Search bioRxiv⌕ Search

Biology subjects

Giannotti, G.

Publications and source records attributed to Giannotti, G..

2 recordsLinked to original sources

Ventral pallidal perineuronal nets regulate opioid relapse

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.

neuroscience↗

Chronic stress facilitates behavioral engagement and alters lateral habenula activity during flexible decision making in a sex-dependent manner

The ability to integrate feedback and flexibly adjust behavior under shifting environmental demands is required to optimize decision-making strategies. Clinical and preclinical data indicate that individuals with stress-related disorders and rodents exposed to chronic stress exhibit impaired behavioral flexibility. The lateral habenula (LHb) has emerged as a key brain region contributing to the effects of stress on cognitive performance. However, the extent to which the LHb is recruited to fine-tune decision-making strategies, as well as the impacts of chronic stress on LHb recruitment during task performance, remain largely unknown. To this end, we used a three-week model of chronic unpredictable stress (CUS) and performed in vivo fiber photometry to investigate Ca2+ transients in LHb neurons during an attentional set-shifting task in adult male and female Sprague Dawley rats (n=7-12/sex/group). We found that CUS exposure did not significantly impair behavioral flexibility. Rather, CUS-exposed rats made fewer omissions and exhibited shorter response latencies compared to controls, suggesting enhanced task engagement. We also observed sex differences in LHb Ca2+ activity. In control animals, we found that male rats showed stronger LHb signal prior to decision making, and greater activation following trial outcome than females. These differences were normalized by CUS, resulting in similar signaling patterns across sexes. Altogether, these findings reveal that chronic stress alters LHb activity in a sex-dependent manner without overtly impairing behavioral flexibility, thereby underscoring the importance of the LHb in decision making under stressful conditions. HighlightsO_LIChronic stress decreased response latency without impairing behavioral flexibility C_LIO_LIMale rats displayed greater inhibition of LHb activity prior to decision making C_LIO_LIChronic stress abolished sex differences in LHb activity during decision making C_LI

neuroscience↗