ArticleCommunications biology2025
Cocaine-induced gene regulation in D1 and D2 neuronal ensembles of the nucleus accumbens.
Article in Communications biology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
What it found
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Who cites it
6 citing papers in PubMed.
- Volitional cocaine taking engages distinct medium spiny neuron and astrocyte transcriptional programs in the rat nucleus accumbens.bioRxiv : the preprint server for biology · 2026Article
- From Neuroadaptation to Neuroprogression: Rethinking Chronic Cocaine Exposure Through a Model of Cocaine-Related Cerebropathy.Journal of clinical medicine · 2026Article
- Stress-responsive nucleus accumbens dopamine D2 receptor-expressing neurons modulate cocaine-induced behavioral sensitization.Frontiers in cellular neuroscience · 2026Article
- Transcription factors implicated in substance use disorder, from immediate early genes to altered gene expression.Brain research · 2026Review
- Cocaine-Induced Changes in the BRD4 Interactome Identifies Casein Kinase 1 Epsilon as a Therapeutic Target.Journal of neurochemistry · 2026Article
- The biology of addiction.Science signaling · 2025Review
Corrections and comments
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Authors and funding
5 authors.
Funding
Abstract
Cocaine use disorder is characterized by persistent drug-seeking behavior and a high risk of relapse, driven in part by lasting molecular and circuit adaptations in the nucleus accumbens. To explore the transcriptomic changes underlying these alterations, we employed fluorescence-activated nucleus sorting coupled with single-nucleus RNA sequencing to analyze D1 and D2 medium spiny neurons in this brain region of male mice subjected to acute cocaine exposure or to prolonged withdrawal from repeated cocaine exposure without or with an acute cocaine rechallenge. This approach allowed us to precisely delineate and contrast transcriptionally distinct neuronal subpopulations─or ensembles─across various treatment conditions. We identified significant heterogeneity within both D1 and D2 MSNs, revealing distinct clusters with unique transcriptional profiles. Notably, we identified a discrete D1 MSN population characterized by the upregulation of immediate early genes, as well as another group of D1 MSNs linked to prolonged withdrawal, uncovering novel regulators of withdrawal-related transcriptome dynamics. Our findings provide a high-resolution transcriptomic map of D1 and D2 MSNs, illustrating the dynamic changes induced by cocaine exposure and withdrawal. These insights into the molecular mechanisms underlying cocaine use disorder highlight potential targets for therapeutic intervention aimed at preventing relapse.
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