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Updated: Apr 17, 2026

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Published on: May 28, 2010
Altered focal adhesion regulation correlates with cardiomyopathy in mice expressing constitutively active rac1
M A Sussman1, S Welch, A Walker
1The Children's Hospital and Research Foundation, Division of Molecular Cardiovascular Biology, Cincinnati, Ohio 45229, USA. sussman@heart.chmcc.org
Abstract:
The ras family of small GTP-binding proteins exerts powerful effects upon cell structure and function. One member of this family, rac, induces actin cytoskeletal reorganization in nonmuscle cells and hypertrophic changes in cultured cardiomyocytes. To examine the effect of rac1 activation upon cardiac structure and function, transgenic mice were created that express constitutively activated rac1 specifically in the myocardium. Transgenic rac1 protein was expressed at levels comparable to endogenous rac levels, with activation of the rac1 signaling pathway resulting in two distinct cardiomyopathic phenotypes: a lethal dilated phenotype associated with neonatal activation of the transgene and a transient cardiac hypertrophy seen among juvenile mice that resolved with age. Neither phenotype showed myofibril disarray and hypertrophic hearts were hypercontractilein working heart analyses. The rac1 target p21-activated kinase translocated from a cytosolic to a cytoskeletal distribution, suggesting that rac1 activation was inducing focal adhesion reorganization. Corroborating results showed altered localizations of src in dilated cardiomyopathy and paxillin in both cardiomyopathic phenotypes. This study, the first examination of rac1-mediated cardiac effects in vivo, demonstrates that dilation and hypertrophy can share a common molecular origin and presents evidence that both timing and concurrent signaling from multiple pathways can influence cardiac remodeling.
Insights
Rac1 protein activation in the heart causes distinct cardiomyopathies, including dilated and hypertrophic forms. This study reveals shared molecular origins for these cardiac conditions in vivo.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cell Signaling
Background:
- The ras family, including rac GTP-binding proteins, significantly impacts cellular structure and function.
- Rac proteins are known to induce actin cytoskeletal reorganization and cardiac hypertrophy in cell cultures.
Purpose of the Study:
- To investigate the in vivo effects of activated rac1 on cardiac structure and function.
- To elucidate the molecular mechanisms underlying rac1-induced cardiac remodeling.
Main Methods:
- Generation of transgenic mice expressing constitutively activated rac1 specifically in the myocardium.
- Analysis of cardiac phenotypes, protein localization (p21-activated kinase, src, paxillin), and cardiac function.
Main Results:
- Neonatal rac1 activation led to a lethal dilated cardiomyopathy.
- Juvenile rac1 activation resulted in transient cardiac hypertrophy that resolved with age.
- Both phenotypes involved cytoskeletal changes and altered focal adhesion components, without myofibril disarray.
Conclusions:
- Rac1 activation in the myocardium can induce distinct cardiomyopathic phenotypes, demonstrating a shared molecular origin for dilation and hypertrophy.
- Cardiac remodeling is influenced by the timing of rac1 signaling and interactions with other pathways.
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