遗传和药物靶向 XBP1 可通过增强 FoxO1 依赖性有丝分裂来缓解肝缺血再灌注损伤。

IF 6.4 2区 医学 Q1 MEDICAL LABORATORY TECHNOLOGY Translational Research Pub Date : 2024-03-15 DOI:10.1016/j.trsl.2024.03.006
Baicheng Kuang , Mengqin Wang , Hao Yan , Qin Jiang , Zhiheng Wang , Haiqiang Ni , Shuaiheng Hou , Xuan Peng , Shiqi Gu , Yuanyuan Zhao , Tongwen Ou , Nianqiao Gong
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引用次数: 0

摘要

肝脏缺血再灌注(I/R)损伤是一种常见的临床并发症。X-box 结合蛋白 1(XBP1)是内质网应激的重要调节因子,与多种疾病有关。本研究旨在探讨 XBP1 在肝脏 I/R 损伤进展中的作用及其内在机制。我们将肝细胞特异性 XBP1 基因敲除小鼠、多种病毒递送系统和特异性药理抑制剂应用于体内部分肝 I/R 损伤小鼠模型和体外缺氧-氧合(H/R)损伤细胞模型。对有丝分裂和自噬通量进行了评估,并进行了荧光共振能量转移(FRET)和免疫沉淀。结果表明,再灌注 6 小时是肝脏 I/R 损伤的一个关键时间点,会导致细胞内线粒体功能严重失调;导致肝细胞破裂,同时 XBP1 的表达水平最高。肝细胞特异性 XBP1 基因敲除可通过增强有丝分裂来缓解肝 I/R 损伤,肝细胞损伤/坏死的减少和有丝分裂标记物表达的增加证明了这一点。从机制上讲,XBP1 与 FoxO1 直接相互作用,并催化 FoxO1 泛素化,使其蛋白酶体降解。通过基因或药物技术靶向 XBP1 可提高 FoxO1 的蛋白水平,进一步促进 PINK1/Parkin 信号通路的活性,从而增强有丝分裂,在 I/R 损伤时发挥保护肝脏的作用。总之,在肝I/R损伤中,抑制XBP1可增强FoxO1介导的有丝分裂。在再灌注前6小时的围手术期,针对XBP1的特异性基因和药物治疗发挥了有益的作用,从而提供了一种新的治疗方法。
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Genetic and pharmacological targeting of XBP1 alleviates hepatic ischemia reperfusion injury by enhancing FoxO1-dependent mitophagy

Hepatic ischemia reperfusion (I/R) injury is a common clinical complication. X-box binding protein 1 (XBP1), as a critical regulator of the endoplasmic reticulum stress, has been implicated in a variety of diseases. In this study, we aimed to investigate the effects and the underlying mechanism of XBP1 in the progression of hepatic I/R injury. Hepatocyte-specific XBP1 knockout mice, multiple viral delivery systems and specific pharmacological inhibitors were applied in vivo in a partial hepatic I/R injury mouse model and in vitro in a cell model of hypoxia-reoxygenation (H/R) injury. Mitophagy and autophagic flux were evaluated and fluorescence resonance energy transfer (FRET) as well as immunoprecipitation were performed. The results demonstrated that reperfusion for 6 h represented a critical timepoint in hepatic I/R injury and resulted in significant intracellular mitochondrial dysfunction; led to the breakdown of hepatocytes accompanied by the highest expression levels of XBP1. Hepatocyte-specific XBP1 knockout alleviated hepatic I/R injury via enhanced mitophagy, as demonstrated by the reduction in hepatocellular damage/necrosis and increased expression of mitophagy markers. Mechanistically, XBP1 interacted with FoxO1 directly and catalyzed the ubiquitination of FoxO1 for proteasomal degradation. Targeting XBP1 by genetic or pharmacological techniques potentiated the protein levels of FoxO1, further promoting the activity of the PINK1/Parkin signaling pathway, thus augmenting mitophagy and exerting hepatoprotective effects upon I/R injury. In conclusion, the inhibition of XBP1 potentiated FoxO1-mediated mitophagy in hepatic I/R injury. Specific genetic and pharmacological treatment targeting XBP1 in the perioperative 6 h prior to reperfusion exerted beneficial effects, thus providing a novel therapeutic approach.

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来源期刊
Translational Research
Translational Research 医学-医学:内科
CiteScore
15.70
自引率
0.00%
发文量
195
审稿时长
14 days
期刊介绍: Translational Research (formerly The Journal of Laboratory and Clinical Medicine) delivers original investigations in the broad fields of laboratory, clinical, and public health research. Published monthly since 1915, it keeps readers up-to-date on significant biomedical research from all subspecialties of medicine.
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Contents Contents Masthead Lympho-myeloid aggregate-infiltrating CD20+ B cells display a double-negative phenotype and correlate with poor prognosis in esophageal squamous cell carcinoma Editorial Advisory Board
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