Roles of cMyBP-C phosphorylation on cardiac contractile dysfunction in db/db mice

Darshini A Desai1, Akhil Baby1,2, Kalyani Ananthamohan1

  • 1Center for Cardiovascular Research, Department of Internal Medicine, Division of Cardiovascular Health and Disease, University of Cincinnati College of Medicine, Cincinnati, OH 45267, USA.

Insights

Type 2 diabetes causes heart muscle disease (T2DM-CM) through myosin binding protein-C hyperphosphorylation. Cardiac myosin inhibitors like mavacamten show promise in rescuing this cardiac dysfunction in preclinical models.

Area of Science:

  • Cardiology
  • Metabolic Diseases
  • Molecular Biology

Background:

  • Type 2 diabetes mellitus (T2DM) is linked to cardiac dysfunction, specifically heart failure with preserved ejection fraction (HFpEF).
  • The molecular underpinnings of T2DM-induced cardiomyopathy (T2DM-CM) remain largely unknown.
  • Hyperphosphorylation of cardiac myosin binding protein-C is implicated in T2DM-CM pathogenesis.

Purpose of the Study:

  • To elucidate the molecular mechanisms of T2DM-CM.
  • To investigate the therapeutic potential of cardiac myosin inhibitors for T2DM-CM.

Main Methods:

  • Utilized Lepr db/db mice as a model for T2DM-CM.
  • Performed echocardiography to assess cardiac function.
  • Conducted RNA-seq analysis to identify differentially regulated genes.
  • Investigated the effect of mavacamten (MYK-461) on cardiac contractility in vitro.

Main Results:

  • Lepr db/db mice exhibited cardiac dysfunction and left ventricular hypertrophy by 6 months.
  • RNA-seq identified dysregulated genes linked to cardiac dysfunction.
  • Cardiac myosin binding protein-C hyperphosphorylation was elevated in Lepr db/db hearts.
  • Mavacamten significantly reduced muscle force and cardiomyocyte contractility in db/db models.

Conclusions:

  • T2DM-CM is associated with cardiac myosin binding protein-C hyperphosphorylation.
  • Mavacamten demonstrated efficacy in mitigating T2DM-CM progression in vitro.
  • Cardiac myosin inhibitors represent a potential therapeutic strategy for T2DM-induced HFpEF.