Related Experiment Video
Updated: Aug 7, 2026

Motor and Hippocampal Dependent Spatial Learning and Reference Memory Assessment in a Transgenic Rat Model of Alzheimer's Disease with Stroke
Published on: March 22, 2016
Vitamin A deficiency induces motor impairments and striatal cholinergic dysfunction in rats
M Carta1, R Stancampiano, E Tronci
1Department of Applied Science for Biosystems, Section of Nutrition and Human Physiology, University of Cagliari, Italy.
Abstract:
Vitamin A and its derivatives, retinoids, are involved in the regulation of gene expression by binding two nuclear receptor families, retinoic acid receptors and retinoid X receptors. Retinoid receptors are highly expressed in the striatum, revealing an involvement of this system in the control of movement as demonstrated by previous observations in knockout mice. To further assess the role of retinoids in adult striatal function, the present study investigated the effect of vitamin A deprivation on rat motor activity and coordination, the rate of synthesis and release of dopamine, the functioning of D1 and D2 receptors and their expression in the striatum. Moreover, the content of acetylcholine in the striatum was measured. Results show that 24 weeks of postnatal vitamin A deprivation induced severe locomotor deficits and impaired motor coordination. Vitamin A deprivation rats showed a significant hyperactivity following D1 receptor stimulation by R(+)-6-chloro-7,8-dihydroxy-1-phenyil-2,3,4,5-tetrahydro-1H-3-benzazepine or amphetamine and reduced catalepsy in response to haloperidol treatment. This different response to the above drugs is not due to a change in striatal DA release or synthesis between vitamin A deprivation and control animals. In situ hybridization experiments showed identical level of expression for the D1 and D2 receptor transcripts. On the other hand, the striatal tissue content of acetylcholine was reduced significantly by about 30% starting from the initial manifestation of motor deficits. We suggest that the locomotor impairment could be imputable to the dysfunction in striatal cholinergic interneurons. Our results stress the basic role of vitamin A in the maintenance of basal ganglia motor function in the adult rat brain.
Insights
Vitamin A deficiency in rats impairs motor control and coordination. This is linked to reduced acetylcholine levels in the striatum, not dopamine changes, suggesting a role for cholinergic neurons in vitamin A
Area of Science:
- Neuroscience
- Nutritional Science
- Motor Control
Background:
- Retinoids regulate gene expression via nuclear receptors (RARs, RXRs).
- Retinoid receptors are abundant in the striatum, implicating them in motor control.
- Previous studies in knockout mice suggest retinoids' role in movement.
Purpose of the Study:
- Investigate the impact of vitamin A deprivation on adult rat striatal function.
- Assess effects on motor activity, coordination, dopamine, and acetylcholine.
- Examine D1 and D2 receptor functioning and expression.
Main Methods:
- Postnatal vitamin A deprivation in rats for 24 weeks.
- Assessment of motor activity, coordination, and catalepsy.
- Measurement of dopamine synthesis/release and striatal acetylcholine content.
- In situ hybridization for D1 and D2 receptor expression analysis.
Main Results:
- Vitamin A deprivation caused severe locomotor deficits and impaired motor coordination.
- Rats showed hyperactivity with D1 receptor stimulation and reduced catalepsy with haloperidol.
- No significant changes in striatal dopamine release or synthesis were observed.
- Striatal acetylcholine content decreased by approximately 30%.
Conclusions:
- Locomotor impairment in vitamin A-deprived rats may stem from dysfunctional striatal cholinergic interneurons.
- Vitamin A is crucial for maintaining basal ganglia motor function in adult rats.
- The study highlights the link between vitamin A, acetylcholine, and motor control.
More Related Videos
08:33Development of an Alpha-synuclein Based Rat Model for Parkinson's Disease via Stereotactic Injection of a Recombinant Adeno-associated Viral Vector
Published on: February 29, 2016
08:18Methodology for Studying Interactions of Vitamin A Membrane Receptors and Opsin Protein with their Ligands in Generating the Retinylidene Protein
Published on: October 4, 2024