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Updated: May 4, 2026

Assessing Functional Performance in the Mdx Mouse Model
Published on: March 27, 2014
Nifedipine treatment reduces resting calcium concentration, oxidative and apoptotic gene expression, and improves
Francisco Altamirano1, Denisse Valladares2, Carlos Henríquez-Olguín2
1Centro de Estudios Moleculares de la Célula, Instituto de Ciencias Biomédicas, Facultad de Medicina, Universidad de Chile, Santiago, Chile ; Department of Molecular Biosciences, School of Veterinary Medicine, University of California Davis, Davis, California, United States of America.
Abstract:
Duchenne Muscular Dystrophy (DMD) is a recessive X-linked genetic disease, caused by mutations in the gene encoding dystrophin. DMD is characterized in humans and in mdx mice by a severe and progressive destruction of muscle fibers, inflammation, oxidative/nitrosative stress, and cell death. In mdx muscle fibers, we have shown that basal ATP release is increased and that extracellular ATP stimulation is pro-apoptotic. In normal fibers, depolarization-induced ATP release is blocked by nifedipine, leading us to study the potential therapeutic effect of nifedipine in mdx muscles and its relation with extracellular ATP signaling. Acute exposure to nifedipine (10 µM) decreased [Ca(2+)]r, NF-κB activity and iNOS expression in mdx myotubes. In addition, 6-week-old mdx mice were treated with daily intraperitoneal injections of nifedipine, 1 mg/Kg for 1 week. This treatment lowered the [Ca(2+)]r measured in vivo in the mdx vastus lateralis. We demonstrated that extracellular ATP levels were higher in adult mdx flexor digitorum brevis (FDB) fibers and can be significantly reduced after 1 week of treatment with nifedipine. Interestingly, acute treatment of mdx FDB fibers with apyrase, an enzyme that completely degrades extracellular ATP to AMP, reduced [Ca(2+)]r to a similar extent as was seen in FDB fibers after 1-week of nifedipine treatment. Moreover, we demonstrated that nifedipine treatment reduced mRNA levels of pro-oxidative/nitrosative (iNOS and gp91(phox)/p47(phox) NOX2 subunits) and pro-apoptotic (Bax) genes in mdx diaphragm muscles and lowered serum creatine kinase (CK) levels. In addition, nifedipine treatment increased muscle strength assessed by the inverted grip-hanging test and exercise tolerance measured with forced swimming test in mdx mice. We hypothesize that nifedipine reduces basal ATP release, thereby decreasing purinergic receptor activation, which in turn reduces [Ca(2+)]r in mdx skeletal muscle cells. The results in this work open new perspectives towards possible targets for pharmacological approaches to treat DMD.
Insights
Nifedipine treatment reduced extracellular ATP and calcium levels in Duchenne Muscular Dystrophy (DMD) mouse models. This improved muscle strength and exercise tolerance, suggesting a potential therapeutic avenue for DMD.
Area of Science:
- Biomedical Sciences
- Genetics and Molecular Biology
- Pharmacology
Background:
- Duchenne Muscular Dystrophy (DMD) is a severe genetic disorder characterized by progressive muscle fiber destruction.
- Increased extracellular ATP and calcium signaling contribute to pathology in DMD models.
- Nifedipine's effect on calcium channels suggests potential therapeutic benefits.
Purpose of the Study:
- To investigate the therapeutic potential of nifedipine in a mouse model of Duchenne Muscular Dystrophy (mdx mice).
- To explore the relationship between nifedipine treatment, extracellular ATP signaling, and intracellular calcium levels in mdx muscles.
- To assess the impact of nifedipine on key pathological markers and functional outcomes in mdx mice.
Main Methods:
- Acute and chronic administration of nifedipine to mdx mice and isolated mdx muscle fibers.
- Measurement of intracellular calcium ([Ca(2+)]r), extracellular ATP levels, and NF-κB activity.
- Assessment of gene expression (iNOS, NOX2 subunits, Bax), serum creatine kinase (CK) levels, muscle strength, and exercise tolerance.
Main Results:
- Nifedipine treatment reduced [Ca(2+)]r, NF-κB activity, and iNOS expression in mdx myotubes and muscles.
- Chronic nifedipine administration lowered extracellular ATP levels and [Ca(2+)]r in mdx muscle fibers.
- Nifedipine treatment decreased pro-oxidative and pro-apoptotic gene expression, reduced serum CK levels, and improved muscle strength and exercise tolerance in mdx mice.
Conclusions:
- Nifedipine effectively ameliorates key pathological features and functional deficits in a mouse model of Duchenne Muscular Dystrophy.
- The therapeutic effects of nifedipine may be mediated by reducing basal ATP release and subsequent purinergic receptor activation, leading to decreased intracellular calcium.
- These findings highlight nifedipine and extracellular ATP signaling as potential targets for novel pharmacological interventions for DMD.
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