Dual Engram Architecture within a Single Striatal Cell Type Distinctly Controls Alcohol Relapse and Extinction
Xie, X.; Huang, Y.; Huang, Z.; Lu, J.; Cruz, A.; Chaiprasert, A.; Yu, E.; Hernandez, N.; Vierkant, V.; Wang, X.; Smith, R.; Wang, J.
Show abstract
Relapse is a major obstacle in the treatment of alcohol and drug addiction and is thought to be driven by persistent drug-associated memories formed during their use. Behavioral therapies such as extinction training can reduce relapse and are proposed to work by creating a competing memory trace. However, where and how these opposing memories are stored in the brain is unknown. Here, we show that two anatomically and functionally distinct engram ensembles within the same genetically defined striatal cell type, direct-pathway medium spiny neurons (dMSNs), encode these opposing memories. Using engram-tagging tools in mice, we found that the acquisition of operant alcohol learning recruits a dMSN ensemble enriched in the striatal matrix compartment that stores alcohol-associated memories and whose activation selectively promotes relapse. Conversely, extinction of alcohol seeking recruits a dMSN ensemble enriched in the striosome compartment that stores extinction-related memories and whose activation suppresses relapse. Furthermore, we reveal that the physical memory trace storing the relapse-promoting memory is embedded within persistently strengthened corticostriatal synapses engaged during learning, and that artificially reproducing this plasticity is sufficient to trigger relapse-like behavior. These findings uncover a dual-engram architecture within dMSNs that governs relapse and extinction, providing a mechanistic framework for understanding how competing memories regulate drug-seeking behavior. HighlightsO_LIAcquisition and extinction of alcohol learning recruits distinct dMSN ensembles. C_LIO_LIAcquisition recruits matrix-enriched dMSN ensembles to promote relapse. C_LIO_LIExtinction recruits striosome-enriched dMSN ensembles to suppress relapse. C_LIO_LIEngram dMSNs show lasting synaptic potentiation and mimicking this potentiation triggers relapse. C_LI
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Drug Reinforcement Impairs Cognitive Flexibility by Inhibiting Striatal Cholinergic Neurons 96%
- Amphetamine disrupts dopamine axon growth in adolescence by a sex-specific mechanism 96%
- Distinct spatially organized striatum-wide acetylcholine dynamics for the learning and extinction of Pavlovian associations 96%
Similar papers in this journal
Similar papers in this journal
- Septo-hypothalamic regulation of binge-like alcohol consumption by the nociceptin system. 97%
- A multivariate regressor of patterned dopamine release predicts relapse to cocaine 96%
- Dopamine release at the time of a predicted aversive outcome causally controls the trajectory and expression of conditioned behavior 95%
Similar papers in this journal
- Glutathione in the nucleus accumbens regulates motivation to exert reward-incentivized effort 96%
- Mechanism for differential recruitment of orbitostriatal transmission during outcomes and actions in alcohol dependence 96%
- Different forms of fear extinction are supported by distinct cortical substrates 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.