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Updated: Aug 15, 2026

Assessment of Cocaine-induced Behavioral Sensitization and Conditioned Place Preference in Mice
Published on: February 18, 2016
Induction and Blockade of Adolescent Cocaine-Induced Habits
Lauren M DePoy1, Kelsey S Zimmermann1, Paul J Marvar2
1Department of Pediatrics and Department of Psychiatry, Emory University School of Medicine, Emory University, Atlanta, Georgia; Yerkes National Primate Research Center, Graduate Program in Neuroscience, Emory University, Atlanta, Georgia.
Background:
Cocaine use during adolescence increases vulnerability to drug dependence and decreases the likelihood that individuals will seek treatment as adults. Understanding how early-life cocaine exposure influences decision-making processes in adulthood is thus critically important.
Methods:
Adolescent or adult mice were exposed to subchronic cocaine, then behavioral sensitivity to changes in the predictive relationship between actions and their consequences was tested. Dendritic spines on the principal pyramidal neurons of the orbitofrontal prefrontal cortex (oPFC) were also imaged and enumerated. To determine whether cytoskeletal regulatory systems in the oPFC influenced decision-making strategies, we then inhibited the activity of Abl family and Rho kinases as well as NR2B-containing N-methyl-D-aspartate receptors. We also attempted to block the reinstatement of cocaine seeking in cocaine self-administering mice.
Results:
Adult mice with a history of subchronic cocaine exposure in adolescence engaged habit-based response strategies at the expense of goal-directed decision-making strategies and had fewer dendritic spines in the oPFC. Inhibition of the cytoskeletal regulatory Abl family kinases in the oPFC recapitulated these neurobehavioral deficiencies, whereas Rho kinase inhibition corrected response strategies. Additionally, the NR2B-selective N-methyl-D-aspartate receptor antagonists ifenprodil and CP-101,606 blocked cocaine-induced habits; this was dependent on Abl family signaling in the oPFC. Ifenprodil also mitigated cue-induced reinstatement of cocaine seeking in mice self-administering cocaine.
Conclusions:
We suggest that adolescent cocaine exposure confers a bias toward habit-based behavior in adulthood via long-term cellular structural modifications in the oPFC. Treatments aimed at mitigating the durable consequences of early-life cocaine use may benefit from targeting cytoskeletal regulatory systems.
Insights
Adolescent cocaine exposure leads to adult habit-based behaviors and fewer orbitofrontal cortex (oPFC) dendritic spines. Targeting cytoskeletal systems may reverse these lasting effects of early drug use.
Area of Science:
- Neuroscience
- Addiction Research
- Developmental Psychology
Background:
- Adolescent cocaine use increases lifelong drug dependence vulnerability.
- Early cocaine exposure impairs adult decision-making and treatment seeking.
- Understanding long-term effects of adolescent drug exposure is critical.
Purpose of the Study:
- Investigate how adolescent cocaine exposure impacts adult decision-making.
- Examine structural changes in the orbitofrontal prefrontal cortex (oPFC).
- Identify molecular targets for mitigating long-term cocaine effects.
Main Methods:
- Mice exposed to cocaine during adolescence or adulthood, then tested for behavioral sensitivity.
- Imaged and enumerated dendritic spines in the oPFC.
- Inhibited Abl family kinases, Rho kinases, and NR2B-containing N-methyl-D-aspartate receptors in the oPFC.
- Attempted to block cocaine seeking reinstatement.
Main Results:
- Adolescent cocaine exposure resulted in habit-based strategies and reduced oPFC dendritic spines in adulthood.
- Inhibiting Abl family kinases mimicked these deficits; Rho kinase inhibition improved strategies.
- NR2B antagonists blocked cocaine-induced habits and cue-induced cocaine seeking reinstatement.
Conclusions:
- Adolescent cocaine exposure biases adult behavior toward habits via oPFC structural changes.
- Targeting cytoskeletal regulatory systems may reverse long-term consequences of early cocaine exposure.
- Therapeutic strategies should consider these lasting neurobiological modifications.
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