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Ascending Aortic Constriction in Rats for Creation of Pressure Overload Cardiac Hypertrophy Model
Published on: June 29, 2014
Dasatinib Attenuates Pressure Overload Induced Cardiac Fibrosis in a Murine Transverse Aortic Constriction Model
Sundaravadivel Balasubramanian1, Dorea L Pleasant1, Harinath Kasiganesan1
1Cardiology Division of the Department of Medicine, Gazes Cardiac Research Institute, 114 Doughty Street, Charleston, South Carolina, United States of America.
Abstract:
Reactive cardiac fibrosis resulting from chronic pressure overload (PO) compromises ventricular function and contributes to congestive heart failure. We explored whether nonreceptor tyrosine kinases (NTKs) play a key role in fibrosis by activating cardiac fibroblasts (CFb), and could potentially serve as a target to reduce PO-induced cardiac fibrosis. Our studies were carried out in PO mouse myocardium induced by transverse aortic constriction (TAC). Administration of a tyrosine kinase inhibitor, dasatinib, via an intraperitoneally implanted mini-osmotic pump at 0.44 mg/kg/day reduced PO-induced accumulation of extracellular matrix (ECM) proteins and improved left ventricular geometry and function. Furthermore, dasatinib treatment inhibited NTK activation (primarily Pyk2 and Fak) and reduced the level of FSP1 positive cells in the PO myocardium. In vitro studies using cultured mouse CFb showed that dasatinib treatment at 50 nM reduced: (i) extracellular accumulation of both collagen and fibronectin, (ii) both basal and PDGF-stimulated activation of Pyk2, (iii) nuclear accumulation of Ki67, SKP2 and histone-H2B and (iv) PDGF-stimulated CFb proliferation and migration. However, dasatinib did not affect cardiomyocyte morphologies in either the ventricular tissue after in vivo administration or in isolated cells after in vitro treatment. Mass spectrometric quantification of dasatinib in cultured cells indicated that the uptake of dasatinib by CFb was greater that that taken up by cardiomyocytes. Dasatinib treatment primarily suppressed PDGF but not insulin-stimulated signaling (Erk versus Akt activation) in both CFb and cardiomyocytes. These data indicate that dasatinib treatment at lower doses than that used in chemotherapy has the capacity to reduce hypertrophy-associated fibrosis and improve ventricular function.
Insights
Dasatinib, a tyrosine kinase inhibitor, reduces cardiac fibrosis and improves heart function in mice with pressure overload. It targets nonreceptor tyrosine kinases (NTKs) in cardiac fibroblasts, offering a potential therapeutic strategy for heart failure.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Cell Biology
Background:
- Chronic pressure overload (PO) leads to cardiac fibrosis, impairing ventricular function and causing heart failure.
- Nonreceptor tyrosine kinases (NTKs) are implicated in activating cardiac fibroblasts (CFb) and promoting fibrosis.
Purpose of the Study:
- To investigate the role of NTKs in PO-induced cardiac fibrosis.
- To evaluate dasatinib, a tyrosine kinase inhibitor, as a potential therapeutic target for reducing cardiac fibrosis.
Main Methods:
- Studies were conducted in PO mouse models induced by transverse aortic constriction (TAC).
- Dasatinib was administered via mini-osmotic pump.
- In vitro studies used cultured mouse CFb.
- Analysis included extracellular matrix protein accumulation, ventricular function, NTK activation, cell proliferation, and signaling pathways.
Main Results:
- Dasatinib treatment reduced PO-induced extracellular matrix accumulation and improved left ventricular geometry and function.
- Dasatinib inhibited NTK activation (Pyk2, Fak) and reduced FSP1 positive cells in PO myocardium.
- In vitro, dasatinib reduced collagen/fibronectin accumulation, Pyk2 activation, and CFb proliferation/migration, primarily suppressing PDGF-stimulated signaling.
Conclusions:
- Dasatinib effectively reduces cardiac fibrosis and improves ventricular function in a PO mouse model.
- Targeting NTKs with dasatinib presents a potential therapeutic strategy for mitigating hypertrophy-associated cardiac fibrosis and heart failure.
- Dasatinib demonstrates efficacy at lower doses than those used in chemotherapy, with specific effects on cardiac fibroblasts.

