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Updated: Oct 29, 2025

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Nonproductive Splicing Prevents Expression of MYH7b Protein in the Mammalian Heart
Lindsey A Lee1,2, Lindsey J Broadwell2,3, Massimo Buvoli1,2
1Department of Molecular, Cellular, and Developmental Biology University of Colorado Boulder Boulder CO.
Insights
Myosin heavy chain 7b (MYH7b) protein is not expressed in mammalian hearts due to non-productive alternative splicing. MYH7b variants linked to cardiomyopathies may affect disease through RNA, not protein.
Area of Science:
- Cardiovascular Biology
- Molecular Genetics
- Proteomics
Background:
- The roles of alpha-myosin heavy chain (α-MyHC) and beta-myosin heavy chain (β-MyHC) in cardiac function are established.
- The expression and function of MYH7b (myosin heavy chain 7b) in mammalian hearts remain debated, with conflicting reports on protein presence and links to cardiomyopathies.
Purpose of the Study:
- To investigate the expression and functional relevance of MYH7b in mammalian cardiac tissue.
- To clarify the discrepancy regarding MYH7b protein expression in the heart and its potential role in disease.
Main Methods:
- Analysis of mammalian cardiac transcriptome and proteome data.
- Western blot analysis for MYH7b protein detection in mouse, rat, and human hearts.
- Quantitative mass spectrometry surveys.
- Investigation of alternative splicing mechanisms and intron retention.
Main Results:
- The majority of MYH7b RNA undergoes exon skipping, preventing functional protein translation.
- No MYH7b protein was detected in adult mouse, rat, or human hearts via Western blot.
- Proteomic analyses revealed only trace amounts of MYH7b protein in a subset of samples, suggesting negligible expression.
- A lag in intron removal was identified, potentially regulating MYH7b and other cardiac gene expression.
Conclusions:
- Previous reports of cardiac MYH7b protein expression likely resulted from antibody cross-reactivity.
- The data strongly suggest MYH7b protein is absent or present at negligible levels in healthy adult mammalian hearts.
- Disease-associated MYH7b variants may exert their effects through the alternatively spliced RNA, not the protein product.
Abstract:
Background Although the roles of alpha-myosin heavy chain (α-MyHC) and beta-myosin heavy chain (β-MyHC) proteins in cardiac contractility have long been appreciated, the biological contribution of another closely related sarcomeric myosin family member, MYH7b (myosin heavy chain 7b), has become a matter of debate. In mammals, MYH7b mRNA is transcribed but undergoes non-productive alternative splicing that prevents protein expression in a tissue-specific manner, including in the heart. However, several studies have recently linked MYH7b variants to different cardiomyopathies or have reported MYH7b protein expression in mammalian hearts. Methods and Results By analyzing mammalian cardiac transcriptome and proteome data, we show that the vast majority of MYH7b RNA is subject to exon skipping and cannot be translated into a functional myosin molecule. Notably, we discovered a lag in the removal of introns flanking the alternatively spliced exon, which could retain the non-coding RNA in the nucleus. This process could play a significant role in controlling MYH7b expression as well as the activity of other cardiac genes. Consistent with the negligible level of full-length protein coding mRNA, no MYH7b protein expression was detected in adult mouse, rat, and human hearts by Western blot analysis. Furthermore, proteome surveys including quantitative mass spectrometry analyses revealed only traces of cardiac MYH7b protein and even then, only in a subset of individual samples. Conclusions The comprehensive analysis presented here suggests that previous studies showing cardiac MYH7b protein expression were likely attributable to antibody cross-reactivity. More importantly, our data predict that the MYH7b disease-associated variants may operate through the alternately spliced RNA itself.
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