Related Experiment Video
Updated: May 3, 2026

Assessing Functional Performance in the Mdx Mouse Model
Published on: March 27, 2014
Dystrophic changes in extraocular muscles after gamma irradiation in mdx:utrophin(+/-) mice
Abby A McDonald1, Matthew D Kunz1, Linda K McLoon1
1Department of Ophthalmology and Visual Neurosciences, and Graduate Program in Molecular, Cellular, Developmental Biology and Genetics, University of Minnesota, Minneapolis, Minnesota, United States of America.
Abstract:
Extraocular muscles (EOM) have a strikingly different disease profile than limb skeletal muscles. It has long been known that they are spared in Duchenne (DMD) and other forms of muscular dystrophy. Despite many studies, the cause for this sparing is not understood. We have proposed that differences in myogenic precursor cell properties in EOM maintain normal morphology over the lifetime of individuals with DMD due to either greater proliferative potential or greater resistance to injury. This hypothesis was tested by exposing wild type and mdx:utrophin(+/-) (het) mouse EOM and limb skeletal muscles to 18 Gy gamma irradiation, a dose known to inhibit satellite cell proliferation in limb muscles. As expected, over time het limb skeletal muscles displayed reduced central nucleation mirrored by a reduction in Pax7-positive cells, demonstrating a significant loss in regenerative potential. In contrast, in the first month post-irradiation in the het EOM, myofiber cross-sectional areas first decreased, then increased, but ultimately returned to normal compared to non-irradiated het EOM. Central nucleation significantly increased in the first post-irradiation month, resembling the dystrophic limb phenotype. This correlated with decreased EECD34 stem cells and a concomitant increase and subsequent return to normalcy of both Pax7 and Pitx2-positive cell density. By two months, normal het EOM morphology returned. It appears that irradiation disrupts the normal method of EOM remodeling, which react paradoxically to produce increased numbers of myogenic precursor cells. This suggests that the EOM contain myogenic precursor cell types resistant to 18 Gy gamma irradiation, allowing return to normal morphology 2 months post-irradiation. This supports our hypothesis that ongoing proliferation of specialized regenerative populations in the het EOM actively maintains normal EOM morphology in DMD. Ongoing studies are working to define the differences in the myogenic precursor cells in EOM as well as the cellular milieu in which they reside.
Insights
Extraocular muscles (EOM) resist damage better than limb muscles in muscular dystrophy models. EOM possess unique regenerative cells that maintain normal muscle structure, unlike limb muscles, even after injury.
Area of Science:
- Muscle Biology
- Regenerative Medicine
- Neuromuscular Disorders
Background:
- Extraocular muscles (EOM) exhibit a distinct disease profile compared to limb skeletal muscles, notably being spared in Duchenne muscular dystrophy (DMD).
- The underlying mechanisms for this sparing effect in EOM remain largely unknown.
- Previous hypotheses suggest unique myogenic precursor cell properties in EOM contribute to their resilience.
Purpose of the Study:
- To investigate the hypothesis that differences in myogenic precursor cell properties in EOM confer resistance to injury and maintain normal morphology in DMD.
- To compare the regenerative response of EOM and limb skeletal muscles to irradiation-induced injury in a mouse model of muscular dystrophy.
Main Methods:
- Wild type and mdx:utrophin(+/-) (het) mice were subjected to 18 Gy gamma irradiation in EOM and limb skeletal muscles.
- Regenerative potential was assessed by monitoring myofiber cross-sectional area, central nucleation, and the density of specific cell populations (Pax7, Pitx2, EECD34).
Main Results:
- Irradiated het limb muscles showed reduced regeneration and fewer Pax7-positive cells, indicating loss of regenerative potential.
- Het EOM initially exhibited decreased myofiber size and increased central nucleation, but returned to normal morphology within two months post-irradiation.
- EOM showed transient changes in stem cell populations (decreased EECD34, increased Pax7 and Pitx2) that normalized by two months, suggesting a paradoxical regenerative response.
Conclusions:
- EOM contain myogenic precursor cells with resistance to 18 Gy gamma irradiation, enabling the return to normal morphology.
- This resistance supports the hypothesis that specialized regenerative cell populations in EOM actively maintain normal morphology in DMD.
- Further research is needed to define the specific properties of EOM myogenic precursor cells and their cellular environment.
More Related Videos
06:52Behavioral and Locomotor Measurements Using an Open Field Activity Monitoring System for Skeletal Muscle Diseases
Published on: September 29, 2014
14:10Isometric and Eccentric Force Generation Assessment of Skeletal Muscles Isolated from Murine Models of Muscular Dystrophies
Published on: January 31, 2013