Although myotonic dystrophy (DM) is the most prevalent muscular dystrophy in adults, a more severe form of this neuromuscular disease is congenital DM (COM). While the two characterized types of adult-onset DM, DM1 and DM2, are caused by unstable microsatellite (CTG)n and (CCTG)n expansions in the DMPK and ZNF9 genes, respectively, CDM is only associated with >1,000 CTG repeats in the DMPK gene. The longterm goals of the proposed research are to elucidate the molecular events which result in CDM and use this information to develop novel therapeutic strategies for this disease. According to the RNA dominance model, DM is an RNA gain-of-function disease in which mutant DMPK and ZNF9 RNAs are retained in the nucleus where they inhibit the functions of the muscleblind-like (MBNL) proteins. MBNL proteins are alternative splicing factors and current evidence suggests that DM disease is caused by the retention of neonatal protein isoforms in the adult. The objective of this proposal is to use both knockout and transgenic mouse models to extend the RNA dominance model to CDM using four experimental aims. First, the hypothesis that specific Mbnl proteins are sequestered during embryogenesis by (CUG)n expansions will be tested using a new transgenic mouse model for CDM. Second, CDM is characterized by neonatal hypotonia and mental retardation so potential roles for Mbnl proteins in the regulation of pre-mRNA processing during embryonic muscle and brain development will be investigated. Third, CDM is only associated with DMPK CTG repeat expansions and previous studies have reported changes in the expression of DMPK, as well as the linked genes DMWD and SIX5, in CDM. Therefore, several mouse knockout lines will be generated to test the hypothesis that CDM results from coordinate loss of MBNL and one, or several, of these DMPK associated genes. Fourth, overexpression of DMPK RNA inhibits myogenic differentiation so the hypothesis that CDM results from co-sequestration of MBNL and DMPK RNA-binding proteins will be evaluated.

Agency
National Institute of Health (NIH)
Institute
National Institute of Arthritis and Musculoskeletal and Skin Diseases (NIAMS)
Type
Research Project (R01)
Project #
5R01AR046799-07
Application #
7097466
Study Section
Skeletal Muscle and Exercise Physiology Study Section (SMEP)
Program Officer
Nuckolls, Glen H
Project Start
2000-04-01
Project End
2010-03-31
Budget Start
2006-04-01
Budget End
2007-03-31
Support Year
7
Fiscal Year
2006
Total Cost
$312,578
Indirect Cost
Name
University of Florida
Department
Genetics
Type
Schools of Medicine
DUNS #
969663814
City
Gainesville
State
FL
Country
United States
Zip Code
32611
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Davis, Jennifer; Salomonis, Nathan; Ghearing, Natasha et al. (2015) MBNL1-mediated regulation of differentiation RNAs promotes myofibroblast transformation and the fibrotic response. Nat Commun 6:10084
Rau, Frédérique; Lainé, Jeanne; Ramanoudjame, Laetitita et al. (2015) Abnormal splicing switch of DMD's penultimate exon compromises muscle fibre maintenance in myotonic dystrophy. Nat Commun 6:7205
Batra, Ranjan; Manchanda, Mini; Swanson, Maurice S (2015) Global insights into alternative polyadenylation regulation. RNA Biol 12:597-602
Batra, Ranjan; Charizanis, Konstantinos; Manchanda, Mini et al. (2014) Loss of MBNL leads to disruption of developmentally regulated alternative polyadenylation in RNA-mediated disease. Mol Cell 56:311-322
Mohan, Apoorva; Goodwin, Marianne; Swanson, Maurice S (2014) RNA-protein interactions in unstable microsatellite diseases. Brain Res 1584:3-14
Goodwin, Marianne; Swanson, Maurice S (2014) RNA-binding protein misregulation in microsatellite expansion disorders. Adv Exp Med Biol 825:353-88
Lee, Kuang-Yung; Li, Moyi; Manchanda, Mini et al. (2013) Compound loss of muscleblind-like function in myotonic dystrophy. EMBO Mol Med 5:1887-900

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