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Alteration of the cholinergic system and motor deficits in cholinergic neuron-specific Dyt1 knockout mice
Yuning Liu1, Hong Xing2, Wanhui Sheng3
1Norman Fixel Institute for Neurological Diseases, Department of Neurology, College of Medicine, University of Florida, Gainesville, FL, United States; Genetics Institute, University of Florida, Gainesville, FL, United States.
Abstract:
Dystonia is a neurological movement disorder characterized by sustained or intermittent muscle contractions, repetitive movement, and sometimes abnormal postures. DYT1 dystonia is one of the most common genetic dystonias, and most patients carry heterozygous DYT1 ∆GAG mutations causing a loss of a glutamic acid of the protein torsinA. Patients can be treated with anticholinergics, such as trihexyphenidyl, suggesting an abnormal cholinergic state. Early work on the cell-autonomous effects of Dyt1 deletion with ChI-specific Dyt1 conditional knockout mice (Dyt1 Ch1KO) revealed abnormal electrophysiological responses of striatal ChIs to muscarine and quinpirole, motor deficits, and no changes in the number or size of the ChIs. However, the Chat-cre line that was used to derive Dyt1 Ch1KO mice contained a neomycin cassette and was reported to have ectopic cre-mediated recombination. In this study, we generated a Dyt1 Ch2KO mouse line by removing the neomycin cassette in Dyt1 Ch1KO mice. The Dyt1 Ch2KO mice showed abnormal paw clenching behavior, motor coordination and balance deficits, impaired motor learning, reduced striatal choline acetyltransferase protein level, and a reduced number of striatal ChIs. Furthermore, the mutant striatal ChIs had a normal muscarinic inhibitory function, impaired quinpirole-mediated inhibition, and altered current density. Our findings demonstrate a cell-autonomous effect of Dyt1 deletion on the striatal ChIs and a critical role for the striatal ChIs and corticostriatal pathway in the pathogenesis of DYT1 dystonia.
Insights
DYT1 dystonia, a genetic movement disorder, involves torsinA protein loss. New Dyt1 Ch2KO mice reveal cell-autonomous effects on striatal cholinergic interneurons, impacting motor control and suggesting their role in disease.
Area of Science:
- Neuroscience
- Genetics
- Movement Disorders
Background:
- Dystonia is a neurological movement disorder with sustained muscle contractions.
- DYT1 dystonia, a common genetic form, results from torsinA protein mutations.
- Previous studies suggested cholinergic involvement but were limited by mouse model issues.
Purpose of the Study:
- To investigate the cell-autonomous effects of Dyt1 deletion on striatal cholinergic interneurons (ChIs).
- To characterize a refined Dyt1 conditional knockout mouse model (Dyt1 Ch2KO).
- To elucidate the role of striatal ChIs in DYT1 dystonia pathogenesis.
Main Methods:
- Generated a Dyt1 Ch2KO mouse line by removing a neomycin cassette from Dyt1 Ch1KO mice.
- Assessed motor behavior, coordination, balance, and motor learning in Dyt1 Ch2KO mice.
- Examined striatal choline acetyltransferase levels and electrophysiological properties of ChIs.
Main Results:
- Dyt1 Ch2KO mice exhibited abnormal paw clenching, motor deficits, and impaired motor learning.
- A reduced number of striatal ChIs and decreased choline acetyltransferase protein were observed.
- Mutant striatal ChIs showed normal muscarinic inhibition but impaired quinpirole-mediated inhibition and altered current density.
Conclusions:
- Dyt1 deletion has cell-autonomous effects on striatal ChIs.
- Striatal ChIs and the corticostriatal pathway are critical in DYT1 dystonia.
- The Dyt1 Ch2KO model provides new insights into DYT1 dystonia mechanisms.
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