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Published on: September 29, 2014
Biochemical and Functional Comparisons of mdx and Sgcg(-/-) Muscular Dystrophy Mouse Models
Nathan W Roberts1, Jenan Holley-Cuthrell1, Magdalis Gonzalez-Vega1
1Department of Physiology and Biophysics, The University of Illinois at Chicago, Chicago, IL 60612, USA.
Abstract:
Mouse models have provided an essential platform to investigate facets of human diseases, from etiology, diagnosis, and prognosis, to potential treatments. Muscular dystrophy (MD) is the most common human genetic disease occurring in approximately 1 in 2500 births. The mdx mouse, which is dystrophin-deficient, has long been used to model this disease. However, this mouse strain displays a rather mild disease course compared to human patients. The mdx mice have been bred to additional genetically engineered mice to worsen the disease. Alternatively, other genes which cause human MD have been genetically disrupted in mice. We are now comparing disease progression from one of these alternative gene disruptions, the γ-sarcoglycan null mouse Sgcg(-/-) on the DBA2/J background, to the mdx mouse line. This paper aims to assess the time-course severity of the disease in the mouse models and determine which is best for MD research. The Sgcg(-/-) mice have a more severe phenotype than the mdx mice. Muscle function was assessed by plethysmography and echocardiography. Histologically the Sgcg(-/-) mice displayed increased fibrosis and variable fiber size. By quantitative Evan's blue dye uptake and hydroxyproline content two key disease determinants, membrane permeability and fibrosis respectively, were also proven worse in the Sgcg(-/-) mice.
Insights
The gamma-sarcoglycan null mouse (Sgcg(-/-)) shows a more severe muscular dystrophy (MD) phenotype than the standard mdx mouse model. This Sgcg(-/-) mouse is a better model for studying MD progression and potential treatments.
Area of Science:
- Biomedical Research
- Genetics
- Animal Models
Background:
- Mouse models are crucial for studying human diseases like muscular dystrophy (MD).
- The mdx mouse is a common model but exhibits a mild disease course.
- Alternative mouse models are being developed to better represent human MD.
Purpose of the Study:
- To compare disease severity and progression between Sgcg(-/-) and mdx mouse models of muscular dystrophy.
- To determine the optimal mouse model for muscular dystrophy research.
Main Methods:
- Assessed muscle function using plethysmography and echocardiography.
- Evaluated histological changes including fibrosis and fiber size variability.
- Quantified membrane permeability and fibrosis using Evan's blue dye uptake and hydroxyproline content.
Main Results:
- Sgcg(-/-) mice exhibited a more severe muscular dystrophy phenotype compared to mdx mice.
- Histological analysis revealed increased fibrosis and variable fiber size in Sgcg(-/-) mice.
- Sgcg(-/-) mice showed significantly higher membrane permeability and fibrosis levels.
Conclusions:
- The gamma-sarcoglycan null mouse (Sgcg(-/-)) presents a more severe and thus potentially more relevant model for muscular dystrophy research than the mdx mouse.
- Sgcg(-/-) mice offer a valuable platform for investigating MD etiology, progression, and therapeutic strategies.

