Related Experiment Video
Updated: Jul 26, 2026

The Unpredictable Chronic Mild Stress Protocol for Inducing Anhedonia in Mice
Published on: October 24, 2018
Tramadol and Codeine Stacking/Boosting Dose Exposure Induced Neurotoxic Behaviors, Oxidative Stress, Mitochondrial
I O Ishola1, S U Eneanya2, O R Folarin3
1Department of Pharmacology, Therapeutics and Toxicology, Faculty of Basic Medical Sciences, College of Medicine, University of Lagos, Lagos State, Nigeria. oishola@cmul.edu.ng.
Abstract:
In spite of the increasing epidemic of pharmaceutical opioids (codeine and tramadol) misuse and abuse among the adolescents, little is known about the neurotoxic consequences of the widespread practice of tramadol and codeine abuse involving increasing multiple doses across days, referred to as stacking and boosting. Hence, in this study, we replicated stacking and boosting doses of tramadol, codeine alone, or in combination on spontaneous motor activity and cognitive function in adolescent mice and adduced a plausible mechanism of possible neurotoxicity. Ninety-six adolescent mice were randomly distributed into 4 groups (n = 24 per group) and treated thrice daily for 9 days with vehicle, tramadol (20, 40, or 80 mg/kg), codeine (40, 80, or 160 mg/kg), or their combinations. Exposure of mice to tramadol induced hyperactivity and stereotypic behavior while codeine exposure caused hypoactivity and nootropic effect but tramadol-codeine cocktail led to marked reduction in spontaneous motor activity and cognitive function. In addition, tramadol, codeine, and their cocktail caused marked induction of nitroso-oxidative stress and inhibition of mitochondrial complex I activity in the prefrontal cortex (PFC) and midbrain (MB). Real-time PCR expression profiling of genes encoding neurotoxicity (RT) showed that tramadol exposure upregulate 57 and downregulate 16 neurotoxic genes, codeine upregulate 45 and downregulate 25 neurotoxic genes while tramadol-codeine cocktail upregulate 52 and downregulate 20 neurotoxic genes in the PFC. Findings from this study demonstrate that the exposure of adolescents mice to multiple and increasing doses of tramadol, codeine, or their cocktail lead to spontaneous motor coordination deficits indicative of neurotoxicity through induction of oxidative stress, inhibition of mitochondrial complex I activity and upregulation of neurotoxicity encoding genes in mice.
Insights
Adolescent mice exposed to escalating doses of tramadol and codeine, alone or combined, showed motor deficits and cognitive impairment. This neurotoxicity stems from oxidative stress, mitochondrial dysfunction, and altered gene expression.
Area of Science:
- Neuroscience
- Pharmacology
- Toxicology
Background:
- Pharmaceutical opioid misuse, including codeine and tramadol, is a growing concern among adolescents.
- The neurotoxic effects of 'stacking' and 'boosting' (increasing multiple doses) of these opioids are not well understood.
Purpose of the Study:
- To investigate the neurotoxic consequences of escalating tramadol and codeine doses in adolescent mice.
- To examine the impact on motor activity, cognitive function, and underlying neurobiological mechanisms.
Main Methods:
- Adolescent mice received daily doses of tramadol, codeine, their combination, or vehicle for nine days.
- Evaluated spontaneous motor activity, cognitive function, prefrontal cortex and midbrain oxidative stress, mitochondrial complex I activity, and neurotoxicity gene expression.
Main Results:
- Tramadol caused hyperactivity; codeine induced hypoactivity and a nootropic effect.
- The tramadol-codeine combination significantly reduced motor activity and cognitive function.
- Both opioids and their combination induced oxidative stress, inhibited mitochondrial complex I, and altered neurotoxicity gene expression in the prefrontal cortex and midbrain.
Conclusions:
- Escalating tramadol and codeine doses induce motor coordination deficits and cognitive impairment in adolescent mice.
- Neurotoxicity is mediated by oxidative stress, mitochondrial complex I inhibition, and altered neurotoxicity gene expression.
Related Concept Videos
Drugs Affecting Neurotransmitter Synthesis
Drug Toxicity: Dose-Dependent Reactions

