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Dysferlin deficiency shows compensatory induction of Rab27A/Slp2a that may contribute to inflammatory onset
Akanchha Kesari1, Mitsunori Fukuda, Susan Knoblach
1Research Center for Genetic Medicine, Children's National Medical Center, Washington DC 20010, USA.
Abstract:
Mutations in the dysferlin gene cause limb girdle muscular dystrophy 2B (LGMD2B) and Miyoshi myopathy. Dysferlin-deficient cells show abnormalities in vesicular traffic and membrane repair although onset of symptoms is not commonly seen until the late teenage years and is often associated with subacute onset and marked muscle inflammation. To identify molecular networks specific to dysferlin-deficient muscle that might explain disease pathogenesis, muscle mRNA profiles from 10 mutation-positive LGMD2B/MM patients were compared with a disease control [LGMD2I; (n = 9)], and normal muscle samples (n = 11). Query of inflammatory pathways suggested LGMD2B-specific increases in co-stimulatory signaling between dendritic cells and T cells (CD86, CD28, and CTLA4), associated with localized expression of both versican and tenascin. LGMD2B muscle also showed an increase in vesicular trafficking pathway proteins not normally observed in muscle (synaptotagmin-like protein Slp2a/SYTL2 and the small GTPase Rab27A). We propose that Rab27A/Slp2a expression in LGMD2B muscle provides a compensatory vesicular trafficking pathway that is able to repair membrane damage in the absence of dysferlin. However, this same pathway may release endocytotic vesicle contents, resulting in an inflammatory microenvironment. As dysferlin deficiency has been shown to enhance phagocytosis by macrophages, together with our findings of abnormal myofiber endocytosis pathways and dendritic-T cell activation markers, these results suggest a model of immune and inflammatory network over-stimulation that may explain the subacute inflammatory presentation.
Insights
Mutations in the dysferlin gene lead to muscular dystrophy. Researchers found that a compensatory pathway involving Rab27A/Slp2a may cause inflammation in dysferlin-deficient muscle, explaining disease presentation.
Area of Science:
- Molecular biology
- Immunology
- Genetics
Background:
- Mutations in the dysferlin gene cause limb girdle muscular dystrophy 2B (LGMD2B) and Miyoshi myopathy.
- Dysferlin deficiency leads to cellular defects in vesicular traffic and membrane repair.
- Disease onset is typically in late teens with subacute inflammation.
Purpose of the Study:
- To identify molecular networks specific to dysferlin-deficient muscle.
- To understand the pathogenesis of LGMD2B and Miyoshi myopathy.
- To elucidate the mechanisms behind the inflammatory presentation.
Main Methods:
- Comparison of muscle mRNA profiles from LGMD2B/MM patients, disease controls (LGMD2I), and normal individuals.
- Analysis of inflammatory and vesicular trafficking pathways.
- Investigated co-stimulatory signaling molecules (CD86, CD28, CTLA4), versican, tenascin, synaptotagmin-like protein Slp2a/SYTL2, and small GTPase Rab27A.
Main Results:
- LGMD2B muscle showed increased co-stimulatory signaling between dendritic cells and T cells.
- Localized expression of versican and tenascin was observed in LGMD2B muscle.
- Increased expression of vesicular trafficking proteins Rab27A and Slp2a/SYTL2, not typically found in muscle, was detected.
Conclusions:
- Rab27A/Slp2a may act as a compensatory pathway for membrane repair in dysferlin-deficient muscle.
- This pathway might contribute to inflammation by releasing endocytotic vesicle contents.
- Findings suggest a model of immune and inflammatory network over-stimulation contributing to the subacute inflammatory presentation in LGMD2B/MM.
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