ACTN2 mutations cause "Multiple structured Core Disease" (MsCD)
ACTA NEUROPATHOLOGICA
Authors: Lornage, Xaviere; Romero, Norma B.; Grosgogeat, Claire A.; Malfatti, Edoardo; Donkervoort, Sandra; Marchetti, Michael M.; Neuhaus, Sarah B.; Foley, A. Reghan; Labasse, Clemence; Schneider, Raphael; Carlier, Robert Y.; Chao, Katherine R.; Medne, Livija; Deleuze, Jean-Francois; Orlikowski, David; Bonnemann, Carsten G.; Gupta, Vandana A.; Fardeau, Michel; Bohm, Johann; Laporte, Jocelyn
Abstract
The identification of genes implicated in myopathies is essential for diagnosis and for revealing novel therapeutic targets. Here we characterize a novel subclass of congenital myopathy at the morphological, molecular, and functional level. Through exome sequencing, we identified de novo ACTN2 mutations, a missense and a deletion, in two unrelated patients presenting with progressive early-onset muscle weakness and respiratory involvement. Morphological and ultrastructural analyses of muscle biopsies revealed a distinctive pattern with the presence of muscle fibers containing small structured cores and jagged Z-lines. Deeper analysis of the missense mutation revealed mutant alpha-actinin-2 properly localized to the Z-line in differentiating myotubes and its level was not altered in muscle biopsy. Modelling of the disease in zebrafish and mice by exogenous expression of mutated alpha-actinin-2 recapitulated the abnormal muscle function and structure seen in the patients. Motor deficits were noted in zebrafish, and muscle force was impaired in isolated muscles from AAV-transduced mice. In both models, sarcomeric disorganization was evident, while expression of wild-type alpha-actinin-2 did not result in muscle anomalies. The murine muscles injected with mutant ACTN2 displayed cores and Z-line defects. Dominant ACTN2 mutations were previously associated with cardiomyopathies, and our data demonstrate that specific mutations in the well-known Z-line regulator alpha-actinin-2 can cause a skeletal muscle disorder.
Deficiency of a-actinin-2 (ACTN2) Induces Insulin Resistance
DIABETES
Authors: Miranda, Danielle; Barker, Natalie; Ehrler, Sandra; Hiatt, Nicholas; Mengos, April; Finlayson, Jean; Stubblefield, Tianna; Willis, Wayne T.; Mandarino, Lawrence J.
Abstract