Nuclear receptor coactivator 4-mediated ferritinophagy contributes to cerebral ischemia-induced ferroptosis in ischemic stroke

IF 10.5 2区 医学 Q1 PHARMACOLOGY & PHARMACY
Chong Li , Guangchi Sun , Binglin Chen , Lei Xu , Yangfan Ye , Jinyan He , Zhongyuan Bao , Pengzhan Zhao , Zong Miao , Lin Zhao , Jingming Hu , Yongping You , Ning Liu , Honglu Chao , Jing Ji
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引用次数: 70

Abstract

Ischemic stroke poses a significant health risk due to its high rate of disability and mortality. To address this problem, several therapeutic approaches have been proposed, including interruption targeting programmed cell death (PCD). Ferroptosis is a newly defined PCD characterized by iron-dependent accumulation of lipid peroxidation, and is becoming a promising target for treating numerous diseases. To explore the underlying mechanisms of the initiation and execution of ferroptosis in ischemic stroke, we established stroke models in vivo and in vitro simulating ischemia/reperfusion (I/R) neuronal injury. Different from previous reports on stroke, we tested ferroptosis by measuring the levels of core proteins, such as ACSL4, 15-LOX2, Ferritin and GPX4. In addition, I/R injury induces excessive degradation of ferritin via the autophagy pathway and subsequent increase of free iron in neurons. This phenomenon has recently been termed ferritinophagy and reported to be regulated by nuclear receptor coactivator 4 (NCOA4) in some cell lines. Increased NCOA4 in cytoplasm was detected in our study and then silenced by shRNA to investigate its function. Both in vivo and in vitro, NCOA4 deletion notably abrogated ferritinophagy caused by I/R injury and thus inhibited ferroptosis. Furthermore, we found that NCOA4 was upregulated by ubiquitin specific peptidase 14 (USP14) via a deubiquitination process in damaged neurons, and we found evidence of pharmacological inhibition of USP14 effectively reducing NCOA4 levels to protect neurons from ferritinophagy-mediated ferroptosis. These findings suggest a novel and effective target for treating ischemic stroke.

核受体共激活因子4介导的铁蛋白自噬参与缺血性卒中脑缺血诱导的铁凋亡
缺血性中风因其高致残率和死亡率而构成重大的健康风险。为了解决这个问题,已经提出了几种治疗方法,包括靶向程序性细胞死亡(PCD)的中断。铁下垂是一种新定义的PCD,其特征是铁依赖性脂质过氧化积累,并且正在成为治疗许多疾病的有希望的靶点。为了探讨缺血性脑卒中中铁上吊发生和发生的潜在机制,我们建立了模拟缺血/再灌注(I/R)神经元损伤的体内和体外脑卒中模型。与以往的脑卒中报道不同,我们通过测量ACSL4、15-LOX2、铁蛋白和GPX4等核心蛋白的水平来检测铁下垂。此外,I/R损伤通过自噬途径诱导铁蛋白过度降解,从而导致神经元中游离铁的增加。这种现象最近被称为铁蛋白自噬,并在一些细胞系中受到核受体共激活因子4 (NCOA4)的调节。在我们的研究中检测到细胞质中NCOA4增加,然后通过shRNA沉默以研究其功能。在体内和体外实验中,NCOA4的缺失明显消除了I/R损伤引起的铁蛋白自噬,从而抑制了铁凋亡。此外,我们发现NCOA4通过损伤神经元的去泛素化过程被泛素特异性肽酶14 (USP14)上调,我们发现USP14的药理抑制有效降低NCOA4水平,以保护神经元免受铁蛋白吞噬介导的铁凋亡。这些发现为治疗缺血性脑卒中提供了一种新的有效靶点。
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来源期刊
Pharmacological research
Pharmacological research 医学-药学
CiteScore
18.70
自引率
3.20%
发文量
491
审稿时长
8 days
期刊介绍: Pharmacological Research publishes cutting-edge articles in biomedical sciences to cover a broad range of topics that move the pharmacological field forward. Pharmacological research publishes articles on molecular, biochemical, translational, and clinical research (including clinical trials); it is proud of its rapid publication of accepted papers that comprises a dedicated, fast acceptance and publication track for high profile articles.
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