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.

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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