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A complex rearrangement in GBE1 causes both perinatal hypoglycemic collapse and late-juvenile-onset neuromuscular degeneration in glycogen storage disease type IV of Norwegian forest cats

  1. Author:
    Fyfe, J. C.
    Kurzhals, R. L.
    Hawkins, M. G.
    Wang, P.
    Yuhki, N.
    Giger, U.
    Van Winkle, T. J.
    Haskins, M. E.
    Patterson, D. F.
    Henthorn, P. S.
  2. Author Address

    Michigan State Univ, Coll Vet Med, Lab Comparat Med Genet, E Lansing, MI 48824 USA. Univ Penn, Sch Vet Med, Med Genet Sect, Philadelphia, PA 19104 USA. NCI, Lab Genom Divers, Frederick, MD 21702 USA. Univ Penn, Sch Vet Med, Dept Pathobiol, Philadelphia, PA 19104 USA.;Fyfe, JC, Michigan State Univ, Coll Vet Med, Lab Comparat Med Genet, E Lansing, MI 48824 USA.;fyfe@cvm.msu.edu
    1. Year: 2007
    2. Date: Apr
  1. Journal: Molecular Genetics and Metabolism
    1. 90
    2. 4
    3. Pages: 383-392
  2. Type of Article: Article
  3. ISSN: 1096-7192
  1. Abstract:

    Deficiency of glycogen branching enzyme (GBE) activity causes glycogen storage disease type IV (GSD IV), an autosomal recessive error of metabolism. Abnormal glycogen accumulates in myocytes, hepatocytes, and neurons, causing variably progressive, benign to lethal organ dysfunctions. A naturally occurring orthologue of human GSD IV was described previously in Norwegian forest cats (NFC). Here, we report that while most affected kittens die at or soon after birth, presumably due to hypoglycemia, survivors of the perinatal period appear clinically normal until onset of progressive neuromuscular degeneration at 5 months of age. Molecular investigation of affected cats revealed abnormally spliced GBE1 mRNA products and lack of GBE cross-reactive material in liver and muscle. Affected cats are homozygous for a complex rearrangement of genomic DNA in GBE1, constituted by a 334 bp insertion at the site of a 6.2kb deletion that extends from intron 11 to intron 12 (g.IVS11+1552(-)IVS12-1339 de16.2kb ins334 bp), removing exon 12. An allele-specific, PCR-based test demonstrates that the rearrangement segregates with the disease in the GSD IV kindred and is not found in unrelated normal cats. Screening of 402 privately owned NFC revealed 58 carriers and 4 affected cats. The molecular characterization of feline GSD IV will enhance further studies of GSD IV pathophysiology and development of novel therapies in this unique animal model. (c) 2006 Elsevier Inc. All rights reserved.

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External Sources

  1. DOI: 10.1016/j.ymgme.2006.12.003
  2. WOS: 000246079200006

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