Mechanical function of dystrophin in muscle cells.
Open Access
- 1 February 1995
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 128 (3), 355-361
- https://doi.org/10.1083/jcb.128.3.355
Abstract
We have directly measured the contribution of dystrophin to the cortical stiffness of living muscle cells and have demonstrated that lack of dystrophin causes a substantial reduction in stiffness. The inferred molecular structure of dystrophin, its preferential localization underlying the cell surface, and the apparent fragility of muscle cells which lack this protein suggest that dystrophin stabilizes the sarcolemma and protects the myofiber from disruption during contraction. Lacking dystrophin, the muscle cells of persons with Duchenne muscular dystrophy (DMD) are abnormally vulnerable. These facts suggest that muscle cells with dystrophin should be stiffer than similar cells which lack this protein. We have tested this hypothesis by measuring the local stiffness of the membrane skeleton of myotubes cultured from mdx mice and normal controls. Like humans with DMD mdx mice lack dystrophin due to an x-linked mutation and provide a good model for the human disease. Deformability was measured as the resistance to indentation of a small area of the cell surface (to a depth of 1 micron) by a glass probe 1 micron in radius. The stiffness of the membrane skeleton was evaluated as the increment of force (mdyne) per micron of indentation. Normal myotubes with an average stiffness value of 1.23 +/- 0.04 (SE) mdyne/micron were about fourfold stiffer than myotubes cultured from mdx mice (0.34 +/- 0.014 mdyne/micron). We verified by immunofluorescence that both normal and mdx myotubes, which were at a similar developmental stage, expressed sarcomeric myosin, and that dystrophin was detected, diffusely distributed, only in normal, not in mdx myotubes. These results confirm that dystrophin and its associated proteins can reinforce the myotube membrane skeleton by increasing its stiffness and that dystrophin function and, therefore, the efficiency of therapeutic restoration of dystrophin can be assayed through its mechanical effects on muscle cells.Keywords
This publication has 40 references indexed in Scilit:
- Deficiency of the 50K dystrophin-associated glycoprotein in severe childhood autosomal recessive muscular dystrophyNature, 1992
- Primary structure of dystrophin-associated glycoproteins linking dystrophin to the extracellular matrixNature, 1992
- Mechanical properties of normal andmdx mouse sarcolemma: Bearing on function of dystrophinJournal of Muscle Research and Cell Motility, 1991
- What does dystrophin do in normal muscle?Journal of Muscle Research and Cell Motility, 1991
- Human dystrophin expression in mdx mice after intramuscular injection of DNA constructsNature, 1991
- Increased Activity of Calcium Leak Channels in Myotubes of Duchenne Human and mdx Mouse OriginScience, 1990
- Satellite cells from dystrophic (mdx) mouse muscle are stimulated by fibroblast growth factor in vitroDifferentiation, 1988
- Reductions of erythrocyte membrane viscoelastic coefficients reflect spectrin deficiencies in hereditary spherocytosis.Journal of Clinical Investigation, 1988
- The Molecular Basis of Erythrocyte ShapeScience, 1986
- Lymphocyte mechanical response triggered by cross-linking surface receptors.The Journal of cell biology, 1985