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Published on: September 12, 2020
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.
Abstract:
We identified a novel spontaneous mutant mouse showing motor symptoms that are similar to those of the dystonia musculorum (dt) mouse. The observations suggested that the mutant mice inherited the mild dt phenotype as an autosomal recessive trait. Linkage analysis showed that the causative gene was located near D1Mit373 and D1Mit410 microsatellite markers on chromosome 1, which are close to the dystonin (Dst) gene locus. To investigate whether Dst is the causative gene of the novel mutant phenotype, we crossed the mutant with Dst gene trap (DstGt) mice. Compound heterozygotes showed a typical dt phenotype with sensory degeneration and progressive motor symptoms. DNA sequencing analysis identified a nonsense mutation within the spectrin repeats of the plakin domain. The novel mutant allele was named dt23Rbrc. Motor abnormalities in homozygous dt23Rbrc/dt23Rbrc mice are not as severe as homozygous DstGt/DstGt mice. Histological analyses showed abnormal neurofilament (NF) accumulation in the nervous system of homozygous dt23Rbrc/dt23Rbrc mice, which is characteristic of the dt phenotype. We mapped the distribution of abnormal NF-accumulated neurons in the brain and found that they were located specifically in the brainstem, spinal cord, and in regions such as the vestibular nucleus, reticular nucleus, and red nucleus, which are implicated in posture and motor coordination pathways. The quantification of abnormal NF accumulation in the cytoplasm and spheroids (axons) of neurons showed that abnormal NF immunoreactivity was lower in homozygous dt23Rbrc/dt23Rbrc mice than in homozygous DstGt/DstGt mice. Therefore, we have identified a novel hypomorphic allele of dt, which causes histological abnormalities in the central nervous system that may account for the abnormal motor phenotype. This novel spontaneously occurring mutant may become a good model of hereditary sensory and autonomic neuropathy type 6, which is caused by mutations in the human DST gene.
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.

