Brain-wide electrical spatiotemporal dynamics encode reward anticipation
Vu, M.-A. T.; David, L.; Thomas, G.; Vagwala, M.; Burrus, C.; Gallagher, N.; Wang, J.; Blount, C.; Hughes, D. N.; Adamson, E.; Ndubuizu, N.; Kim, I. H.; Soderling, S.; Mague, S. D.; Adcock, R. A.; Dzirasa, K.
Show abstract
Anticipation of an upcoming stimulus induces neural activity across cortical and subcortical regions and influences subsequent behavior. Nevertheless, the network mechanism whereby the brain integrates this information to signal the anticipation of rewards remains relatively unexplored. Here we employ multi-circuit electrical recordings from six brain regions as mice perform a sample-to-match task in which reward anticipation is operationalized as their progress towards obtaining a potential reward. We then use machine learning to discover the naturally occurring network patterns that integrate this neural activity across timescales. Only one of the networks that we uncovered signals responses linked to reward anticipation, specifically relative proximity and reward magnitude. Activity in this Electome (electrical functional connectivity) network is dominated by theta oscillations leading from prelimbic cortex and striatum that converge on ventral tegmental area, and by beta oscillations leading from striatum that converge on prelimbic cortex. Network activity is also synchronized with brain-wide cellular firing. Critically, this network generalizes to new groups of healthy mice, as well as a mouse line that models aberrant neural circuitry observed in brain disorders that show altered reward anticipation. Thus, our findings reveal the network-level architecture whereby the brain integrates spatially distributed activity across timescales to signal reward anticipation.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Hippocampo-cortical circuits for selective memory encoding, routing, and replay 96%
- Competitive integration of time and reward explains value-sensitive foraging decisions and frontal cortex ramping dynamics 95%
- Environmental complexity modulates information processing and the balance between decision-making systems 95%
Similar papers in this journal
Similar papers in this journal
"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.