» Articles » PMID: 28498977

Consequences of MEGF10 Deficiency on Myoblast Function and Notch1 Interactions

Overview
Journal Hum Mol Genet
Date 2017 May 13
PMID 28498977
Citations 24
Authors
Affiliations
Soon will be listed here.
Abstract

Mutations in MEGF10 cause early onset myopathy, areflexia, respiratory distress, and dysphagia (EMARDD), a rare congenital muscle disease, but the pathogenic mechanisms remain largely unknown. We demonstrate that short hairpin RNA (shRNA)-mediated knockdown of Megf10, as well as overexpression of the pathogenic human p.C774R mutation, leads to impaired proliferation and migration of C2C12 cells. Myoblasts from Megf10-/- mice and Megf10-/-/mdx double knockout (dko) mice also show impaired proliferation and migration compared to myoblasts from wild type and mdx mice, whereas the dko mice show histological abnormalities that are not observed in either single mutant mouse. Cell proliferation and migration are known to be regulated by the Notch receptor, which plays an essential role in myogenesis. Reciprocal co-immunoprecipitation studies show that Megf10 and Notch1 interact via their respective intracellular domains. These interactions are impaired by the pathogenic p.C774R mutation. Megf10 regulation of myoblast function appears to be mediated at least in part via interactions with key components of the Notch signaling pathway, and defects in these interactions may contribute to the pathogenesis of EMARDD.

Citing Articles

The role of MEGF10 in myoblast fusion and hypertrophic response to overload of skeletal muscle.

Richardson L, Hughes R, Johnson C, Egginton S, Peckham M J Muscle Res Cell Motil. 2025; .

PMID: 39825147 DOI: 10.1007/s10974-024-09686-4.


PEAR1 Promotes Myoblast Proliferation Through Notch Signaling Pathway.

Zhao Y, Zhang L, Hao R, Li S, Li S, Shi S Biology (Basel). 2025; 13(12.

PMID: 39765730 PMC: 11673774. DOI: 10.3390/biology13121063.


Cellular and molecular alterations to muscles and neuromuscular synapses in a mouse model of MEGF10-related myopathy.

Juros D, Avila M, Hastings R, Pendragon A, Wilson L, Kay J Skelet Muscle. 2024; 14(1):10.

PMID: 38760872 PMC: 11100254. DOI: 10.1186/s13395-024-00342-6.


Disease modeling and gene correction of LGMDR21 iPSCs elucidates the role of POGLUT1 in skeletal muscle maintenance, regeneration, and the satellite cell niche.

Ortiz-Vitali J, Wu J, Xu N, Shieh A, Niknejad N, Takeuchi M Mol Ther Nucleic Acids. 2023; 33:683-697.

PMID: 37650119 PMC: 10462830. DOI: 10.1016/j.omtn.2023.07.037.


Surfaceome Profiling of Cell Lines and Patient-Derived Xenografts Confirm FGFR4, NCAM1, CD276, and Highlight AGRL2, JAM3, and L1CAM as Surface Targets for Rhabdomyosarcoma.

Timpanaro A, Piccand C, Uldry A, Bode P, Dzhumashev D, Sala R Int J Mol Sci. 2023; 24(3).

PMID: 36768928 PMC: 9917031. DOI: 10.3390/ijms24032601.


References
1.
Hulkower K, Herber R . Cell migration and invasion assays as tools for drug discovery. Pharmaceutics. 2013; 3(1):107-24. PMC: 3857040. DOI: 10.3390/pharmaceutics3010107. View

2.
Connolly A, Keeling R, Mehta S, Pestronk A, Sanes J . Three mouse models of muscular dystrophy: the natural history of strength and fatigue in dystrophin-, dystrophin/utrophin-, and laminin alpha2-deficient mice. Neuromuscul Disord. 2001; 11(8):703-12. DOI: 10.1016/s0960-8966(01)00232-2. View

3.
Dumont N, Wang Y, von Maltzahn J, Pasut A, Bentzinger C, Brun C . Dystrophin expression in muscle stem cells regulates their polarity and asymmetric division. Nat Med. 2015; 21(12):1455-63. PMC: 4839960. DOI: 10.1038/nm.3990. View

4.
Eiraku M, Tohgo A, Ono K, Kaneko M, Fujishima K, Hirano T . DNER acts as a neuron-specific Notch ligand during Bergmann glial development. Nat Neurosci. 2005; 8(7):873-80. DOI: 10.1038/nn1492. View

5.
Poole A, Hebert M . SMN and coilin negatively regulate dyskerin association with telomerase RNA. Biol Open. 2016; 5(6):726-35. PMC: 4920197. DOI: 10.1242/bio.018804. View