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.

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