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January 29, 2014Proceedings of the National Academy of Sciences167 citationsOpen Access

Myosin-binding protein C displaces tropomyosin to activate cardiac thin filaments and governs their speed by an independent mechanism

JMJi Young MunMPMichael J. PrevisHYHope Y. Yu

Key Result

cMyBP-C modulates thin filament activity by physically displacing tropomyosin from its low Ca(2+) position on actin and governs contractile speed by an independent molecular mechanism.

Structured PICO

P
Population
In vitro models of cardiac thin filaments and F-actin
I
Intervention
Binding of N-terminal fragments of cardiac myosin-binding protein C (cMyBP-C)
C
Comparator
Different calcium conditions (low vs high Ca2+) and different fragment lengths
O
Outcome
Tropomyosin position and thin filament sliding speedsurrogate

cMyBP-C modulates cardiac thin filament activity by physically displacing tropomyosin and governs contractile speed through an independent molecular mechanism.

Abstract

Myosin-binding protein C (MyBP-C) is an accessory protein of striated muscle thick filaments and a modulator of cardiac muscle contraction. Defects in the cardiac isoform, cMyBP-C, cause heart disease. cMyBP-C includes 11 Ig- and fibronectin-like domains and a cMyBP-C-specific motif. In vitro studies show that in addition to binding to the thick filament via its C-terminal region, cMyBP-C can also interact with actin via its N-terminal domains, modulating thin filament motility. Structural observations of F-actin decorated with N-terminal fragments of cMyBP-C suggest that cMyBP-C binds to actin close to the low Ca(2+) binding site of tropomyosin. This suggests that cMyBP-C might modulate thin filament activity by interfering with tropomyosin regulatory movements on actin. To determine directly whether cMyBP-C binding affects tropomyosin position, we have used electron microscopy and in vitro motility assays to study the structural and functional effects of N-terminal fragments binding to thin filaments. 3D reconstructions suggest that under low Ca(2+) conditions, cMyBP-C displaces tropomyosin toward its high Ca(2+) position, and that this movement corresponds to thin filament activation in the motility assay. At high Ca(2+), cMyBP-C had little effect on tropomyosin position and caused slowing of thin filament sliding. Unexpectedly, a shorter N-terminal fragment did not displace tropomyosin or activate the thin filament at low Ca(2+) but slowed thin filament sliding as much as the larger fragments. These results suggest that cMyBP-C may both modulate thin filament activity, by physically displacing tropomyosin from its low Ca(2+) position on actin, and govern contractile speed by an independent molecular mechanism.

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Cite This Study

Mun et al. (2014) studied Heart disease (in vitro cardiac muscle model). N-terminal fragments of cMyBP-C was evaluated on Tropomyosin position and thin filament sliding speed. cMyBP-C modulates thin filament activity by physically displacing tropomyosin from its low Ca(2+) position on actin and governs contractile speed by an independent molecular mechanism.

synapsesocial.com/papers/6a7b9c934fcef545fadf7968https://doi.org/10.1073/pnas.1316001111
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