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Cardiac myosin-binding protein-C is a critical mediator of diastolic function
Carl W Tong1, Nandini A Nair, Karen M Doersch
1Department of Medical Physiology, Texas A&M Health Science Center, 702 Southwest H.K. Dodgen Loop, Temple, TX, 76504, USA, CTong@medicine.tamhsc.edu.
Insights
Cardiac myosin-binding protein-C (cMyBP-C) phosphorylation is crucial for diastolic function and relaxation in the heart. Targeting cMyBP-C phosphorylation may offer new treatments for heart failure with preserved ejection fraction (HFpEF).
Area of Science:
- Cardiovascular Biology
- Muscle Physiology
- Molecular Cardiology
Background:
- Diastolic dysfunction is a major contributor to heart failure with preserved ejection fraction (HFpEF), a condition lacking effective treatments.
- Cardiac myosin-binding protein-C (cMyBP-C) plays a role in regulating heart muscle contraction and relaxation.
- The precise mechanisms linking cMyBP-C to diastolic dysfunction in HFpEF are not fully understood.
Purpose of the Study:
- To investigate the role of cardiac myosin-binding protein-C (cMyBP-C) phosphorylation in diastolic function.
- To explore cMyBP-C as a potential therapeutic target for diastolic dysfunction and HFpEF.
Main Methods:
- Analysis of cMyBP-C mutations in patients with diastolic dysfunction.
- Generation and study of cMyBP-C deletion mouse models.
- Development and examination of mouse models with altered cMyBP-C phosphorylation levels.
Main Results:
- cMyBP-C mutations are linked to diastolic dysfunction, even without cardiac hypertrophy.
- cMyBP-C deletion in mice leads to diastolic dysfunction.
- Reduced cMyBP-C phosphorylation in mice causes diastolic dysfunction, while phosphorylation-mimetic models show improved diastolic function.
- cMyBP-C phosphorylation modulates the cross-bridge detachment rate, impacting cardiac relaxation.
Conclusions:
- Cardiac myosin-binding protein-C (cMyBP-C) phosphorylation is a critical mediator of diastolic function.
- Altered regulation of cross-bridge detachment by cMyBP-C is a key mechanism in diastolic dysfunction.
- Modulating cMyBP-C phosphorylation presents a promising therapeutic strategy for treating diastolic dysfunction and HFpEF.
Abstract:
Diastolic dysfunction prominently contributes to heart failure with preserved ejection fraction (HFpEF). Owing partly to inadequate understanding, HFpEF does not have any effective treatments. Cardiac myosin-binding protein-C (cMyBP-C), a component of the thick filament of heart muscle that can modulate cross-bridge attachment/detachment cycling process by its phosphorylation status, appears to be involved in the diastolic dysfunction associated with HFpEF. In patients, cMyBP-C mutations are associated with diastolic dysfunction even in the absence of hypertrophy. cMyBP-C deletion mouse models recapitulate diastolic dysfunction despite in vitro evidence of uninhibited cross-bridge cycling. Reduced phosphorylation of cMyBP-C is also associated with diastolic dysfunction in patients. Mouse models of reduced cMyBP-C phosphorylation exhibit diastolic dysfunction while cMyBP-C phosphorylation mimetic mouse models show enhanced diastolic function. Thus, cMyBP-C phosphorylation mediates diastolic function. Experimental results of both cMyBP-C deletion and reduced cMyBP-C phosphorylation causing diastolic dysfunction suggest that cMyBP-C phosphorylation level modulates cross-bridge detachment rate in relation to ongoing attachment rate to mediate relaxation. Consequently, alteration in cMyBP-C regulation of cross-bridge detachment is a key mechanism that causes diastolic dysfunction. Regardless of the exact molecular mechanism, ample clinical and experimental data show that cMyBP-C is a critical mediator of diastolic function. Furthermore, targeting cMyBP-C phosphorylation holds potential as a future treatment for diastolic dysfunction.
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