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Updated: Nov 19, 2025

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Complexity in genetic cardiomyopathies and new approaches for mechanism-based precision medicine
Michael J Greenberg1, Jil C Tardiff2,3
1Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, MO.
Insights
Genetic cardiomyopathies are complex diseases. A precision medicine framework, grouping patients by biophysical mechanisms, can guide targeted therapies for better outcomes.
Area of Science:
- Cardiovascular Medicine
- Genetics
- Molecular Biology
Background:
- Genetic cardiomyopathies exhibit complex molecular etiologies and variable clinical phenotypes.
- Understanding the link between genetic mutations, molecular pathogenesis, and cardiac remodeling remains challenging.
- Current treatment strategies for genetic cardiomyopathies are often not broadly effective due to disease complexity.
Purpose of the Study:
- To propose a practical framework for a precision medicine approach to genetic cardiomyopathies.
- To enable the development of targeted therapeutics by binning patient subpopulations based on underlying biophysical mechanisms.
- To highlight the need for mechanistic studies across multiple scales to inform therapeutic development.
Main Methods:
- Development of a function-based framework for classifying genetic cardiomyopathy patient subpopulations.
- Review of mutations to illustrate the necessity of mechanistic molecular experiments.
- Description of recent advances in novel therapeutics targeting functional mechanisms.
Main Results:
- A proposed framework for precision medicine in genetic cardiomyopathies based on shared biophysical mechanisms.
- Illustrative examples of mutations requiring multi-scale mechanistic investigation.
- Advances in developing therapeutics targeting identified functional pathways.
Conclusions:
- A function-based precision medicine approach can facilitate the development of targeted therapies for genetic cardiomyopathies.
- Mechanistic molecular studies are crucial for understanding disease pathogenesis and developing effective treatments.
- Fundamental research is key to realizing the potential of precision medicine for these complex cardiac disorders.
Abstract:
Genetic cardiomyopathies have been studied for decades, and it has become increasingly clear that these progressive diseases are more complex than originally thought. These complexities can be seen both in the molecular etiologies of these disorders and in the clinical phenotypes observed in patients. While these disorders can be caused by mutations in cardiac genes, including ones encoding sarcomeric proteins, the disease presentation varies depending on the patient mutation, where mutations even within the same gene can cause divergent phenotypes. Moreover, it is challenging to connect the mutation-induced molecular insult that drives the disease pathogenesis with the various compensatory and maladaptive pathways that are activated during the course of the subsequent progressive, pathogenic cardiac remodeling. These inherent complexities have frustrated our ability to understand and develop broadly effective treatments for these disorders. It has been proposed that it might be possible to improve patient outcomes by adopting a precision medicine approach. Here, we lay out a practical framework for such an approach, where patient subpopulations are binned based on common underlying biophysical mechanisms that drive the molecular disease pathogenesis, and we propose that this function-based approach will enable the development of targeted therapeutics that ameliorate these effects. We highlight several mutations to illustrate the need for mechanistic molecular experiments that span organizational and temporal scales, and we describe recent advances in the development of novel therapeutics based on functional targets. Finally, we describe many of the outstanding questions for the field and how fundamental mechanistic studies, informed by our more nuanced understanding of the clinical disorders, will play a central role in realizing the potential of precision medicine for genetic cardiomyopathies.
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