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Protection of H9c2 Myocardial Cells from Oxidative Stress by Crocetin via PINK1/Parkin Pathway-Mediated Mitophagy
Published on: May 26, 2023
p27 protein protects metabolically stressed cardiomyocytes from apoptosis by promoting autophagy
Xuetao Sun1, Abdul Momen1, Jun Wu1
1From the Toronto General Research Institute.
Abstract:
p27(Kip1) (p27), a key regulator of cell division, has been implicated in autophagy of cancer cells. However, its role in autophagy, the evolutionarily conserved catabolic process that enables cells to remove unwanted proteins and damaged organelles, had not been examined in the heart. Here we report that ectopic delivery of a p27 fusion protein (TAT-p27) was sufficient to induce autophagy in neonatal rat ventricular cardiomyocytes in vitro, under basal conditions and after glucose deprivation. Conversely, lentivirus-delivered shRNA against p27 successfully reduced p27 levels and suppressed basal and glucose-deprived levels of autophagy in cardiomyocytes in vitro. Glucose deprivation mimics myocardial ischemia and induces apoptosis in cardiomyocytes. During glucose deprivation, TAT-p27 inhibited apoptosis, whereas down-regulation of p27 decreased survival of cardiomyocytes. However, inhibition of autophagy by pharmacological (3-methyladenine, chloroquine, or bafilomycin A1) or genetic approaches (siRNA-mediated knockdown of Atg5) sensitized cardiomyocytes to glucose deprivation-induced apoptosis, even in the presence of TAT-p27. TAT-p27 was also able to provoke greater levels of autophagy in resting and fasting cardiomyocytes in vivo. Further, TAT-p27 enhanced autophagy and repressed cardiomyocytes apoptosis, improved cardiac function, and reduced infarct size following myocardial infarction. Again, these effects were lost when cardiac autophagy in vivo was blocked by chloroquine. Taken together, these data show that p27 positively regulates cardiac autophagy in vitro and in vivo, at rest and after metabolic stress, and that TAT-p27 inhibits apoptosis by promoting autophagy in glucose-deprived cardiomyocytes in vitro and in post-myocardial infarction hearts in vivo.
Insights
p27 regulates autophagy in heart cells, protecting them from damage and promoting survival. This protein promotes cardiac autophagy, inhibiting apoptosis and improving heart function after injury.
Area of Science:
- Cardiovascular Biology
- Cellular Autophagy
- Molecular Regulation
Background:
- Autophagy is crucial for cellular homeostasis, removing damaged components.
- p27(Kip1) (p27) regulates cell division and is linked to cancer cell autophagy.
- The role of p27 in cardiac autophagy remains unexplored.
Purpose of the Study:
- To investigate the role of p27 in cardiac autophagy.
- To determine if p27 modulates cardiomyocyte survival and function under stress.
- To assess the therapeutic potential of p27 in myocardial infarction.
Main Methods:
- Ectopic delivery of TAT-p27 fusion protein to induce p27 expression.
- Lentivirus-mediated shRNA to downregulate p27 levels.
- Pharmacological and genetic inhibition of autophagy pathways (3-MA, CQ, BafA1, Atg5 siRNA).
- In vitro studies on neonatal rat ventricular cardiomyocytes.
- In vivo studies in a rat model of myocardial infarction.
Main Results:
- TAT-p27 induced autophagy in cardiomyocytes under basal and glucose-deprived conditions.
- p27 downregulation suppressed basal and stress-induced autophagy.
- TAT-p27 inhibited apoptosis during glucose deprivation, while p27 knockdown sensitized cells.
- Autophagy inhibition sensitized cardiomyocytes to apoptosis, even with TAT-p27.
- In vivo, TAT-p27 enhanced autophagy, reduced apoptosis, improved cardiac function, and decreased infarct size.
- Blocking autophagy in vivo abolished the protective effects of TAT-p27.
Conclusions:
- p27 positively regulates cardiac autophagy in vitro and in vivo.
- p27-induced autophagy protects cardiomyocytes from apoptosis during metabolic stress.
- TAT-p27 demonstrates therapeutic potential for heart protection and recovery post-myocardial infarction by promoting autophagy.
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