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Behavioral and Locomotor Measurements Using an Open Field Activity Monitoring System for Skeletal Muscle Diseases
Published on: September 29, 2014
Distinct systemic metabolic features in limb-girdle muscular dystrophy type R1 mouse models as a potential early
Fumiko Shinkai-Ouchi1, Yoshiki Itoh1, Mayumi Shindo2
1Calpain Project, Department of Basic Medical Sciences, Tokyo Metropolitan Institute of Medical Science (TMiMS), 2-1-6 Kamikitazawa, Setagaya-ku, Tokyo 156-8506, Japan.
Abstract:
Limb-girdle muscular dystrophy type R1 (LGMDR1, formerly LGMD2A) is a genetic disorder caused by mutations in CAPN3 and is characterized by progressive proximal limb muscle weakness. The CAPN3 gene product, calpain-3/CAPN3/p94, is a member of the intracellular cysteine protease superfamily predominantly expressed in the skeletal muscle. LGMDR1 pathogenesis has been investigated separately using mouse models: CAPN3:C129S [knock-in (KI)] mice, which express a proteolytically inactive variant, and CAPN3 knockout (KO) mice. These studies propose that CAPN3 bears both proteolytic activity-dependent and -independent functions and that the loss of either or both affects phenotypes. Here, we report a side-by-side, long-term analysis of KI and KO mice to comprehensively understand the LGMDR1 pathology in terms of CAPN3 function. Their physiques were comparable to those of wild-type animals, but age-dependent LGMDR1 symptoms were observed by histochemical analysis, with more severe symptoms observed in KO mice. Quantitative muscle proteomics and gene ontology analyses revealed more diverse changes in the KO mice than in the KI mice. Of the associated terms, "metabolic process" was the most affected across the genotype and age groups. Metabolomic analysis suggested that the skeletal muscles of these mice had an imbalance in the branched-chain amino acid catabolic pathway. Furthermore, a reduction in lipids and glycogen was observed in the liver of KO mice, suggesting that a systemic energy deficit occurs during CAPN3 deficiency. Altogether, our results suggest that muscular dysfunction in LGMDR1 models is associated with compromised systemic energy balance and that the extent of perturbation is implicated in disease severity.
Insights
Limb-girdle muscular dystrophy type R1 (LGMDR1) involves calpain-3 (CAPN3) dysfunction. This study reveals CAPN3 deficiency disrupts systemic energy balance, worsening LGMDR1 symptoms, particularly in knockout models.
Area of Science:
- Biochemistry
- Genetics
- Molecular Biology
Background:
- Limb-girdle muscular dystrophy type R1 (LGMDR1) stems from mutations in the CAPN3 gene, leading to progressive muscle weakness.
- Calpain-3 (CAPN3), a skeletal muscle protease, has both activity-dependent and -independent roles in cellular function.
- Previous studies used separate mouse models (knock-in and knockout) to investigate LGMDR1 pathology.
Purpose of the Study:
- To conduct a comprehensive, side-by-side analysis of knock-in (KI) and knockout (KO) mouse models of LGMDR1.
- To elucidate the functional roles of calpain-3 (CAPN3) in LGMDR1 pathogenesis.
- To understand the impact of CAPN3 deficiency on systemic energy metabolism and disease severity.
Main Methods:
- Long-term comparative analysis of CAPN3 KI and KO mice.
- Histochemical analysis to assess muscle pathology.
- Quantitative muscle proteomics and gene ontology analysis.
- Metabolomic analysis of skeletal muscle and liver tissues.
Main Results:
- Both KI and KO mice exhibited age-dependent LGMDR1 symptoms, with KO mice showing more severe pathology.
- Proteomic and gene ontology analyses revealed broader molecular changes in KO mice compared to KI mice.
- Skeletal muscle displayed an imbalanced branched-chain amino acid catabolic pathway, and liver showed reduced lipids and glycogen in KO mice, indicating systemic energy deficit.
Conclusions:
- Muscular dysfunction in LGMDR1 models is linked to compromised systemic energy balance.
- The severity of LGMDR1 pathology correlates with the extent of energy metabolism perturbation.
- Calpain-3 (CAPN3) plays a critical role in maintaining systemic energy homeostasis, beyond its direct proteolytic functions in muscle.

