A novel mutation in the glycogen synthase 2 gene in a child with glycogen storage disease type 0

Ana Priscila Soggia1, Maria Lúcia Correa-Giannella, Maria Angela Henriques Fortes

  • 1Laboratório de Endocrinologia Celular e Molecular LIM-25, Faculdade de Medicina da Universidade de São Paulo, Dr Arnaldo Street, 455, room 4305, São Paulo, Brasil.

BMC Medical Genetics
|January 7, 2010
PubMed

Insights

Glycogen storage disease type 0, a genetic disorder affecting hepatic glycogen synthase, presents with hypoglycemia and hyperglycemia. New GYS2 mutations were identified, suggesting carrier status may impact metabolism under certain conditions.

Area of Science:

  • Genetics
  • Metabolic Disorders
  • Biochemistry

Background:

  • Glycogen storage disease type 0 (GSD0) is an autosomal recessive disorder.
  • It manifests in infancy or early childhood with ketotic hypoglycemia and postprandial hyperglycemia.
  • Mutations in the GYS2 gene, encoding hepatic glycogen synthase, reduce liver glycogen storage.

Observation:

  • A patient with GSD0 was found to be compound heterozygous for a known nonsense mutation and a novel frameshift mutation in the GYS2 gene.
  • The novel mutation likely results in a significant loss of the protein's C-terminal domain.
  • Parental metabolic profiles were assessed, revealing glucose intolerance in the mother and a history of alcohol-induced hypoglycemia in the father.

Findings:

  • The study expands the known spectrum of GYS2 mutations associated with GSD0.
  • A novel frameshift mutation (966_967delGA/insC) was identified in the GYS2 gene.
  • The identified mutations lead to a reduction in hepatic glycogen synthase activity and liver glycogen storage.

Implications:

  • The findings suggest that haploinsufficiency of GYS2 may contribute to metabolic abnormalities in heterozygous carriers.
  • Predisposing conditions, such as a family history of diabetes or alcohol consumption, may unmask metabolic issues in carriers.
  • This research deepens the understanding of GSD0 pathogenesis and carrier implications.
Abstract

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