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Updated: Jan 23, 2026

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Defining genotype-phenotype relationships in patients with hypertrophic cardiomyopathy using cardiovascular magnetic
Robert J H Miller1, Shahriar Heidary1, Aleksandra Pavlovic2
1Division of Cardiovascular Medicine, Stanford University School of Medicine, Stanford, California, United States of America.
Insights
Cardiac MRI reveals distinct phenotypes in hypertrophic cardiomyopathy (HCM) patients based on genetic mutations. MYBPC3 mutations are linked to impaired function and higher arrhythmia risk compared to MYH7 mutations.
Area of Science:
- Cardiology
- Genetics
- Medical Imaging
Background:
- Hypertrophic cardiomyopathy (HCM) is the most common inherited heart muscle disease.
- Historically, genotype-phenotype correlations in HCM have been challenging.
- Cardiac magnetic resonance (CMR) offers advanced capabilities for disease phenotyping.
Purpose of the Study:
- To characterize HCM phenotypes using CMR in a cohort with genetic testing.
- To investigate the relationship between specific genetic variants and cardiac structure/function.
Main Methods:
- Retrospective analysis of 273 HCM patients undergoing contrast-enhanced CMR.
- Measurement of left ventricular mass index (LVMI) and volumes.
- Quantification of late gadolinium enhancement (LGE) and prospective follow-up for clinical events.
Main Results:
- 90 pathogenic/likely pathogenic variants identified in 202 patients.
- MYH7 mutations associated with higher ejection fraction (68.8% vs 59.1%, p<0.001).
- MYBPC3 mutations linked to lower ejection fraction (<55% in 29.7% vs 4.9%, p=0.005) and higher defibrillator use (54.1% vs 26.8%, p=0.020).
Conclusions:
- MYBPC3 mutations correlate with impaired ventricular function and increased arrhythmia risk.
- CMR phenotyping may help identify characteristics of less common HCM genetic causes.
- Further research with larger cohorts is warranted.
Purpose:
HCM is the most common inherited cardiomyopathy. Historically, there has been poor correlation between genotype and phenotype. However, CMR has the potential to more accurately assess disease phenotype. We characterized phenotype with CMR in a cohort of patients with confirmed HCM and high prevalence of genetic testing.
Methods:
Patients with a diagnosis of HCM, who had undergone contrast-enhanced CMR were identified. Left ventricular mass index (LVMI) and volumes were measured from steady-state free precession sequences. Late gadolinium enhancement (LGE) was quantified using the full width, half maximum method. All patients were prospectively followed for the development of septal reduction therapy, arrhythmia or death.
Results:
We included 273 patients, mean age 51.2 ± 15.5, 62.9% male. Of those patients 202 (74.0%) underwent genetic testing with 90 pathogenic, likely pathogenic, or rare variants and 13 variants of uncertain significance identified. Median follow-up was 1138 days. Mean LVMI was 82.7 ± 30.6 and 145 patients had late gadolinium enhancement (LGE). Patients with beta-myosin heavy chain (MYH7) mutations had higher LV ejection fraction (68.8 vs 59.1, p<0.001) than those with cardiac myosin binding protein C (MYBPC3) mutations. Patients with MYBPC3 mutations were more likely to have LVEF < 55% (29.7% vs 4.9%, p = 0.005) or receive a defibrillator than those with MYH7 mutations (54.1% vs 26.8%, p = 0.020).
Conclusions:
We found that patients with MYBPC3 mutations were more likely to have impaired ventricular function and may be more prone to arrhythmic events. Larger studies using CMR phenotyping may be capable of identifying additional characteristics associated with less frequent genetic causes of HCM.
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