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Updated: Feb 28, 2026

Immunolabelling Myofiber Degeneration in Muscle Biopsies
Published on: December 5, 2019
Functional and structural pathologies in skeletal muscle of a rat model of Duchenne muscular dystrophy
Young Il Lee1,2, Cora C Hart1,2, C Spencer Henley-Beasley2,3
1Department of Pharmacology & Therapeutics, University of Florida College of Medicine, 1200 Newell Dr., Gainesville, FL, 32610, USA.
Background:
Duchenne muscular dystrophy (DMD) is a lethal pediatric degenerative muscle disease for which there is no cure. Robust preclinical models that recapitulate major clinical features of DMD are required to investigate efficacy of potential DMD therapeutics. Rat models of DMD have emerged as promising small animal models to accomplish this; however, there have been no comprehensive studies investigating the functional skeletal muscle decrements associated with the modeling of DMD in rats.
Methods:
CRISPR/Cas9 gene editing was used to generate a dystrophin-deficient Sprague-Dawley muscular dystrophy rat (MDR). Biochemical and immunofluorescent analyses were performed to confirm loss of dystrophin in striated muscles of this rat model. In situ and ex vivo muscle function was assessed in wild-type (WT) and MDR muscles at 3, 6, and 12 months of age, followed by histopathological analyses.
Results:
MDR muscle tissues exhibited loss of full-length dystrophin and reduced content of other dystrophin glycoprotein complex members. MDR extensor digitorum longus (EDL) muscles and diaphragms displayed pronounced and progressive muscle weakness beginning at 3 months of age, compared to WT littermates. EDLs also exhibit susceptibility to eccentric contraction-induced damage. Functional deficits in soleus muscles were less severe and were associated with a right shift in force-frequency relationship. MDR muscles display progressive histopathology including degenerative lesions, fibrosis, regenerative foci, and modest adipose deposition.
Conclusions:
MDR is a preclinical model of DMD that exhibits many translational features of the human disease, including a large dynamic range of muscle decrements, that has high utility for the evaluation of potential therapeutics for DMD.
Insights
A new rat model (MDR) for Duchenne muscular dystrophy (DMD) shows progressive muscle weakness and damage, mirroring human disease features. This model is valuable for testing new DMD therapies.
Area of Science:
- Biomedical Science
- Genetics
- Animal Models
Background:
- Duchenne muscular dystrophy (DMD) is a fatal pediatric disease with no cure.
- Effective preclinical models are crucial for developing DMD therapeutics.
- Previous rat models lacked comprehensive functional analysis.
Purpose of the Study:
- To create and characterize a novel dystrophin-deficient rat model for DMD.
- To assess the functional and histopathological deficits in this model.
Main Methods:
- CRISPR/Cas9 gene editing generated the dystrophin-deficient muscular dystrophy rat (MDR).
- Biochemical and immunofluorescent analyses confirmed dystrophin loss.
- In situ and ex vivo muscle function tests and histopathology were performed on MDR and wild-type (WT) rats at multiple ages.
Main Results:
- MDR rats showed progressive muscle weakness and susceptibility to damage, particularly in EDL muscles and diaphragms.
- Soleus muscles exhibited milder deficits with altered force-frequency relationships.
- Histopathology revealed degenerative lesions, fibrosis, regeneration, and adipose deposition in MDR muscles.
Conclusions:
- The MDR rat is a valuable preclinical model for DMD, exhibiting key translational features.
- Its dynamic range of muscle decrements supports its utility for evaluating DMD therapeutics.
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