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August 26, 2005Annual Review of Genomics and Human Genetics305 citationsOpen Access

The Genetic Basis for Cardiac Remodeling

FAFerhaan AhmadUniversity of Iowa
Jonathan G. Seidman
Jonathan G. SeidmanHeart Failure & Transplant
Christine E. Seidman
Christine E. SeidmanRoosevelt University

Key Result

Mutations in 11 genes encoding sarcomere proteins and 25 chromosome loci encoding contractile and cytoskeletal proteins drive cardiac remodeling and heart failure in cardiomyopathies.

Key Points

  • To summarize two decades of genetic and molecular discoveries that explain the pathogenesis of inherited cardiomyopathies and the mechanisms leading to cardiac remodeling and heart failure.
  • Reviewed human molecular genetic analyses and mechanistic investigations conducted across model organisms.
  • Evaluated genetic mutations linked to diverse cardiomyopathy subtypes, including structural, contractile, and metabolic alterations.
  • Hypertrophic cardiomyopathy is linked to mutations in 11 sarcomere protein genes, whereas dilated cardiomyopathy involves mutations across 25 chromosome loci affecting contractile, cytoskeletal, and calcium regulatory proteins.
  • Desmosomal protein mutations cause arrhythmogenic right ventricular dysplasia, while defects in cardiac metabolic genes induce hypertrophy combined with ventricular pre-excitation.
  • Impairments in myocyte force generation, force transmission, and calcium homeostasis serve as primary molecular triggers driving cardiac remodeling toward heart failure.

PICO

P
Population
Cardiomyopathies

Abstract

Cardiomyopathies are primary disorders of cardiac muscle associated with abnormalities of cardiac wall thickness, chamber size, contraction, relaxation, conduction, and rhythm. They are a major cause of morbidity and mortality at all ages and, like acquired forms of cardiovascular disease, often result in heart failure. Over the past two decades, molecular genetic studies of humans and analyses of model organisms have made remarkable progress in defining the pathogenesis of cardiomyopathies. Hypertrophic cardiomyopathy can result from mutations in 11 genes that encode sarcomere proteins, and dilated cardiomyopathy is caused by mutations at 25 chromosome loci where genes encoding contractile, cytoskeletal, and calcium regulatory proteins have been identified. Causes of cardiomyopathies associated with clinically important cardiac arrhythmias have also been discovered: Mutations in cardiac metabolic genes cause hypertrophy in association with ventricular pre-excitation and mutations causing arrhythmogenic right ventricular dysplasia were recently discovered in protein constituents of desmosomes. This considerable genetic heterogeneity suggests that there are multiple pathways that lead to changes in heart structure and function. Defects in myocyte force generation, force transmission, and calcium homeostasis have emerged as particularly critical signals driving these pathologies. Delineation of the cell and molecular events triggered by cardiomyopathy gene mutations provide new fundamental knowledge about myocyte biology and organ physiology that accounts for cardiac remodeling and defines mechanistic pathways that lead to heart failure.

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Cite This Study

Ahmad et al. (2005) conducted a review in Cardiomyopathies. Mutations in 11 genes encoding sarcomere proteins and 25 chromosome loci encoding contractile and cytoskeletal proteins drive cardiac remodeling and heart failure in cardiomyopathies.

synapsesocial.com/papers/6a0cf0e148a8c0e2bf7c775ehttps://doi.org/10.1146/annurev.genom.6.080604.162132
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