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Published on: March 3, 2021
Subtle abnormalities in contractile function are an early manifestation of sarcomere mutations in dilated
Neal K Lakdawala1, Jens J Thune, Steven D Colan
1Brigham and Women's Hospital, 75 Francis Street, Boston, MA 02115, USA.
Insights
Early sarcomere mutations in dilated cardiomyopathy (DCM) show subtle systolic dysfunction, unlike hypertrophic cardiomyopathy (HCM) which presents with diastolic dysfunction. This highlights how mutation impact influences disease phenotype.
Area of Science:
- Cardiology
- Genetics
- Molecular Biology
Background:
- Sarcomere mutations are known causes of dilated cardiomyopathy (DCM) and hypertrophic cardiomyopathy (HCM).
- The progression from sarcomere mutation to clinical disease is not fully understood.
- Early identification of mutation carriers can reveal preclinical disease mechanisms.
Purpose of the Study:
- To characterize early manifestations of sarcomere mutations in DCM.
- To differentiate early DCM manifestations from those in HCM.
- To investigate how sarcomere mutation type influences DCM versus HCM development.
Main Methods:
- Strain echocardiography was performed on 62 genotyped individuals from sarcomeric DCM families.
- Included were 12 subclinical DCM mutation carriers, 21 overt DCM patients, and 29 controls.
- Results were compared to a cohort of 60 subclinical HCM mutation carriers.
Main Results:
- Subclinical DCM mutation carriers showed reduced systolic function (10%-23% decrease in velocity, strain, and strain rate) compared to controls.
- No significant diastolic parameter differences were found in subclinical DCM carriers.
- Subclinical HCM carriers exhibited impaired diastolic function with preserved systolic function.
Conclusions:
- Subtle systolic dysfunction is an early sign of sarcomere mutations leading to DCM, even with normal cardiac dimensions.
- Impaired relaxation and preserved systolic function characterize early HCM development due to sarcomere mutations.
- Sarcomere mutation's intrinsic effects dictate the development of dilated versus hypertrophic phenotypes.
Background:
Sarcomere mutations cause both dilated cardiomyopathy (DCM) and hypertrophic cardiomyopathy (HCM); however, the steps leading from mutation to disease are not well described. By studying mutation carriers before a clinical diagnosis develops, we characterize the early manifestations of sarcomere mutations in DCM and investigate how these manifestations differ from sarcomere mutations associated with HCM.
Methods And Results:
Sixty-two genotyped individuals in families with sarcomeric DCM underwent clinical evaluation including strain echocardiography. The group included 12 subclinical DCM mutation carriers with normal cardiac dimensions and left ventricular ejection fraction (LVEF ≥55%), 21 overt DCM subjects, and 29 related mutation (-) normal controls. Results were compared with a previously characterized cohort of 60 subclinical HCM subjects (sarcomere mutation carriers without left ventricular hypertrophy). Systolic myocardial tissue velocity, longitudinal, circumferential, and radial strain, and longitudinal and radial strain rate were reduced by 10%-23% in subclinical DCM mutation carriers compared with controls (P<0.001 for all comparisons), after adjusting for age and family relations. No significant differences in diastolic parameters were identified comparing the subclinical and control cohorts. The opposite pattern of contractile abnormalities with reduced diastolic but preserved systolic function was seen in subclinical HCM.
Conclusions:
Subtle abnormalities in systolic function are present in subclinical DCM mutation carriers, despite normal left ventricular size and ejection fraction. In contrast, impaired relaxation and preserved systolic function appear to be the predominant early manifestations of sarcomere mutations that lead to HCM. These findings support the theory that the mutation's intrinsic impact on sarcomere function influences whether a dilated or hypertrophic phenotype develops.
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