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Published on: May 26, 2023
p53-TIGAR axis attenuates mitophagy to exacerbate cardiac damage after ischemia
Atsushi Hoshino1, Satoaki Matoba, Eri Iwai-Kanai
1Department of Cardiovascular Medicine, Kyoto Prefectural University School of Medicine, Kawaramachi-Hirokoji, Kamigyo-ku, Kyoto 602-8566, Japan.
Abstract:
Inhibition of tumor suppressor p53 is cardioprotective against ischemic injury and provides resistance to subsequent cardiac remodeling. We investigated p53-mediated expansion of ischemic damage with a focus on mitochondrial integrity in association with autophagy and apoptosis. p53(-/-) heart showed that autophagic flux was promoted under ischemia without a change in cardiac tissue ATP content. Electron micrographs revealed that ischemic border zone in p53(-/-) mice had 5-fold greater numbers of autophagic vacuoles containing mitochondria, indicating the occurrence of mitophagy, with an apparent reduction of abnormal mitochondria compared with those in WT mice. Analysis of autophagic mediators acting downstream of p53 revealed that TIGAR (TP53-induced glycolysis and apoptosis regulator) was exclusively up-regulated in ischemic myocardium. TIGAR(-/-) mice exhibited the promotion of mitophagy followed by decrease of abnormal mitochondria and resistance to ischemic injury, consistent with the phenotype of p53(-/-) mice. In p53(-/-) and TIGAR(-/-) ischemic myocardium, ROS production was elevated and followed by Bnip3 activation which is an initiator of mitophagy. Furthermore, the activation of Bnip3 and mitophagy due to p53/TIGAR inhibition were reversed with antioxidant N-acetyl-cysteine, indicating that this adaptive response requires ROS signal. Inhibition of mitophagy using chloroquine in p53(-/-) or TIGAR(-/-) mice exacerbated accumulation of damaged mitochondria to the level of wild-type mice and attenuated cardioprotective action. These findings indicate that p53/TIGAR-mediated inhibition of myocyte mitophagy is responsible for impairment of mitochondrial integrity and subsequent apoptosis, the process of which is closely involved in p53-mediated ventricular remodeling after myocardial infarction.
Insights
Inhibition of tumor suppressor p53 and TIGAR promotes mitophagy, protecting the heart from ischemic injury by clearing damaged mitochondria and preventing apoptosis. This mechanism is crucial for reducing cardiac remodeling after myocardial infarction.
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Cellular Stress Response
Background:
- Tumor suppressor p53 inhibition offers cardioprotection against ischemic injury and cardiac remodeling.
- The role of p53 in ischemic damage, mitochondrial integrity, autophagy, and apoptosis requires further investigation.
Purpose of the Study:
- To investigate p53-mediated expansion of ischemic damage, focusing on mitochondrial integrity, autophagy, and apoptosis.
- To elucidate the role of TIGAR (TP53-induced glycolysis and apoptosis regulator) in p53-mediated cardioprotection.
Main Methods:
- Comparative analysis of wild-type (WT) and p53 knockout (p53(-/-)) mice under ischemic conditions.
- Electron microscopy to assess mitochondrial morphology and autophagic vacuoles.
- Analysis of autophagic mediators, including TIGAR, reactive oxygen species (ROS), and Bnip3.
- Pharmacological inhibition of mitophagy using chloroquine and assessment of ROS signaling with N-acetyl-cysteine.
Main Results:
- p53(-/-) hearts showed promoted autophagic flux and increased mitophagy with reduced abnormal mitochondria under ischemia.
- TIGAR was upregulated in ischemic myocardium; TIGAR(-/-) mice exhibited enhanced mitophagy and resistance to ischemic injury.
- ROS production and Bnip3 activation initiated mitophagy in p53(-/-) and TIGAR(-/-) hearts, a process reversible with antioxidants.
- Mitophagy inhibition exacerbated mitochondrial damage and attenuated cardioprotection in p53(-/-) and TIGAR(-/-) mice.
Conclusions:
- p53/TIGAR-mediated inhibition of myocyte mitophagy impairs mitochondrial integrity and promotes apoptosis.
- This impairment contributes to p53-mediated ventricular remodeling following myocardial infarction.
- Promoting mitophagy represents a potential therapeutic strategy for cardioprotection against ischemic injury.
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