Related Experiment Video
Updated: Jun 11, 2026

A Protocol for Measuring Cue Reactivity in a Rat Model of Cocaine Use Disorder
Published on: June 18, 2018
Chronic low dose Adderall XR down-regulates cfos expression in infantile and prepubertal rat striatum and cortex
J K Allen1, M Wilkinson, E C Soo
1Department of Obstetrics and Gynaecology, IWK Health Centre, Halifax, Nova Scotia, Canada.
Abstract:
We previously reported that treatment of prepubertal male rats with low, injected or oral, doses of methylphenidate stimulated cfos, fosB and arc expression in many areas of the developing brain. In the present study our objective was to determine whether the widely prescribed psychostimulant Adderall XR (ADD) exerted similar effects in infantile and prepubertal rat brain. We report here, for the first time, that low threshold doses of oral ADD, an extended-release mixture of amphetamine salts, now routinely used for the treatment of Attention Deficit Hyperactivity Disorder (ADHD), also increased cfos expression in infantile (postnatal day 10; PD10) and prepubertal (PD24) rat brain. These threshold doses were correlated with blood levels of amphetamine determined by liquid chromatography-mass spectrometry. Moreover, we observed that chronic treatment with oral ADD (1.6 mg/kg; x 14 days) not only significantly down-regulated cfos expression following a final challenge dose of ADD in prepubertal (PD24) rat striatum and cortex, quantified in terms of FOS immunoreactivity (FOS-ir), but did so at a daily dose that was without effect with methylphenidate (MPH); that is a much higher oral dose of MPH (7.5 mg/kg; x 14 days) failed to induce down-regulation of cfos expression. Similar experiments in infantile rats (PD10), but using a threshold injected dose of ADD (1.25 mg/kg sc) also significantly reduced striatal and cingulate cortical FOS-ir. An additional finding in the prepubertal rats was that oral ADD-induced FOS-ir was observed in the cerebral cortex following doses lower than the threshold dose necessary to increase FOS-ir in the striatum. This was not the case in the PD10 rats. In conclusion, our efforts to calibrate biological responses, such as immediate early gene expression, to clinically relevant blood levels of stimulants confirmed that expression of cfos is very sensitive to repeated low doses of Adderall XR. It is now feasible to examine whether other genes are also affected in these young rats and if the changes we report are reversible. The implications of such studies should be relevant to the putative effects of psychostimulant treatment of very young children.
Insights
Low doses of Adderall XR (ADD) increase cfos expression in developing rat brains, with chronic ADD treatment down-regulating this response. This study highlights ADD
Area of Science:
- Neuroscience
- Pharmacology
- Developmental Biology
Background:
- Methylphenidate (MPH) affects gene expression in developing rat brains.
- Adderall XR (ADD), a mixture of amphetamine salts, is widely prescribed for Attention Deficit Hyperactivity Disorder (ADHD).
Purpose of the Study:
- To determine if low doses of Adderall XR (ADD) affect gene expression in infantile and prepubertal rat brains.
- To compare the effects of ADD and MPH on cfos expression in young rats.
Main Methods:
- Rats at postnatal day 10 (PD10) and PD24 received oral or injected doses of ADD or MPH.
- Blood amphetamine levels were measured using liquid chromatography-mass spectrometry.
- FOS immunoreactivity (FOS-ir) was quantified in brain regions like the striatum and cortex.
Main Results:
- Low threshold doses of oral ADD increased cfos expression in PD10 and PD24 rat brains.
- Chronic oral ADD treatment (1.6 mg/kg for 14 days) down-regulated cfos expression in prepubertal rats, an effect not seen with a higher MPH dose (7.5 mg/kg for 14 days).
- Injected ADD (1.25 mg/kg) also reduced FOS-ir in infantile rats' striatum and cingulate cortex.
Conclusions:
- Cfos expression is highly sensitive to repeated low doses of Adderall XR in young rats.
- The study provides a basis for investigating other gene effects and the reversibility of these changes.
- Findings are relevant to understanding the potential effects of psychostimulant treatment in young children.
