Biochemical and mechanical dysfunction in a mouse model of desmin-related myopathy

Alina Maloyan1, Hanna Osinska, Jan Lammerding

  • 1Division of Molecular Cardiovascular Biology, Cincinnati Children's Hospital Medical Center, Ohio 45229-3039, USA.

Circulation Research
|March 21, 2009
PubMed

Insights

Oxypurinol improved mitochondrial function in a mouse model of desmin-related myopathy (DRM). However, it did not improve heart contractility, suggesting mechanical deficits are key in this protein misfolding disease.

Area of Science:

  • Cardiovascular Biology
  • Mitochondrial Medicine
  • Protein Misfolding Diseases

Background:

  • AlphaB-crystallin R120G mutation causes desmin-related myopathy (DRM) with heart failure.
  • Reactive oxygen species (ROS) contribute to heart failure, but their role in DRM is unclear.

Purpose of the Study:

  • To investigate if blocking ROS production via xanthine oxidase (XO) inhibition benefits DRM.
  • To assess the impact of oxypurinol on mitochondrial function, apoptosis, and cardiac mechanics in DRM.

Main Methods:

  • Administered oxypurinol to mice with cardiomyocyte-specific CryAB(R120G) mutation for 1-3 months.
  • Assessed mitochondrial function (Complex I activity, membrane potential), morphology, apoptosis, and cardiac contractility.
  • Utilized magnetic bead microrheology to measure cardiomyocyte cytoskeletal mechanics.

Main Results:

  • Oxypurinol significantly improved mitochondrial function and morphology in DRM mice.
  • Cardiac contractile function and compliance remained unimproved despite mitochondrial benefits.
  • Sarcomeric disarray and aggregate accumulation caused altered cytoskeletal mechanical properties.

Conclusions:

  • Blocking ROS with oxypurinol ameliorates mitochondrial dysfunction in DRM.
  • Cardiac contractility deficits in DRM are independent of mitochondrial dysfunction and ROS.
  • Mechanical deficits in cardiomyocyte cytoskeleton are critical drivers of contractile dysfunction in DRM.

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