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Published on: May 4, 2022
A myosin hypertrophic cardiomyopathy mutation disrupts the super-relaxed state and boosts contractility by enhanced
Insights
Hypertrophic cardiomyopathy (HCM) is a genetic heart condition. This study reveals how a specific mutation (M493I) in β-cardiac myosin causes HCM by increasing myosin
Area of Science:
- Cardiovascular Biology
- Molecular Biophysics
- Genetic Diseases
Background:
- Hypertrophic cardiomyopathy (HCM) is a primary genetic cause of sudden cardiac death in young individuals.
- HCM is characterized by enhanced ventricular systolic function, often termed hypercontractility, but the underlying molecular mechanisms remain incompletely understood, particularly for mutations showing inhibitory effects in vitro.
- Mutations in the MYH7 gene, encoding β-cardiac myosin, are common causes of HCM.
Purpose of the Study:
- To investigate the mechanical and kinetic effects of the severe HCM-causing mutation M493I in β-cardiac myosin.
- To elucidate the molecular basis for HCM hypercontractility, reconciling seemingly contradictory in vitro findings with in vivo observations.
- To determine how M493I mutation impacts myosin's interaction with actin and its regulatory states.
Main Methods:
- Utilized actin filament gliding motility assays to measure myosin-driven velocity.
- Performed single-molecule mechanical studies to assess myosin working stroke and actin attachment duration.
- Measured ADP release, phosphate release, and ATP binding kinetics.
- Investigated the super-relaxed to disordered relaxed (SRX-DRX) regulatory transition equilibrium.
- Applied isometric feedback to quantify force production and detachment rates.
Main Results:
- The M493I mutation reduced actin gliding velocity by 70% and slowed ADP release 5-fold, while enhancing ATPase Vmax twofold.
- Single-molecule studies revealed a normal working stroke but significantly prolonged actin attachment duration and increased force production.
- M493I myosin exhibited reduced sensitivity of actin detachment rate to force and disrupted the SRX-DRX regulatory transition.
- These disruptions enhanced myosin binding to actin and actin attachment kinetics.
Conclusions:
- The HCM-causing M493I mutation in β-cardiac myosin enhances cardiac contractility through a combination of slow ADP release, prolonged actin attachment, and increased force production.
- Disruption of the myosin super-relaxed state (SRX-DRX) contributes to increased myosin head availability and enhanced actin binding kinetics.
- These findings support a model where increased myosin head availability, rather than solely enhanced individual kinetics, underlies HCM hypercontractility.
Abstract:
Hypertrophic cardiomyopathy (HCM) is a leading cause of cardiac failure among individuals under 35. Many genetic mutations that cause HCM enhance ventricular systolic function, suggesting that these HCM mutations are hypercontractile. Among the most common causes of HCM are mutations in the gene MYH7, which encodes for β-cardiac myosin, the principal human ventricular myosin. Previous work has demonstrated that, for purified myosins, some MYH7 mutations are gain-of-function while others cause reduced function, so how they lead to enhanced contractility is not clear. Here, we have characterized the mechanics and kinetics of the severe HCM-causing mutation M493I. Motility assays demonstrate a 70% reduction of actin filament gliding velocities on M493I-coated surfaces relative to WT. This mutation slows ADP release from actomyosin·ADP 5-fold without affecting phosphate release or ATP binding. Yet it enhances steady-state ATPase V max 2-fold. Through single-molecule mechanical studies, we find that M493I myosin has a normal working stroke of 5 nm but a significantly prolonged actin attachment duration. Under isometric feedback, M493I myosins produce high, sustained force, with an actin detachment rate that is less sensitive to force than that of WT myosin. We also report direct measurement of the equilibrium state of the super-relaxed to disordered relaxed (SRX-DRX) regulatory transition and show its disruption in M493I, with a concomitant enhancement to actin attachment kinetics. Together, these data demonstrate that enhanced myosin binding from inhibition of myosin's off state, combined with slow ADP release and enhanced force production, underlie the enhanced function and etiology of this HCM mutation.
Significance Statement:
Hypertrophic cardiomyopathy (HCM) is a leading genetic cause of sudden cardiac death in young individuals. Although often described as a hypercontractile disease, the molecular basis for this remains unclear, especially for mutations with inhibitory effects in various in vitro assays. We show that the severe HCM mutation M493I in β-cardiac myosin slows ADP release yet enhances force output and actin attachment through multiple mechanisms, including disrupted autoinhibition via the super-relaxed state. Our findings unify seemingly contradictory biophysical changes into a coherent mechanistic model and support the hypothesis that increased myosin head availability, rather than enhanced individual kinetics alone, underlies HCM hypercontractility.
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