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Palieri, V.

Publications and source records attributed to Palieri, V..

2 recordsLinked to original sources

A zebrafish circuit for behavioral credit assignment

Improving behavioral performance relies on the ability to associate decisions with their positive and negative outcomes. Although neurons that associate actions with their consequences have been identified across multiple brain regions, the circuit-level mechanisms underlying this integration remain poorly understood. Here, using an operant thermoregulatory assay, we show that larval zebrafish maintain a short-term memory of action-outcome associations and that the dorsal habenula-interpeduncular nucleus (dHb-IPN) pathway is necessary for this process. Consistently, a population of intermediate IPN neurons encodes actions only when they lead to a thermal reward, suggesting a major role in establishing short-term associations and influencing subsequent decisions. We then combine circuit mapping and axon imaging to show that actions and reward signals are conveyed by GABAergic prepontine and glutamatergic dHb neurons, respectively. Finally, the integration between motor and sensory streams relies on presynaptic GABAB receptor-mediated modulation of dHb axon terminals by prepontine neurons. These results link a crucial computation for adaptive behavior to a specific circuit mechanism.

neuroscience↗

The Preoptic Area and Dorsal Habenula Jointly Support Homeostatic Navigation in Larval Zebrafish

Animals must maintain physiological processes within an optimal temperature range despite changes in their environment. While the preoptic area of the hypothalamus (PoA) acts as a thermostat in mammals through autonomic and behavioral adaptations, its role in temperature regulation of animals lacking internal homeostatic mechanisms is not known. Through novel behavioral assays, wholebrain functional imaging and neural ablations, we show that larval zebrafish achieve thermoregulation through movement and a neural network connecting the PoA to brain areas enabling spatial navigation. PoA drives reorientation when thermal conditions are worsening and conveys this information for instructing future motor actions to the navigation-controlling habenula (Hb) - interpeduncular nucleus (IPN) circuit. These results suggest a conserved function of the PoA in thermoregulation acting through species- specific neural networks. We propose that homeostatic navigation arose from an ancient chemotaxis navigation circuit that was subsequently extended to serve in other sensory modalities.

neuroscience↗