Key result
Human P/A and C1 domains of cMyBP-C activate actomyosin interactions more effectively than the homologous regions of mouse cMyBP-C.
Species-specific differences in the P/A and C1 domains of cMyBP-C confer differential effects on actomyosin activation, which may fine-tune cardiac function across species.
Species-specific cMyBP-C differences limit rodent-to-human translation; leaves open questions on sarcomere regulation in human disease.
The N-terminus of cMyBP-C can activate actomyosin interactions in the absence of Ca2+, but it is unclear which domains are necessary. Prior studies suggested that the Pro-Ala rich region of human cMyBP-C activated force in permeabilized human cardiomyocytes, whereas the C1 and M-domains of mouse cMyBP-C activated force in permeabilized rat cardiac trabeculae. Because the amino acid sequence of the P/A region differs between human and mouse cMyBP-C isoforms (46% identity), we investigated whether species-specific differences in the P/A region could account for differences in activating effects. Using chimeric fusion proteins containing combinations of human and mouse C0, Pro-Ala, and C1 domains, we demonstrate here that the human P/A and C1 domains activate actomyosin interactions, whereas the same regions of mouse cMyBP-C are less effective. These results suggest that species-specific differences between homologous cMyBP-C isoforms confer differential effects that could fine-tune cMyBP-C function in hearts of different species.
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Shaffer et al. (2010) studied this question. Chimeric fusion proteins of human C0, Pro-Ala, and C1 domains vs. Mouse cMyBP-C regions was evaluated on Actomyosin interactions activation. Human P/A and C1 domains of cMyBP-C activate actomyosin interactions more effectively than the homologous regions of mouse cMyBP-C.
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