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Updated: May 15, 2026

Transverse Aortic Constriction in Mice
Published on: April 21, 2010
SRC-2 coactivator deficiency decreases functional reserve in response to pressure overload of mouse heart
Erin L Reineke1, Brian York, Erin Stashi
1Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, Texas, United States of America.
Abstract:
A major component of the cardiac stress response is the simultaneous activation of several gene regulatory networks. Interestingly, the transcriptional regulator steroid receptor coactivator-2, SRC-2 is often decreased during cardiac failure in humans. We postulated that SRC-2 suppression plays a mechanistic role in the stress response and that SRC-2 activity is an important regulator of the adult heart gene expression profile. Genome-wide microarray analysis, confirmed with targeted gene expression analyses revealed that genetic ablation of SRC-2 activates the "fetal gene program" in adult mice as manifested by shifts in expression of a) metabolic and b) sarcomeric genes, as well as associated modulating transcription factors. While these gene expression changes were not accompanied by changes in left ventricular weight or cardiac function, imposition of transverse aortic constriction (TAC) predisposed SRC-2 knockout (KO) mice to stress-induced cardiac dysfunction. In addition, SRC-2 KO mice lacked the normal ventricular hypertrophic response as indicated through heart weight, left ventricular wall thickness, and blunted molecular signaling known to activate hypertrophy. Our results indicate that SRC-2 is involved in maintenance of the steady-state adult heart transcriptional profile, with its ablation inducing transcriptional changes that mimic a stressed heart. These results further suggest that SRC-2 deletion interferes with the timing and integration needed to respond efficiently to stress through disruption of metabolic and sarcomeric gene expression and hypertrophic signaling, the three key stress responsive pathways.
Insights
Steroid receptor coactivator-2 (SRC-2) loss in adult mice activates a fetal gene program, mimicking a stressed heart. SRC-2 deficiency impairs the heart's ability to respond to stress, leading to cardiac dysfunction.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Gene Regulation
Background:
- Cardiac stress response involves complex gene regulatory networks.
- Steroid receptor coactivator-2 (SRC-2) levels decrease in human cardiac failure.
- SRC-2's role in adult heart gene expression and stress response is unclear.
Purpose of the Study:
- To investigate the mechanistic role of SRC-2 suppression in cardiac stress response.
- To determine if SRC-2 regulates the adult heart gene expression profile.
- To assess SRC-2's impact on cardiac adaptation to stress.
Main Methods:
- Genome-wide microarray analysis in SRC-2 knockout (KO) mice.
- Targeted gene expression analyses.
- Transverse aortic constriction (TAC) to induce cardiac stress.
- Assessment of cardiac function, heart weight, and ventricular wall thickness.
Main Results:
- SRC-2 ablation activated the fetal gene program, altering metabolic and sarcomeric gene expression.
- SRC-2 KO mice showed impaired hypertrophic response to stress (TAC).
- SRC-2 deficiency predisposed mice to stress-induced cardiac dysfunction.
Conclusions:
- SRC-2 is crucial for maintaining the adult heart's transcriptional profile.
- SRC-2 deficiency induces stress-like transcriptional changes and impairs stress adaptation.
- SRC-2 is essential for integrating metabolic, sarcomeric, and hypertrophic signaling pathways during cardiac stress.
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