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Isometric and Eccentric Force Generation Assessment of Skeletal Muscles Isolated from Murine Models of Muscular Dystrophies
Published on: January 31, 2013
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.
Abstract:
An R120G mutation in alphaB-crystallin (CryAB(R120G)) causes desmin-related myopathy (DRM). In mice with cardiomyocyte-specific expression of the mutation, CryAB(R120G)-mediated DRM is characterized by CryAB and desmin accumulations within cardiac muscle, mitochondrial deficiencies, activation of apoptosis, and heart failure (HF). Excessive production of reactive oxygen species (ROS) is often a hallmark of HF and treatment with antioxidants can sometimes prevent the progression of HF in terms of contractile dysfunction and cardiomyocyte survival. It is unknown whether blockade of ROS is beneficial for protein misfolding diseases such as DRM. We addressed this question by blocking the activity of xanthine oxidase (XO), a superoxide-generating enzyme that is upregulated in our model of DRM. The XO inhibitor oxypurinol was administered to CryAB(R120G) mice for a period of 1 or 3 months. Mitochondrial function was dramatically improved in treated animals in terms of complex I activity and conservation of mitochondrial membrane potential. Oxypurinol also largely restored normal mitochondrial morphology. Surprisingly, however, cardiac contractile function and cardiac compliance were unimproved, indicating that the contractile deficit might be independent of mitochondrial dysfunction and the initiation of apoptosis. Using magnetic bead microrheology at the single cardiomyocyte level, we demonstrated that sarcomeric disarray and accumulation of the physical aggregates resulted in significant changes in the cytoskeletal mechanical properties in the CryAB(R120G) cardiomyocytes. Our findings indicate that oxypurinol treatment largely prevented mitochondrial deficiency in DRM but that contractility was not improved because of mechanical deficits in passive cytoskeletal stiffness.
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.

