Ventral pallidal perineuronal nets regulate opioid relapse
Nogueira, M.; Giannotti, G.; Miller, C. N.; Guaderrama, S. D.; Kregar, N. P.; Wiedmeyer, B.; Fayette, N.; Heinsbroek, J. A.
Show abstract
Opioid use disorder remains a major health challenge worldwide. Neuronal activity in the ventral pallidum (VP) regulates opioid reward and relapse to opioid seeking but the underlying cellular mechanisms remain largely unknown. A sizable population of VP neurons previously linked to drug relapse expresses the calcium binding protein parvalbumin (VPPV). Across the brain parvalbumin neurons are often ensheathed by perineuronal nets (PNNs), specialized extracellular structures that regulate intrinsic activity and constrain synaptic plasticity onto these neurons. The VP contains high levels of PNNs but the role of these structures in the neurophysiology of VPPV neurons and in relapse to opioid seeking has not been studied. To investigate whether VP PNNs are altered by opioid exposure, male and female mice were trained to self-administer intravenous heroin. We found that heroin increased the density of PNNs in the VP, and that an intracranial microinfusion of the PNN-degrading enzyme, chondroitinase ABC, prevented cue-induced reinstatement of heroin seeking. VP PNN depletion also reduced the intrinsic excitability of VPPV neurons, potentiated inhibitory synaptic inputs onto these cells, and diminished Fos expression in VPPV neurons following reinstatement. The suppressive effect of VP PNN depletion on heroin seeking was rescued by chemogenetic activation of VPPV neurons and mimicked by chemogenetic VPPV neuron inhibition. Taken together, our results identify VPPV neurons and their associated PNNs as critical drivers of opioid seeking. Given the key role of PNNs in regulating neural plasticity and memory processes, targeting PNNs in the VP could provide a useful novel therapeutic avenue for treating persistent craving and relapse in opioid use disorder.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Cue- versus reward-encoding basolateral amygdala projections to nucleus accumbens 97%
- Epac2 in midbrain dopamine neurons contributes to cocaine reinforcement via facilitation of dopamine release 97%
- Mechanism for differential recruitment of orbitostriatal transmission during outcomes and actions in alcohol dependence 96%
Similar papers in this journal
- The medial orbitofrontal cortex - basolateral amygdala circuit regulates the influence of reward cues on adaptive behavior and choice 96%
- Ventral subiculum inputs to nucleus accumbens medial shell preferentially innervate D2R medium spiny neurons and contain calcium permeable AMPARs 96%
- The mesolimbic dopamine signatures of relapse to alcohol-seeking 96%
Similar papers in this journal
Similar papers in this journal
- CRF release from a unique subpopulation of accumbal neurons constrains action-outcome acquisition in reward learning 96%
- Plasticity of the glutamate transporter EAAT2 on striatal astrocytes regulates flexibility inbehavior 96%
- p75 neurotrophin receptor in pre-adolescent prefrontal PV interneurons promotes cognitive flexibility in adult mice 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.