SerpinA3N抑制线粒体复合体I活性预防缺血性脑卒中后神经元铁下垂

IF 4.6 2区 医学 Q1 NEUROSCIENCES
Xiansheng Liu , Gan Li , Yunlu Guo , Ruqi Li , Shilin Yi , Shenghao Ding , Jieqing Wan
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引用次数: 0

摘要

丝氨酸蛋白酶抑制剂SerpinA3N在程序性细胞死亡调控中发挥着新的作用,但其在神经元铁凋亡中的细胞内功能仍未被探索。通过对大脑中动脉闭塞(MCAO)小鼠模型神经元的多组学整合分析,研究人员发现,与宽型小鼠相比,serpina3n缺陷小鼠表现出明显失调的铁死亡信号网络,其特征是线粒体脂质过氧化扩增和氧化还原稳态崩溃。在HT-22细胞中,线粒体复合体I的催化核心亚基Ndufs3第90位的精氨酸突变破坏了Ndufs3与SerpinA3N的结合,并增强了氧糖剥夺/再灌注(OGD/R)后HT-22细胞的铁凋亡。此外,宽型小鼠的神经元特异性Isl1过表达或腹腔注射锌可显著上调MCAO后神经元中SerpinA3N的表达。我们进一步发现,神经元中Isl1的过表达和锌处理都可以减少梗死面积,改善卒中后感觉运动恢复。这些发现共同表明SerpinA3N是一个关键的线粒体氧化还原调节因子,并揭示了锌- isl1信号作为一个有希望的神经保护靶点。这些发现不仅确定了SerpinA3N在铁下垂中的新作用,而且表明锌离子可能是开发潜在治疗方法的有价值的候选物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

SerpinA3N inhibits mitochondrial complex I activity to prevent neuron ferroptosis following cerebral ischemic stroke

SerpinA3N inhibits mitochondrial complex I activity to prevent neuron ferroptosis following cerebral ischemic stroke
SerpinA3N, a serine protease inhibitor, plays emerging roles in programmed cell death regulation, yet its intracellular function in neuronal ferroptosis remains unexplored. Using the multi-omic integrative analyses of the neurons from middle cerebral artery occlusion (MCAO) challenged mouse model, we found that Serpina3n-deficient mice exhibited significantly dysregulated ferroptosis signaling networks characterized by mitochondrial lipid peroxidation amplification and redox homeostasis collapse as compared to wide type mice. An arginine mutation at position 90 of Ndufs3, the catalytic core subunit of mitochondrial complex I, in HT-22 cells impaired the binding of Ndufs3 with SerpinA3N and potentiated ferroptosis of HT-22 cells following oxygen glucose deprivation/reperfusion (OGD/R). Furthermore, neuron-specific Isl1 overexpression in wide type mice or intraperitoneal injected zinc robustly upregulated the expression of SerpinA3N in neurons following MCAO. We further found that both the overexpression of Isl1 in neurons and zinc treatment could reduce infarct volume, and improve sensorimotor recovery post-stroke. These findings collectively suggest SerpinA3N as a key mitochondrial redox regulator and reveals zinc-Isl1 signaling as a promising neuroprotective target. These findings not only identified a novel role for SerpinA3N in ferroptosis but also indicated that zinc ion may be a valuable candidate for the development of a potential therapeutic approach.
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来源期刊
Experimental Neurology
Experimental Neurology 医学-神经科学
CiteScore
10.10
自引率
3.80%
发文量
258
审稿时长
42 days
期刊介绍: Experimental Neurology, a Journal of Neuroscience Research, publishes original research in neuroscience with a particular emphasis on novel findings in neural development, regeneration, plasticity and transplantation. The journal has focused on research concerning basic mechanisms underlying neurological disorders.
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