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Updated: Mar 30, 2026

Molecular Analysis of Endothelial-mesenchymal Transition Induced by Transforming Growth Factor-β Signaling
Published on: August 3, 2018
Cellular and molecular mechanisms of HGF/Met in the cardiovascular system
Simona Gallo1, Valentina Sala2, Stefano Gatti1
1Department of Oncology, University of Turin, Turin, Italy.
Insights
The HGF/Met pathway protects the heart and blood vessels by promoting cell survival, regeneration, and reducing inflammation and fibrosis. This pathway holds promise for treating cardiovascular diseases like myocardial infarction and peripheral artery disease.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Regenerative Medicine
Background:
- The hepatocyte growth factor (HGF)/mesenchymal-epithelial transition factor (Met) pathway is crucial for cardiovascular remodeling after injury.
- HGF/Met signaling plays a vital role in protecting the heart from various insults, including ischemia and cardiotoxicity.
Purpose of the Study:
- To review the cellular and molecular mechanisms of HGF/Met in the heart and blood vessels.
- To highlight the therapeutic potential of HGF/Met in cardiovascular diseases.
Main Methods:
- This review synthesizes findings from in vivo studies and molecular analyses.
- Mechanisms explored include cell signaling cascades (PI3K/Akt, MAPK, mTOR), cell proliferation, migration, and inflammatory responses.
Main Results:
- HGF/Met activation confers anti-apoptotic and pro-survival effects on cardiomyocytes via PI3K/Akt and MAPK pathways.
- HGF/Met regulates autophagy in cardiomyocytes through the mTOR pathway.
- HGF/Met promotes endothelial cell proliferation and migration, antagonizes pro-fibrotic factors in fibroblasts, and modulates immune cell responses.
Conclusions:
- The HGF/Met axis exhibits significant protective effects against myocardial infarction and endothelial dysfunction.
- Its pro-angiogenic, anti-inflammatory, and anti-fibrotic actions are key to its repair functions in the cardiovascular system.
- HGF or HGF mimetics represent a promising therapeutic strategy for coronary and peripheral artery diseases.
Abstract:
Met tyrosine kinase receptor, also known as c-Met, is the HGF (hepatocyte growth factor) receptor. The HGF/Met pathway has a prominent role in cardiovascular remodelling after tissue injury. The present review provides a synopsis of the cellular and molecular mechanisms underlying the effects of HGF/Met in the heart and blood vessels. In vivo, HGF/Met function is particularly important for the protection of the heart in response to both acute and chronic insults, including ischaemic injury and doxorubicin-induced cardiotoxicity. Accordingly, conditional deletion of Met in cardiomyocytes results in impaired organ defence against oxidative stress. After ischaemic injury, activation of Met provides strong anti-apoptotic stimuli for cardiomyocytes through PI3K (phosphoinositide 3-kinase)/Akt and MAPK (mitogen-activated protein kinase) cascades. Recently, we found that HGF/Met is also important for autophagy regulation in cardiomyocytes via the mTOR (mammalian target of rapamycin) pathway. HGF/Met induces proliferation and migration of endothelial cells through Rac1 (Ras-related C3 botulinum toxin substrate 1) activation. In fibroblasts, HGF/Met antagonizes the actions of TGFβ1 (transforming growth factor β1) and AngII (angiotensin II), thus preventing fibrosis. Moreover, HGF/Met influences the inflammatory response of macrophages and the immune response of dendritic cells, indicating its protective function against atherosclerotic and autoimmune diseases. The HGF/Met axis also plays an important role in regulating self-renewal and myocardial regeneration through the enhancement of cardiac progenitor cells. HGF/Met has beneficial effects against myocardial infarction and endothelial dysfunction: the cellular and molecular mechanisms underlying repair function in the heart and blood vessels are common and include pro-angiogenic, anti-inflammatory and anti-fibrotic actions. Thus administration of HGF or HGF mimetics may represent a promising therapeutic agent for the treatment of both coronary and peripheral artery disease.
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