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Exploratory spatial peptidomic profiling during incubation of drug seeking following cocaine plus alcohol self-administration in young adult rats

Puig, N.; Castillo-Sarmiento, C. A.; Garrido-Matilla, L.; Marcos, A.; Peinado, J. R.; Rabanal-Ruiz, Y.; Saiz-Sanchez, D.; Spano, E.; Vera Fernandez, C.; Ballesteros-Yanez, I.; Ambrosio, E.

2026-08-07 neuroscience
10.64898/2026.08.03.742404 bioRxiv
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BackgroundConcurrent cocaine and alcohol use is one of the most prevalent forms of polysubstance consumption and is associated with poorer clinical outcomes than cocaine use alone. However, the regional molecular adaptations induced by combined exposure remain poorly understood. Here, we used matrix-assisted laser desorption/ionization imaging mass spectrometry (MALDI-IMS) to characterize peptide/protein alterations in addiction-related brain regions following cocaine and cocaine-alcohol self-administration. MethodsYoung adult male and female Wistar rats underwent intravenous self-administration of saline, cocaine (1 mg/kg/infusion) or cocaine plus ethanol (1 mg/kg cocaine and 133 mg/kg ethanol per infusion), followed by extinction of drug-seeking behaviour. Coronal brain sections containing the anterior cingulate cortex (ACC) and ventral hippocampus (vHPC) were analysed by MALDI-IMS. Differential molecular features were identified using an exploratory statistical approach (FDR q < 0.20) and subsequently subjected to MS/MS analysis. ResultsThe ACC exhibited a substantially greater number of treatment-associated molecular alterations than the vHPC, suggesting a higher regional susceptibility to cocaine-induced molecular remodelling. Several molecular features were shared between the cocaine and cocaine-alcohol groups, indicating persistent cocaine-driven neuroadaptations. In contrast, additional signals were selectively associated with combined cocaine-alcohol exposure, while others present after cocaine alone were absent following alcohol co-exposure, supporting a modulatory effect of alcohol on specific cocaine-induced molecular responses. Overall, combined exposure generated a distinct regional molecular profile rather than simply reproducing the effects of cocaine alone. ConclusionsThis exploratory study demonstrates that MALDI-IMS enables the identification of region-specific peptide/protein alterations associated with cocaine and cocaine-alcohol exposure while preserving their spatial distribution within the brain. These findings highlight the ACC as a particularly responsive region and provide a framework for future studies aimed at validating molecular pathways involved in cocaine-alcohol polysubstance use.

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