蛋白质稳态
生物
细胞生物学
线粒体
自噬
缺血
神经科学
细胞凋亡
内科学
遗传学
医学
作者
Garrett M. Fogo,Sarita Raghunayakula,Katlynn J. Emaus,Francisco J. Torres Torres,Gary Shangguan,Joseph M. Wider,Maik Hüttemann,Thomas H. Sanderson
出处
期刊:Autophagy
[Taylor & Francis]
日期:2025-02-27
标识
DOI:10.1080/15548627.2025.2472586
摘要
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.
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