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Updated: May 1, 2026

Modeling Myotonic Dystrophy 1 in C2C12 Myoblast Cells
Published on: July 29, 2016
Clinical, pathologic, and mutational spectrum of dystroglycanopathy caused by LARGE mutations
Katherine G Meilleur1, Kristen Zukosky, Livija Medne
1From the National Institute of Nursing Research, Bethesda, Maryland (KGM); National Institute of Neurological Disorders and Stroke, Bethesda, Maryland (KZ, JD, YH, SD, CGB); Children's Hospital of Philadelphia, Philadelphia, Pennsylvania (LM, LBR-A); Division of Pediatric Neurology, Department of Pediatrics, University of Alabama at Birmingham, Birmingham, Alabama (PF); Nemours/Alfred I. duPont Hospital for Children, Wilmington, Delaware (NP-H, MS); Prevention Genetics, Marshfield, Wisconsin (TLW); Pediatric Neurology Department, National Neuroscience Institute (AA), and Division of Medical Genetics, Department of Pediatrics, The Children's Hospital (AWE), King Fahad Medical City; and College of Medicine, King Saud bin Abdulaziz University for Health Sciences (AA,AWE), Riyadh, Kingdom of Saudi Arabia; Department of Pathology, Brigham and Women's Hospital (JAG); and Harvard Medical School (JAG), Boston, Massachusetts; Department of Pathology, Wills Eye Institute, Thomas Jefferson University, Philadelphia, Pennsylvania (RE); Nemours Children's Hospital, Orlando, Florida (RF); and Medical Examiner's Office, Mount Holly, New Jersey (ICH).
Abstract:
Dystroglycanopathies are a subtype of congenital muscular dystrophy of varying severity that can affect the brain and eyes, ranging from Walker-Warburg syndrome with severe brain malformation to milder congenital muscular dystrophy presentations with affected or normal cognition and later onset. Mutations in dystroglycanopathy genes affect a specific glycoepitope on α-dystroglycan; of the 14 genes implicated to date, LARGE encodes the glycosyltransferase that adds the final xylose and glucuronic acid, allowing α-dystroglycan to bind ligands, including laminin 211 and neurexin. Only 11 patients with LARGE mutations have been reported. We report the clinical, neuroimaging, and genetic features of 4 additional patients. We confirm that gross deletions and rearrangements are important mutational mechanisms for LARGE. The brain abnormalities overshadowed the initially mild muscle phenotype in all 4 patients. We present the first comprehensive postnatal neuropathology of the brain, spinal cord, and eyes of a patient with a homozygous LARGE mutation at Cys443. In this patient, polymicrogyria was the predominant cortical malformation; densely festooned polymicrogyria were overlaid by a continuous agyric surface. In view of the severity of these abnormalities, Cys443 may be a functionally important residue in the LARGE protein, whereas the mutation p.Glu509Lys of Patient 1 in this study may confer a milder phenotype. Overall, these results expand the clinical and genetic spectrum of dystroglycanopathy.
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