Spironolactone Inhibits Cardiomyocyte Hypertrophy by Regulating the Ca2+/Calcineurin/p-NFATc3 Pathway
Xin Wang1, Wenting Zhang2, Jingtao Na1
1Department of Cardiovascular Medicine, The Third Affiliated Hospital of Qiqihar Medical University, Qiqihar 161000, China.
Abstract:
This study aimed to investigate the protective effect and molecular mechanism of spironolactone in isoproterenol-induced cardiomyocyte hypertrophy. In this study, primary cardiomyocytes were extracted from the heart of neonatal rats. After stable culture, they were processed with isoproterenol alone or isoproterenol (10 μM) combined with different doses (low dose of 10 μM and high dose of 50 μM), and the cellular activity was determined by MTT experiment. The volume of cells was measured with an inverted microscope and CIAS-1000 cell image analysis system. The mRNA expression levels of ANP and BNP in cells were explored by RT-qPCR. The levels of ANP and BNP proteins and NFATc3 phosphorylation in the nucleus were detected by western blot. The extracellular Ca2+ concentration and CaN activity were measured by colorimetry with the kit. Isoproterenol significantly enlarged the volume of cardiomyocytes (p < 0.001), upregulated mRNA and expression levels of ANP and BNP proteins (p < 0.001), increased extracellular Ca2+ concentration and CaN activity (p < 0.001), and upregulated NFATc3 phosphorylation in the nucleus (p < 0.001). The volume of cells treated with isoproterenol combined with different doses of spironolactone significantly decreased compared with those treated with isoproterenol alone (p < 0.001). mRNA and expression levels of ANP and BNP proteins downregulated significantly (p < 0.001). The extracellular Ca2+ (p < 0.01) concentration and CaN activity (p < 0.001) decreased significantly, and NFATc3 phosphorylation in the nucleus downregulated significantly (p < 0.001). There was no significant difference in cell volume (p=0.999), ANP and BNP mRNA (p=0.695), expression levels of proteins, CaN activity (0.154), and NFATc3 phosphorylation in the nucleus between the cells treated with isoproterenol combined with high-dose spironolactone and those in the control group. In conclusion, spironolactone can reverse isoproterenol-induced cardiomyocyte hypertrophy by inhibiting the Ca2+/CaN/NFATc3 pathway.
Insights
Spironolactone effectively reverses isoproterenol-induced cardiomyocyte hypertrophy by inhibiting the calcium/calmodulin-dependent protein kinase pathway. This study demonstrates spironolactone
Area of Science:
- Cardiovascular Research
- Molecular Pharmacology
- Cell Biology
Background:
- Isoproterenol induces cardiomyocyte hypertrophy, a key factor in heart failure.
- Understanding the molecular mechanisms of hypertrophy is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the protective effects of spironolactone against isoproterenol-induced cardiomyocyte hypertrophy.
- To elucidate the molecular mechanism underlying spironolactone's action, focusing on the Ca2+/CaN/NFATc3 pathway.
Main Methods:
- Primary neonatal rat cardiomyocytes were cultured and treated with isoproterenol alone or in combination with varying doses of spironolactone.
- Cellular activity (MTT assay), cell volume (microscopy), gene and protein expression (RT-qPCR, Western blot), and intracellular signaling (Ca2+ concentration, CaN activity, NFATc3 phosphorylation) were assessed.
Main Results:
- Isoproterenol significantly increased cardiomyocyte size, ANP/BNP expression, Ca2+ concentration, CaN activity, and NFATc3 phosphorylation.
- Spironolactone treatment dose-dependently reversed these effects, reducing hypertrophy markers and inhibiting the Ca2+/CaN/NFATc3 pathway.
- High-dose spironolactone normalized these parameters to levels comparable to the control group.
Conclusions:
- Spironolactone exhibits significant protective effects against isoproterenol-induced cardiomyocyte hypertrophy.
- The mechanism involves the inhibition of the Ca2+/CaN/NFATc3 signaling pathway.
- Spironolactone holds potential as a therapeutic agent for conditions involving cardiomyocyte hypertrophy.
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