Early signs of architectural and biomechanical failure in isolated myofibers and immortalized myoblasts from desmin-mutant knock-in mice
Early signs of architectural and biomechanical failure in isolated myofibers and immortalized myoblasts from desmin-mutant knock-in mice
AbstractIn striated muscle, desmin intermediate filaments interlink the contractile myofibrillar apparatus with mitochondria, nuclei, and the sarcolemma. The desmin network’s pivotal role in myocytes is evident since mutations in the human desmin gene cause severe myopathies and cardiomyopathies. Here, we investigated skeletal muscle pathology in myofibers and myofibrils isolated from young hetero- and homozygous R349P desmin knock-in mice, which carry the orthologue of the most frequent human desmin missense mutation R350P. We demonstrate that mutant desmin alters myofibrillar cytoarchitecture, markedly disrupts the lateral sarcomere lattice and distorts myofibrillar angular axial orientation. Biomechanical assessment revealed a high predisposition to stretch-induced damage in fiber bundles of R349P mice. Notably, Ca2+-sensitivity and passive myofibrillar tension were decreased in heterozygous fiber bundles, but increased in homozygous fiber bundles compared to wildtype mice. In a parallel approach, we generated and subsequently subjected immortalized heterozygous R349P desmin knock-in myoblasts to magnetic tweezer experiments that revealed a significantly increased sarcolemmal lateral stiffness. Our data suggest that mutated desmin already markedly impedes myocyte structure and function at pre-symptomatic stages of myofibrillar myopathies.
- University of Cologne Germany
- University Hospitals of the Ruhr-University of Bochum Germany
- Institut für Neuropathologie Germany
- University of Erlangen-Nuremberg Germany
- BG University Hospital Bergmannsheil GmbH Germany
Science, Myoblasts, Skeletal, Q, R, Mice, Transgenic, Article, Biomechanical Phenomena, Desmin, Myofibrils, Mutation, Medicine, Animals, Calcium Signaling, Gene Knock-In Techniques, Muscle, Skeletal, Cells, Cultured, Muscle Contraction
Science, Myoblasts, Skeletal, Q, R, Mice, Transgenic, Article, Biomechanical Phenomena, Desmin, Myofibrils, Mutation, Medicine, Animals, Calcium Signaling, Gene Knock-In Techniques, Muscle, Skeletal, Cells, Cultured, Muscle Contraction
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