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Published on: January 7, 2019
Transient Receptor Potential Canonical 3 and Nuclear Factor of Activated T Cells C3 Signaling Pathway Critically
Youakim Saliba1, Victor Jebara2, Joelle Hajal1
11 Laboratoire de Recherche en Physiologie et Physiopathologie, Pôle Technologie Santé, Faculté de Médecine, Université Saint Joseph, Beirut, Lebanon.
Aims:
Cardiac fibroblasts (CFs) are emerging as major contributors to myocardial fibrosis (MF), a final common pathway of many etiologies of heart disease. Here, we studied the functional relevance of transient receptor potential canonical 3 (TRPC3) channels and nuclear factor of activated T cells c3 (NFATc3) signaling in rodent and human ventricular CFs, and whether their modulation would limit MF.
Results:
A positive feedback loop between TRPC3 and NFATc3 drove a rat ventricular CF fibrotic phenotype. In these cells, polyphenols (extract of grape pomace polyphenol [P.E.]) decreased basal and angiotensin II-mediated Ca2+ entries through a direct modulation of TRPC3 channels and subsequently NFATc3 signaling, abrogating myofibroblast differentiation, fibrosis and inflammation, as well as an oxidative stress-associated phenotype. N(ω)-nitro-l-arginine methyl ester (l-NAME) hypertensive rats developed coronary perivascular, sub-epicardial, and interstitial fibrosis with induction of embryonic epicardial progenitor transcription factors in activated CFs. P.E. treatment reduced ventricular CF activation by modulating the TRPC3-NFATc3 pathway, and it ameliorated echocardiographic parameters, cardiac stress markers, and MF in l-NAME hypertensive rats independently of blood pressure regulation. Further, genetic deletion (TRPC3-/-) and pharmacological channel blockade with N-[4-[3,5-Bis(trifluoromethyl)-1H-pyrazol-1-yl]phenyl]-4-methyl-benzenesulfonamide (Pyr10) blunted ventricular CF activation and MF in l-NAME hypertensive mice. Finally, TRPC3 was present in human ventricular CFs and upregulated in MF, whereas pharmacological modulation of TRPC3-NFATc3 decreased proliferation and collagen secretion. Innovation and Conclusion: We demonstrate that TRPC3-NFATc3 signaling is modulated by P.E. and critically regulates ventricular CF phenotype and MF. These findings strongly argue for P.E., through TRPC3 targeting, as potential and interesting therapeutics for MF management.
Insights
Grape pomace polyphenols target TRPC3-NFATc3 signaling to inhibit cardiac fibroblast activation and reduce myocardial fibrosis. This study highlights polyphenols as a potential therapeutic strategy for managing heart disease-related fibrosis.
Area of Science:
- Cardiovascular Research
- Cellular Biology
- Pharmacology
Background:
- Cardiac fibroblasts (CFs) are key drivers of myocardial fibrosis (MF), a common outcome in heart disease.
- The TRPC3 channel and NFATc3 signaling pathway plays a critical role in CF activation and MF development.
Purpose of the Study:
- To investigate the role of TRPC3 and NFATc3 signaling in cardiac fibroblast-mediated myocardial fibrosis.
- To evaluate the therapeutic potential of grape pomace polyphenol extract (P.E.) in modulating this pathway and limiting MF.
Main Methods:
- Studied rodent and human ventricular CFs, utilizing genetic deletion (TRPC3-/-) and pharmacological blockade (Pyr10) of TRPC3 channels.
- Administered P.E. to l-NAME hypertensive rats and mice to assess its effects on cardiac fibrosis, CF activation, and echocardiographic parameters.
- Investigated the impact of P.E. on Ca2+ entry, myofibroblast differentiation, collagen secretion, and oxidative stress in CFs.
Main Results:
- A positive feedback loop between TRPC3 and NFATc3 was identified, driving the fibrotic phenotype in CFs.
- P.E. treatment reduced Ca2+ entry, abrogated myofibroblast differentiation, fibrosis, inflammation, and oxidative stress in CFs.
- P.E. ameliorated cardiac fibrosis and improved cardiac function in hypertensive rats and mice, independent of blood pressure, by modulating the TRPC3-NFATc3 pathway.
Conclusions:
- TRPC3-NFATc3 signaling is a critical regulator of cardiac fibroblast phenotype and myocardial fibrosis.
- Grape pomace polyphenols, by targeting TRPC3, show significant therapeutic potential for managing myocardial fibrosis.
- Modulating TRPC3-NFATc3 signaling offers a promising avenue for novel therapeutic interventions in heart disease.
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