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Published on: May 16, 2020
Coordinate changes in Myosin heavy chain isoform gene expression are selectively associated with alterations in
W T Abraham1, E M Gilbert, B D Lowes
1Division of Cardiology, University of Colorado Health Sciences Center, Denver 80262, USA.
Insights
Myosin heavy chain isoform changes are linked to improved dilated cardiomyopathy (DCM) in patients. These findings suggest myosin heavy chain alterations may drive disease progression in DCM.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Dilated cardiomyopathy (DCM) is a common cause of heart failure.
- DCM involves altered gene expression affecting heart muscle function and hypertrophy.
- The role of these gene expression changes in DCM pathogenesis is not fully understood.
Purpose of the Study:
- To investigate the quantitative relationship between gene expression changes and cardiac phenotype in DCM patients.
- To determine if specific gene expression alterations contribute to DCM progression or modification.
Main Methods:
- Longitudinal study of 47 idiopathic DCM patients.
- Serial endomyocardial biopsies (baseline and 6 months) to measure mRNA and protein expression.
- Assessed mRNA for contractile function genes (adrenergic receptors, SERCA, myosin heavy chains) and hypertrophy genes (ANP).
- Left ventricular ejection fraction measured to assess cardiac phenotype.
Main Results:
- Phenotypic improvement in DCM correlated with increased alpha-myosin heavy chain and decreased beta-myosin heavy chain mRNA.
- Phenotypic changes were not associated with alterations in beta-adrenergic receptor or SERCA mRNA/protein, or ANP mRNA.
- Myosin heavy chain isoform shifts were selectively linked to DCM phenotype modification.
Conclusions:
- Phenotypic modification in human DCM is specifically associated with changes in myosin heavy chain isoforms.
- These results support the hypothesis that myosin heavy chain isoform alterations play a role in DCM disease progression.
Background:
The most common cause of chronic heart failure in the US is secondary or primary dilated cardiomyopathy (DCM). The DCM phenotype exhibits changes in the expression of genes that regulate contractile function and pathologic hypertrophy. However, it is unclear if any of these alterations in gene expression are disease producing or modifying.
Materials And Methods:
One approach to providing evidence for cause-effect of a disease-influencing gene is to quantitatively compare changes in phenotype to changes in gene expression by employing serial measurements in a longitudinal experimental design. We investigated the quantitative relationships between changes in gene expression and phenotype n 47 patients with idiopathic DCM. In endomyocardial biopsies at baseline and 6 months later, we measured mRNA expression of genes regulating contractile function (beta-adrenergic receptors, sarcoplasmic reticulum Ca(2) + ATPase, and alpha- and beta-myosin heavy chain isoforms) or associated with pathologic hypertrophy (beta-myosin heavy chain and atrial natriuretic peptide), plus beta-adrenergic receptor protein expression. Left ventricular phenotype was assessed by radionuclide ejection fraction.
Results:
Improvement in DCM phenotype was directly related to a coordinate increase in alpha- and a decrease in beta-myosin heavy chain mRNA expression. In contrast, modification of phenotype was unrelated to changes in the expression of beta(1)- or beta(2)-adrenergic receptor mRNA or protein, or to the mRNA expression of sarcoplasmic reticulum Ca(2) + ATPase and atrial natriuretic peptide.
Conclusion:
We conclude that in human DCM, phenotypic modification is selectively associated with myosin heavy chain isoform changes. These data support the hypothesis that myosin heavy chain isoform changes contribute to disease progression in human DCM.
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