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Published on: March 15, 2024
Adaptor protein HIP-55-mediated signalosome protects against ferroptosis in myocardial infarction
Yunqi Jiang1, Yuhui Qiao1, Dan He1
1Department of Cardiology and Institute of Vascular Medicine, Peking University Third Hospital; Beijing Key Laboratory of Cardiovascular Receptors Research; Key Laboratory of Cardiovascular Molecular Biology and Regulatory Peptides, Ministry of Health; Key Laboratory of Molecular Cardiovascular Sciences, Ministry of Education, Beijing, 100191, China.
Insights
HIP-55 protein integrates cell survival and death pathways, mitigating ferroptosis and cardiac damage after myocardial infarction (MI). This discovery offers a new therapeutic target for heart injury.
Area of Science:
- Cardiovascular Biology
- Cell Death Mechanisms
- Molecular Cardiology
Background:
- Ischemic heart disease and myocardial infarction (MI) cause significant cardiac damage.
- Ferroptosis, a form of regulated cell death, is increasingly recognized as a key contributor to cardiomyocyte death post-MI.
- The integration of ferroptosis into classical cell survival and death pathways remains poorly understood.
Purpose of the Study:
- To investigate the role of the adaptor protein HIP-55 in regulating ferroptosis and cardiac injury following MI.
- To elucidate how HIP-55 integrates ferroptosis into the AKT (survival) and MAP4K1 (death) signaling pathways.
Main Methods:
- Utilized genetic manipulation (deletion and overexpression) of HIP-55 in cardiac models.
- Investigated the phosphorylation of HIP-55 by AKT and its interaction with MAP4K1.
- Assessed ferroptosis and cardiac injury in vivo and in vitro using wild-type and mutant HIP-55.
Main Results:
- HIP-55 expression is upregulated following MI.
- HIP-55 deficiency exacerbates ferroptosis and cardiac injury, while its overexpression confers protection.
- HIP-55 acts as an AKT substrate, with phosphorylation at S269/T291 sites mediating the inhibition of the MAP4K1/GPX4 ferroptosis pathway.
Conclusions:
- HIP-55 serves as a crucial hub integrating AKT and MAP4K1 pathways to regulate ferroptosis in myocardial infarction.
- HIP-55 phosphorylation by AKT is essential for its protective role against ferroptosis and cardiac injury.
- HIP-55 represents a potential therapeutic target for mitigating myocardial damage in ischemic heart disease.
Abstract:
Ischemic heart disease is a leading cause of death worldwide. Myocardial infarction (MI) results in cardiac damage due to cell death and insufficient cardiomyocyte self-renewal. Ferroptosis, a novel type of cell death, has recently been shown as a key cause of cardiomyocyte death after MI. However, the complicated regulation mechanisms involved in ferroptosis, especially how ferroptosis is integrated into classical cell survival/death pathways, are still unclear. Here, we discovered that HIP-55, a novel adaptor protein, acts as a hub protein for the integration of the ferroptosis mechanism into the classical AKT cell survival and MAP4K1 cell death pathways for MI injury. The expression of HIP-55 is induced in MI. Genetic deletion of HIP-55 increased cardiomyocyte ferroptosis and MI injury, whereas cardiac-specific overexpression of HIP-55 significantly alleviated cardiomyocyte ferroptosis and MI injury. Mechanistically, HIP-55 was identified as a new AKT substrate. AKT phosphorylates HIP-55 at S269/T291 sites and further HIP-55 directs AKT signaling to negatively regulate the MAP4K1 pathway against MI injury in a site-specific manner. S269A/T291A-mutated HIP-55 (HIP-55AA), which is defective in AKT phosphorylation and significantly decreases the interaction between HIP-55 and MAP4K1, failed to inhibit the MAP4K1/GPX4 ferroptosis pathway. In line with this mechanism, cardiac-specific overexpression of HIP-55WT mice, but not cardiac-specific overexpression of HIP-55AA mice, protected cardiomyocytes against MI-induced ferroptosis and cardiac injury in vivo. These findings suggest that HIP-55 rewired the classical AKT (cell survival) and MAPK (cell death) pathways into ferroptosis mechanism in MI injury. HIP-55 may be a new therapeutic target for myocardial damage.
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