Characterization of novel dystonia musculorum mutant mice: Implications for central nervous system abnormality

Masao Horie1, Kazuyuki Mekada2, Hiromi Sano3

  • 1Division of Neurobiology and Anatomy, Niigata University, Niigata 951-8510, Japan.

Neurobiology of Disease
|October 4, 2016
PubMed

Insights

Researchers identified a new mouse model, dt^23Rbrc, with a mild dystonia musculorum phenotype. This novel hypomorphic allele of dystonin (Dst) causes neurofilament accumulation and motor deficits, potentially modeling human neuropathy.

Area of Science:

  • Neuroscience
  • Genetics
  • Animal Models

Background:

  • Dystonia musculorum (dt) is a neurological disorder characterized by progressive motor dysfunction.
  • Spontaneous mutations in genes can lead to valuable animal models for studying human diseases.

Purpose of the Study:

  • To identify and characterize a novel spontaneous mouse mutant exhibiting dystonia-like motor symptoms.
  • To determine the genetic basis and phenotypic consequences of this new mutation.

Main Methods:

  • Genetic linkage analysis to map the causative gene.
  • Crossbreeding with existing Dst gene trap mice (DstGt).
  • DNA sequencing to identify the mutation.
  • Histological analysis of neurofilament accumulation.
  • Phenotypic characterization of motor abnormalities.

Main Results:

  • A novel spontaneous mutant mouse (dt^23Rbrc) was identified with a mild dystonia musculorum (dt) phenotype.
  • Linkage analysis localized the causative gene to chromosome 1, near the dystonin (Dst) locus.
  • Compound heterozygotes (mutant x DstGt) displayed a typical dt phenotype.
  • A nonsense mutation in the Dst gene (spectrin repeats of the plakin domain) was identified.
  • Homozygous dt^23Rbrc mice showed less severe motor abnormalities than DstGt/DstGt mice but exhibited abnormal neurofilament accumulation in the central nervous system.

Conclusions:

  • A novel hypomorphic allele of the dystonin (Dst) gene, dt^23Rbrc, was identified.
  • This allele causes histological abnormalities in the central nervous system, leading to motor deficits.
  • The dt^23Rbrc mouse represents a potential model for hereditary sensory and autonomic neuropathy type 6, linked to human DST gene mutations.

Related Concept Videos