Antipsychotic-induced vacuous chewing movements and extrapyramidal side effects are highly heritable in mice

J J Crowley1, D E Adkins, A L Pratt

  • 1Department of Genetics, University of North Carolina, Chapel Hill, NC 27599-7264, USA. crowley@unc.edu

Insights

This study establishes a mouse model for tardive dyskinesia (TD), a side effect of antipsychotics. High heritability suggests genetic factors can be mapped to predict TD risk in patients.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Genetics

Background:

  • Pharmacogenomics aims to personalize medicine but faces challenges in predicting adverse drug reactions like tardive dyskinesia (TD).
  • Human studies on TD prediction are inconclusive, necessitating alternative approaches.
  • A mouse-then-human design can identify genetic susceptibility loci for TD.

Purpose of the Study:

  • To estimate the heritability of haloperidol-induced phenotypes in mice.
  • To validate a mouse model for tardive dyskinesia (TD).
  • To assess the feasibility of mapping genetic loci associated with TD susceptibility.

Main Methods:

  • Utilized 27 inbred mouse strains (n=159) from the Mouse Phenome Project.
  • Administered haloperidol chronically (3 mg/kg/day) via slow-release pellets.
  • Monitored vacuous chewing movements (VCMs), open-field activity, and inclined screen tests over 120 days.

Main Results:

  • Haloperidol induced significant changes in VCMs, activity, and extrapyramidal symptoms (EPS).
  • Factor analysis indicated these measures reflect a single latent construct.
  • A high heritability (∼0.9) was estimated for the composite phenotype, considering longitudinal data.

Conclusions:

  • Murine VCMs serve as a valid animal model for antipsychotic-induced TD.
  • Heritability estimates support the feasibility of mapping susceptibility loci for VCMs.
  • This approach aids in identifying genetic factors for TD, advancing personalized antipsychotic treatment.