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.

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