The HCM-linked W792R mutation in cardiac myosin-binding protein C reduces C6 FnIII domain stability
Dan F Smelter1, Willem J de Lange1, Wenxuan Cai2,3
1Department of Pediatrics, University of Wisconsin-Madison , Madison, Wisconsin.
Insights
A hypertrophic cardiomyopathy mutation in cardiac myosin-binding protein C (cMyBP-C) destabilizes the protein, leading to reduced expression and impaired heart function. This suggests haploinsufficiency as a disease mechanism.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Genetic Diseases
Background:
- Cardiac myosin-binding protein C (cMyBP-C) is crucial for regulating cardiac contractility.
- Mutations in cMyBP-C are a common cause of hypertrophic cardiomyopathy (HCM).
- Understanding the molecular mechanisms of cMyBP-C mutations is vital for HCM research.
Purpose of the Study:
- To investigate the functional impact of the pathogenic W792R mutation in cMyBP-C.
- To determine the effect of the W792R mutation on cMyBP-C protein stability and expression.
- To elucidate the disease mechanism underlying cMyBP-C-associated HCM.
Main Methods:
- Expression of wild-type and W792R mutant cMyBP-C in mouse cardiomyocytes.
- Utilizing three-dimensional engineered cardiac tissue constructs (mECTs) for functional analysis.
- Assessing protein stability through bacterial expression, thermal denaturation, and trypsin digestion.
Main Results:
- The W792R mutation significantly reduced cMyBP-C protein levels despite equivalent mRNA abundance.
- mECTs expressing W792R exhibited abnormal contractile kinetics, similar to cMyBP-C-deficient tissues.
- Mutant protein fragments showed decreased stability and increased susceptibility to degradation.
- Inhibition of proteasome and lysosome pathways did not restore W792R protein levels.
Conclusions:
- The W792R mutation destabilizes the C6 fibronectin type III domain of cMyBP-C.
- This destabilization leads to rapid cytosolic degradation and reduced full-length protein expression.
- The study identifies haploinsufficiency due to protein instability as a disease mechanism for HCM caused by cMyBP-C missense mutations.
Abstract:
Cardiac myosin-binding protein C (cMyBP-C) is a functional sarcomeric protein that regulates contractility in response to contractile demand, and many mutations in cMyBP-C lead to hypertrophic cardiomyopathy (HCM). To gain insight into the effects of disease-causing cMyBP-C missense mutations on contractile function, we expressed the pathogenic W792R mutation (substitution of a highly conserved tryptophan residue by an arginine residue at position 792) in mouse cardiomyocytes lacking endogenous cMyBP-C and studied the functional effects using three-dimensional engineered cardiac tissue constructs (mECTs). Based on complete conservation of tryptophan at this location in fibronectin type II (FnIII) domains, we hypothesized that the W792R mutation affects folding of the C6 FnIII domain, destabilizing the mutant protein. Adenoviral transduction of wild-type (WT) and W792R cDNA achieved equivalent mRNA transcript abundance, but not equivalent protein levels, with W792R compared with WT controls. mECTs expressing W792R demonstrated abnormal contractile kinetics compared with WT mECTs that were nearly identical to cMyBP-C-deficient mECTs. We studied whether common pathways of protein degradation were responsible for the rapid degradation of W792R cMyBP-C. Inhibition of both ubiquitin-proteasome and lysosomal degradation pathways failed to increase full-length mutant protein abundance to WT equivalence, suggesting rapid cytosolic degradation. Bacterial expression of WT and W792R protein fragments demonstrated decreased mutant stability with altered thermal denaturation and increased susceptibility to trypsin digestion. These data suggest that the W792R mutation destabilizes the C6 FnIII domain of cMyBP-C, resulting in decreased full-length protein expression. This study highlights the vulnerability of FnIII-like domains to mutations that alter domain stability and further indicates that missense mutations in cMyBP-C can cause disease through a mechanism of haploinsufficiency. NEW & NOTEWORTHY This study is one of the first to describe a disease mechanism for a missense mutation in cardiac myosin-binding protein C linked to hypertrophic cardiomyopathy. The mutation decreases stability of the fibronectin type III domain and results in substantially reduced mutant protein expression dissonant to transcript abundance.
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