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Published on: August 8, 2022
The role of E2F1 in the development of hypertrophic cardiomyopathy
Julie A Wolfram1, Anna Liner, Sandy L Richardson
1Departments of Pathology and 2Medicine, Case Western Reserve University, Cleveland, Ohio, USA.
Abstract:
The overexpression of the transcription factor, E2F1, induces hypertrophy and apoptosis with cell cycle re-entry in cardiomyocytes in vitro and in vivo, suggesting that targeting E2F1 may have therapeutic potential. Accordingly, we tested the hypothesis that blocking the E2F1-mediated signal transduction pathway prevents cardiac hypertrophy by treating E2F1 knockout mice (E2F1-/-) with either isoproterenol (ISO) or Angiotensin II (ANG). Echocardi-ography was used to measure left ventricular mass index and myocardial performance index, a measure of combined systolic and diastolic left ventricular function. In control mice (E2F1+/+) both ISO and ANG treatments induced cardiac hypertrophy, and impaired ventricular function in ANG treated mice. In contrast to previously published work, E2F1-/- mice also demonstrated a similar pattern of cardiac hypertrophy and function after either treatment. Atrial natriuretic peptide, a molecular marker of hypertrophy and necropsy-determined body weight-normalized left ventricle mass were similarly increased in ISO and ANG treated E2F1+/+ and E2F-/- mice, supporting the echocardiographic data. These data indicate that E2F1 is not necessary for the development of cardiac hypertrophy although studies using an overexpression approach suggest a causal role of E2F1. The reason for this discrepancy is unclear, although it is possible that other E2F-family members (e.g., E2F2) may play a compensatory role. In conclusion, our data demonstrate that cardiac hypertrophy can be induced in an E2F1-independent fashion and suggest that in contrast to previous reports, targeting E2F1 may not be a good therapeutic approach.
Insights
Blocking the E2F1 pathway does not prevent cardiac hypertrophy in mice. These findings suggest E2F1 may not be a viable therapeutic target for treating heart conditions like hypertrophy.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cell Cycle Regulation
Background:
- Overexpression of transcription factor E2F1 induces cardiomyocyte hypertrophy and apoptosis.
- E2F1's role in cardiac hypertrophy suggests potential therapeutic targeting.
- Previous studies indicated a causal role for E2F1 in cardiac hypertrophy.
Purpose of the Study:
- To test if blocking the E2F1-mediated pathway prevents cardiac hypertrophy.
- To investigate the necessity of E2F1 in the development of cardiac hypertrophy.
- To evaluate the therapeutic potential of targeting E2F1 for cardiac hypertrophy.
Main Methods:
- Utilized E2F1 knockout (E2F1-/-) and control (E2F1+/+) mice.
- Administered isoproterenol (ISO) and Angiotensin II (ANG) to induce cardiac hypertrophy.
- Assessed cardiac hypertrophy and function using echocardiography and molecular markers (Atrial natriuretic peptide).
Main Results:
- Both E2F1-/- and E2F1+/+ mice developed cardiac hypertrophy following ISO and ANG treatments.
- ANG treatment impaired ventricular function in both E2F1-/- and E2F1+/+ mice.
- Molecular markers and left ventricle mass were similarly increased in treated E2F1-/- and E2F1+/+ mice, indicating E2F1 is not essential for hypertrophy development.
Conclusions:
- Cardiac hypertrophy can develop independently of E2F1.
- The study contradicts previous findings suggesting a causal role for E2F1.
- Targeting E2F1 may not be an effective therapeutic strategy for cardiac hypertrophy, possibly due to compensatory roles of other E2F family members.
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