Mitochondrial dynamics and quality control regulate proteostasis in neuronal ischemia-reperfusion.

IF 14.3
Autophagy Pub Date : 2025-07-01 Epub Date: 2025-03-16 DOI:10.1080/15548627.2025.2472586
Garrett M Fogo, Sarita Raghunayakula, Katlynn J Emaus, Francisco J Torres Torres, Gary Shangguan, Joseph M Wider, Maik Hüttemann, Thomas H Sanderson
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Abstract

Mitochondrial damage and dysfunction are hallmarks of neuronal injury during cerebral ischemia-reperfusion (I/R). Critical mitochondrial functions including energy production and cell signaling are perturbed during I/R, often exacerbating damage and contributing to secondary injury. The integrity of the mitochondrial proteome is essential for efficient function. Mitochondrial proteostasis is mediated by the cooperative forces of mitophagy and intramitochondrial proteolysis. The aim of this study was to elucidate the patterns of mitochondrial protein dynamics and their key regulators during an in vitro model of neuronal I/R injury. Utilizing the MitoTimer reporter, we quantified mitochondrial protein oxidation and turnover during I/R injury, highlighting a key point at 2 h reoxygenation for aged/oxidized protein turnover. This turnover was found to be mediated by both LONP1-dependent proteolysis and PRKN/parkin-dependent mitophagy. Additionally, the proteostatic response of neuronal mitochondria is influenced by both mitochondrial fusion and fission machinery. Our findings highlight the involvement of both mitophagy and intramitochondrial proteolysis in the response to I/R injury.Abbreviations: cKO: conditional knockout; CLPP: caseinolytic mitochondrial matrix peptidase proteolytic subunit; DIV: days in vitro; DNM1L/DRP1: dynamin 1 like; ETC: electron transport chain; hR: hours after reoxygenation; I/R: ischemia-reperfusion; LONP1: lon peptidase 1, mitochondrial; mtUPR: mitochondrial unfolded protein response; OGD: oxygen glucose deprivation; OGD/R: oxygen glucose deprivation and reoxygenation; OPA1: OPA1 mitochondrial dynamin like GTPase; PINK1: PTEN induced kinase 1; PRKN: parkin RBR E3 ubiquitin protein ligase; ROI: region of interest; WT: wild-type.

线粒体动力学和质量控制调节神经元缺血-再灌注过程中的蛋白质稳态。
线粒体损伤和功能障碍是脑缺血再灌注(I/R)期间神经元损伤的标志。在I/R过程中,包括能量产生和细胞信号传导在内的关键线粒体功能受到干扰,通常会加剧损伤并导致继发性损伤。线粒体蛋白质组的完整性对有效功能至关重要。线粒体蛋白稳态是由线粒体自噬和线粒体内蛋白水解的协同作用介导的。本研究的目的是阐明在体外神经元I/R损伤模型中线粒体蛋白动力学及其关键调节因子的模式。利用MitoTimer报告器,我们量化了I/R损伤期间线粒体蛋白的氧化和周转,强调了2小时再氧化时老化/氧化蛋白周转的关键点。发现这种转换是由lonp1依赖的蛋白质水解和PRKN/帕金森依赖的有丝分裂介导的。此外,神经元线粒体的蛋白抑制反应受到线粒体融合和裂变机制的影响。我们的研究结果强调了线粒体自噬和线粒体内蛋白水解在I/R损伤反应中的作用。
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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