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Cerebral Ischemia–Reperfusion Injury: Unraveling the Mitophagy–Oxidative Stress Axis for Neuroprotective Strategies
Yanling Zhou, Baochun Luo, Tong Shang, Zengrong Wei, Wei Zou
International Journal of Molecular Sciences · 2026 · ▲ 4 citations
Deregulated nutrient-sensing
Mitochondrial dysfunction
Altered intercellular communication
Disabled macroautophagy
Review
Abstract
Cerebral ischemia-reperfusion (I/R) injury is a major pathological contributor to neurological deterioration following ischemic stroke (IS) and remains a critical barrier to effective neuroprotection. Accumulating evidence indicates that cerebral I/R injury is driven not by isolated stress responses but by coordinated and dynamic interactions among multiple cellular pathways. Among these, the bidirectional crosstalk between mitophagy and oxidative stress has emerged as a central regulatory axis. Moderate oxidative stress can function as an adaptive signal, activating protective mitophagy through key pathways such as AMPK/ULK1 signaling and cardiolipin externalization, thereby facilitating mitochondrial quality control and maintaining cellular homeostasis. Conversely, appropriately regulated mitophagy limits excessive reactive oxygen species (ROS) production by removing dysfunctional mitochondria, forming a negative feedback mechanism. However, dysregulation or excessive activation of either process disrupts this balance, leading to a self-amplifying cycle of mitochondrial dysfunction(definition) and oxidative damage that exacerbates neuronal injury. This review systematically summarizes the molecular mechanisms governing the oxidative stress-mitophagy crosstalk in cerebral I/R injury, highlighting key signaling nodes and regulatory pathways that determine protective versus detrimental outcomes. Furthermore, we discuss emerging therapeutic strategies aimed at precisely modulating this axis in a spatiotemporal- and intensity-dependent manner. By integrating mechanistic insights with translational perspectives, this review provides a conceptual framework for developing targeted neuroprotective interventions based on coordinated regulation of mitochondrial quality control and redox homeostasis.
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- 10.3390/ijms27052448
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- 2026-07-23 MST
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APA
Zhou, Y., Luo, B., Shang, T., Wei, Z., & Zou, W. (2026). Cerebral Ischemia–Reperfusion Injury: Unraveling the Mitophagy–Oxidative Stress Axis for Neuroprotective Strategies. <em>International Journal of Molecular Sciences</em>. https://doi.org/10.3390/ijms27052448
Vancouver
Zhou Y, Luo B, Shang T, Wei Z, Zou W. Cerebral Ischemia–Reperfusion Injury: Unraveling the Mitophagy–Oxidative Stress Axis for Neuroprotective Strategies. International Journal of Molecular Sciences. 2026. doi:10.3390/ijms27052448.
BibTeX
@article{yanling2026Cerebr,
title = {Cerebral Ischemia–Reperfusion Injury: Unraveling the Mitophagy–Oxidative Stress Axis for Neuroprotective Strategies},
author = {Yanling Zhou and Baochun Luo and Tong Shang and Zengrong Wei and Wei Zou},
journal = {International Journal of Molecular Sciences},
year = {2026},
doi = {10.3390/ijms27052448},
}
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