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Vieitas-Gaspar, N.

Publications and source records attributed to Vieitas-Gaspar, N..

2 recordsLinked to original sources

Nucleus accumbens neurons dynamically encode positive and aversive associative learning

To survive, individuals must learn to associate cues in the environment with emotionally relevant outcomes. This association is partially mediated by the nucleus accumbens (NAc), a key brain region of the reward circuit that is mainly composed by GABAergic medium spiny neurons (MSNs), that express either dopamine receptor D1 or D2. Recent studies showed that both populations can drive reward and aversion, however, the activity of these neurons during appetitive and aversive Pavlovian conditioning remains to be determined. Here, we investigated the relevance of D1- and D2-neurons in Pavlovian associations, by measuring calcium transients with fiber photometry during appetitive and aversive Pavlovian tasks. Sucrose was used as a positive unconditioned stimulus (US) and foot shock was used as a negative US. We show that during appetitive Pavlovian conditioning, D1- and D2-neurons exhibit a general decrease in activity in response to CS and to US across learning, with dynamic, and partially overlapping, activity responses to CS and US. During the aversive Pavlovian conditioning, D1- and D2-neurons showed an increase in the activity in response to the CS and to the US (shock). Our data supports a synchronous role for D1- and D2-neurons in appetitive and aversion processing.

neuroscience↗

Involvement of nucleus accumbens D2-MSN projections to the ventral pallidum in anxious-like behavior

The nucleus accumbens (NAc) is a crucial brain region for emotionally-relevant behaviors. The NAc is mainly composed of medium spiny neurons (MSN) expressing either dopamine receptor D1 (D1-MSNs) or D2 (D2-MSNs). D1-MSNs project to the ventral tegmental area (VTA) and ventral pallidum (VP), while D2-MSNs project only to the VP. In this work, we selectively manipulated D1-MSN projections to the VP and VTA, and D2-MSN projections to the VP during classical anxiety behavioral paradigms in naive mice. We found that optogenetic activation of D1-MSN to VP or VTA did not trigger significant anxious-like behaviors. Interestingly, optical activation of D2-MSN-VP projections significantly increased anxious-like behavior in all of the tests performed. This phenotype was associated with a decrease in the activity of VP putative GABAergic neurons. Importantly, pre-treating D2-MSN-VP animals with the GABA modulator diazepam prevented the optically-triggered anxious-like behavior. Overall, our results suggest that D2-MSN-VP projections contribute for the development of anxious-like behavior, through modulation of GABAergic activity in the VP.

neuroscience↗