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Published on: June 7, 2016
Endothelial FOSL1 drives angiotensin II-induced myocardial injury via AT1R-upregulated MYH9
Wen-Jing Zhao1,2, Yi Qian1, Yi-Feng Zhang1
1Department of Pharmacology, School of Medicine and School of Pharmacy Nantong University, Nantong, 226001, China.
Insights
Angiotensin II (Ang II) triggers vascular remodeling in heart disease. Targeting the FOS like-1 (FOSL1)/Myosin heavy chain 9 (MYH9) pathway in endothelial cells improves cardiac function and reduces damage after myocardial infarction.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Endothelial Cell Biology
Background:
- Vascular remodeling is a key pathological process in myocardial hypertrophy, myocardial infarction, and heart failure.
- The precise molecular mechanisms underlying angiotensin II (Ang II)-induced vascular remodeling post-myocardial infarction reperfusion remain incompletely understood.
Purpose of the Study:
- To investigate the role of Ang II in cardiac vascular remodeling.
- To elucidate the molecular pathways involved in Ang II-induced endothelial dysfunction, focusing on FOS like-1 (FOSL1) and Myosin heavy chain 9 (MYH9).
Main Methods:
- Single-cell sequencing to identify pathways affected by Ang II.
- In vitro studies using human umbilical vein endothelial cells (HUVECs) to assess the effects of telmisartan, staurosporine, and MYH9 silencing.
- Dual luciferase reporter and chromatin immunoprecipitation assays to determine FOSL1-MYH9 interaction.
- In vivo studies using adeno-associated virus (AAV)-mediated knockdown of FOSL1 in mouse models of Ang II infusion and myocardial ischemia-reperfusion.
Main Results:
- Ang II induced cytoskeletal pathway enrichment and endothelial dysfunction, mediated by FOSL1.
- FOSL1 directly activated MYH9 transcription, leading to vascular dysfunction, including inhibited angiogenesis and increased hyperpermeability.
- Endothelial-specific FOSL1 knockdown in mice improved cardiac function, reduced fibrosis and vascular remodeling markers, and preserved cardiac function post-ischemia-reperfusion.
Conclusions:
- The FOSL1/MYH9 axis plays a critical role in mediating Ang II-induced vascular remodeling.
- FOSL1 is identified as a potential therapeutic target for endothelial cell injury in myocardial ischemia-reperfusion.
- Targeting FOSL1 offers a promising strategy to mitigate Ang II-driven cardiovascular pathologies.
Abstract:
Vascular remodeling represents a pathological basis for myocardial pathologies, including myocardial hypertrophy and myocardial infarction, which can ultimately lead to heart failure. The molecular mechanism of angiotensin II (Ang II)-induced vascular remodeling following myocardial infarction reperfusion is complex and not yet fully understood. In this study, we examined the effect of Ang II infusion on cardiac vascular remodeling in mice. Single-cell sequencing showed Ang II induced cytoskeletal pathway enrichment and that FOS like-1 (FOSL1) affected mouse cardiac endothelial dysfunction by pseudotime analysis. Myosin heavy chain 9 (MYH9) was predominantly expressed in primary cardiac endothelial cells. The Ang II type I receptor blocker telmisartan and the protein kinase C inhibitor staurosporine suppressed Ang II-induced upregulation of MYH9 and FOSL1 phosphorylation in human umbilical vein endothelial cells. Silencing MYH9 abolished Ang II-mediated inhibition of angiogenesis in human umbilical vein endothelial cells, and attenuated AngII-induced vascular hyperpermeability. We found that FOSL1 directly bound to the MYH9 promoter and thus activated transcription of MYH9 by the dual luciferase reporter and chromatin immunoprecipitation assays, leading to vascular dysfunction. In vivo, 6 weeks after injecting adeno-associated virus-ENT carrying the TEK tyrosine kinase (tie) promoter-driven short hairpin RNA for silencing FOSL1 (AAV-tie-shFOSL1), cardiac function represented by the ejection fraction and fractional shortening was improved, myocardial fibrosis was decreased, protein levels of phosphorylated FOSL1, MYH9, and collagen type I alpha were reduced, and cardiac vascular density was recovered in mice with endothelial Fosl1-specific knockdown in Ang II-infused mice. In ischemia-reperfusion mice, AAV-shFosl1 mice had a reduced infarct size and preserved cardiac function compared with control AAV mice. Our findings suggest a critical role of the FOSL1/MYH9 axis in hindering Ang II-induced vascular remodeling, and we identified FOSL1 as a potential therapeutic target in endothelial cell injuries induced by myocardial ischemia-reperfusion.
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