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Species-specific differences in the Pro-Ala rich region of cardiac myosin binding protein-C
Justin F Shaffer1, Samantha P Harris
1Department of Bioengineering, University of Washington, Seattle, WA, USA. jfshaffer@ucdavis.edu
Insights
Species-specific sequences in cardiac myosin binding protein-C (cMyBP-C) Pro-Ala region correlate with body size and heart rate. These variations may explain functional differences in human and mouse cMyBP-C, impacting cardiac contractility.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Protein Sequence-Function Relationships
Background:
- Cardiac myosin binding protein-C (cMyBP-C) is crucial for sarcomere structure and function.
- Mutations in cMyBP-C are a primary cause of familial hypertrophic cardiomyopathy.
- N-terminal domains of cMyBP-C regulate actomyosin interactions, with species-specific sequence requirements.
Purpose of the Study:
- To investigate if sequence differences in the Pro-Ala rich region of cMyBP-C account for functional variations between species.
- To compare Pro-Ala rich region sequences across different species' cMyBP-C isoforms.
Main Methods:
- Comparative sequence analysis of the Pro-Ala rich region in cMyBP-C isoforms from various species.
- Correlation analysis between Pro-Ala region sequence composition, mammalian body size, and heart rate.
Main Results:
- Significant variation in proline and alanine residue content within the Pro-Ala rich region of cMyBP-C across species.
- A direct correlation between the number of proline/alanine residues and mammalian body size.
- An inverse correlation between proline/alanine residue content and heart rate.
Conclusions:
- Systematic sequence differences in the cMyBP-C Pro-Ala rich region may explain functional disparities between human and mouse isoforms.
- The Pro-Ala region's sequence variation likely plays a role in adapting cardiac contractile speed to species-specific physiological demands.
Abstract:
Cardiac myosin binding protein-C (cMyBP-C) is an accessory protein found in the A-bands of vertebrate sarcomeres and mutations in the cMyBP-C gene are a leading cause of familial hypertrophic cardiomyopathy. The regulatory functions of cMyBP-C have been attributed to the N-terminus of the protein, which is composed of tandem immunoglobulin (Ig)-like domains (C0, C1, and C2), a region rich in proline and alanine residues (the Pro-Ala rich region) that links C0 and C1, and a unique sequence referred to as the MyBP-C motif, or M-domain, that links C1 and C2. Recombinant proteins that contain various combinations of the N-terminal domains of cMyBP-C can activate actomyosin interactions in the absence of Ca(2+), but the specific sequences required for these effects differ between species; the Pro-Ala region has been implicated in human cMyBP-C whereas the C1 and M-domains appear important in mouse cMyBP-C. To investigate whether species-specific differences in sequence can account for the observed differences in function, we compared sequences of the Pro-Ala rich region in cMyBP-C isoforms from different species. Here we report that the number of proline and alanine residues in the Pro-Ala rich region varies significantly between different species and that the number correlates directly with mammalian body size and inversely with heart rate. Thus, systematic sequence differences in the Pro-Ala rich region of cMyBP-C may contribute to observed functional differences in human versus mouse cMyBP-C isoforms and suggest that the Pro-Ala region may be important in matching contractile speed to cardiac function across species.
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