The MEF2D transcription factor mediates stress-dependent cardiac remodeling in mice
Open Access
- 2 January 2008
- journal article
- Published by American Society for Clinical Investigation in Journal of Clinical Investigation
- Vol. 118 (1) , 124-132
- https://doi.org/10.1172/jci33255
Abstract
The adult heart responds to excessive neurohumoral signaling and workload by a pathological growth response characterized by hypertrophy of cardiomyocytes and activation of a fetal program of cardiac gene expression. These responses culminate in diminished pump function, ventricular dilatation, wall thinning, and fibrosis, and can result in sudden death. Myocyte enhancer factor–2 (MEF2) transcription factors serve as targets of the signaling pathways that drive pathological cardiac remodeling, but the requirement for MEF2 factors in the progression of heart disease in vivo has not been determined. MEF2A and MEF2D are the primary MEF2 factors expressed in the adult heart. To specifically determine the role of MEF2D in pathological cardiac remodeling, we generated mice with a conditional MEF2D allele. MEF2D-null mice were viable, but were resistant to cardiac hypertrophy, fetal gene activation, and fibrosis in response to pressure overload and β-chronic adrenergic stimulation. Furthermore, we show in a transgenic mouse model that forced overexpression of MEF2D was sufficient to drive the fetal gene program and pathological remodeling of the heart. These results reveal a unique and important function for MEF2D in stress-dependent cardiac growth and reprogramming of gene expression in the adult heart.Keywords
This publication has 40 references indexed in Scilit:
- Histone deacetylase degradation andMEF2 activation promote the formation of slow-twitch myofibersJournal of Clinical Investigation, 2007
- A signature pattern of stress-responsive microRNAs that can evoke cardiac hypertrophy and heart failureProceedings of the National Academy of Sciences, 2006
- MEF2 Activates a Genetic Program Promoting Chamber Dilation and Contractile Dysfunction in Calcineurin-Induced Heart FailureCirculation, 2006
- The Transcriptional Coactivator CAMTA2 Stimulates Cardiac Growth by Opposing Class II Histone DeacetylasesCell, 2006
- A Calcium-Regulated MEF2 Sumoylation Switch Controls Postsynaptic DifferentiationScience, 2006
- Protein Kinases C and D Mediate Agonist-Dependent Cardiac Hypertrophy through Nuclear Export of Histone Deacetylase 5Molecular and Cellular Biology, 2004
- Balancing Contractility and Energy Production: The Role of Myocyte Enhancer Factor 2 (MEF2) in Cardiac HypertrophyRecent Progress in Hormone Research, 2004
- Cardiac Hypertrophy: The Good, the Bad, and the UglyAnnual Review of Physiology, 2003
- Mitochondrial deficiency and cardiac sudden death in mice lacking the MEF2A transcription factorNature Medicine, 2002
- TRANSCRIPTIONAL CONTROL OF MUSCLE DEVELOPMENT BY MYOCYTE ENHANCER FACTOR-2 (MEF2) PROTEINSAnnual Review of Cell and Developmental Biology, 1998