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Updated: Apr 20, 2026

Assessment of Cocaine-induced Behavioral Sensitization and Conditioned Place Preference in Mice
Published on: February 18, 2016
Enkephalin is essential for the molecular and behavioral expression of cocaine sensitization
Bethania Mongi-Bragato1, Emiliano Zamponi2, Constanza García-Keller1
1Departamento de Farmacología, Facultad de Ciencias Químicas, Instituto de Farmacología Experimental de Córdoba (IFEC-CONICET), Universidad Nacional de Córdoba, Argentina.
Abstract:
Behavioral sensitization to cocaine is associated to neuroadaptations that contribute to addiction. Enkephalin is highly expressed in mesocorticolimbic areas associated with cocaine-induced sensitization; however, their influence on cocaine-dependent behavioral and neuronal plasticity has not been explained. In this study, we employed a knockout (KO) model to investigate the contribution of enkephalin in cocaine-induced behavioral sensitization. Wild-type (WT) and proenkephalin KO mice were treated with cocaine once daily for 9 days to induce sensitization. Additionally, to clarify the observations in KO mice, the same procedure was applied in C57BL/6 mice, except that naloxone was administered before each cocaine injection. All animals received a cocaine challenge on days 15 and 21 of the treatment to evaluate the expression of locomotor sensitization. On day 21, microdialysis measures of accumbal extracellular dopamine, Western blotting for GluR1 AMPA receptor (AMPAR), phosphorylated ERK2 (pERK2), CREB (pCREB), TrKB (pTrkB) were performed in brain areas relevant for sensitization from KO and WT and/or naloxone- and vehicle pre-treated animals. We found that KO mice do not develop sensitization to the stimulating properties of cocaine on locomotor activity and on dopamine release in the nucleus accumbens (NAc). Furthermore, pivotal neuroadaptations such as the increase in pTrkB receptor, pERK/CREB and AMPAR related to sensitized responses were absent in the NAc from KO mice. Consistently, full abrogation of cocaine-induced behavioral and neuronal plasticity after naloxone pre-treatment was observed. We show for first time that the proenkephalin system is essential in regulating long-lasting pivotal neuroadaptations in the NAc underlying behavioral sensitization to cocaine.
Insights
The proenkephalin system is crucial for cocaine-induced behavioral sensitization and associated neuroadaptations in the nucleus accumbens. Its absence prevents cocaine sensitization and key molecular changes.
Area of Science:
- Neuroscience
- Addiction Research
- Molecular Psychiatry
Background:
- Behavioral sensitization to cocaine is linked to neuroadaptations contributing to addiction.
- Enkephalin is highly expressed in brain regions involved in cocaine sensitization, but its role is unclear.
Purpose of the Study:
- To investigate the contribution of enkephalin to cocaine-induced behavioral sensitization using a knockout model.
- To elucidate the molecular mechanisms underlying enkephalin's role in cocaine addiction.
Main Methods:
- Utilized proenkephalin knockout (KO) and wild-type (WT) mice treated with cocaine.
- Assessed locomotor activity, dopamine release in the nucleus accumbens (NAc) via microdialysis.
- Performed Western blotting for key proteins including AMPA receptors (AMPAR), pERK, pCREB, and pTrkB.
Main Results:
- KO mice did not develop behavioral sensitization or increased dopamine release in the NAc after cocaine exposure.
- Key neuroadaptations, including increased pTrkB, pERK/CREB, and AMPAR, were absent in KO mice.
- Naloxone pre-treatment fully blocked cocaine-induced behavioral and neuronal plasticity, mirroring KO results.
Conclusions:
- The proenkephalin system is essential for the development of long-lasting neuroadaptations in the NAc.
- Enkephalin plays a critical role in regulating the molecular plasticity underlying behavioral sensitization to cocaine.
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