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Self-Administration of Drugs in Mouse Models of Feeding and Obesity
Published on: June 8, 2021
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
Abstract:
Pharmacogenomics is yet to fulfill its promise of manifestly altering clinical medicine. As one example, a predictive test for tardive dyskinesia (TD) (an adverse drug reaction consequent to antipsychotic exposure) could greatly improve the clinical treatment of schizophrenia but human studies are equivocal. A complementary approach is the mouse-then-human design in which a valid mouse model is used to identify susceptibility loci, which are subsequently tested in human samples. We used inbred mouse strains from the Mouse Phenome Project to estimate the heritability of haloperidol-induced activity and orofacial phenotypes. In all, 159 mice from 27 inbred strains were chronically treated with haloperidol (3 mg kg(-1) per day via subdermal slow-release pellets) and monitored for the development of vacuous chewing movements (VCMs; the mouse analog of TD) and other movement phenotypes derived from open-field activity and the inclined screen test. The test battery was assessed at 0, 30, 60, 90 and 120 days in relation to haloperidol exposure. As expected, haloperidol caused marked changes in VCMs, activity in the open field and extrapyramidal symptoms (EPS). Unexpectedly, factor analysis demonstrated that these measures were imprecise assessments of a latent construct rather than discrete constructs. The heritability of a composite phenotype was ∼0.9 after incorporation of the longitudinal nature of the design. Murine VCMs are a face valid animal model of antipsychotic-induced TD, and heritability estimates from this study support the feasibility of mapping of susceptibility loci for VCMs.
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.

