatic stellate cell activation via its interaction with TGF-β receptor I (TβRI). Upon stimulation with TGF-β, EPRS1 is phosphorylated by TGF-β-activated kinase 1 (TAK1), leading to its dissociation from the multi-tRNA synthetase complex and subsequent binding with TβRI. This interaction increases the association of TβRI with SMAD2/3 while decreases that of TβRI with SMAD7. Accordingly, EPRS1 stabilizes TβRI by preventing the ubiquitin-mediated degradation of TβRI. HF disrupts the interaction between EPRS1 and TβRI, and reduces TβRI protein levels, leading to inhibition of the TGF-β pathway. In conclusion, this work suggests the novel function of EPRS1 involved in the development of fibrosis by regulating the TGF-β pathway and the antifibrotic effects of HF by controlling both of EPRS1 functions.

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