Cerebellar circuits anticipate dopamine rewards
Filio, B. A.; Otchere, A.; Srinivasan, S.; Thota, S.; Drake, L.; Ramos, L.; Maurus, P.; Wagner, M. J.
Show abstract
Predicting rewards is critical for learning. Although the cerebellum predicts rewards like water and food, it also famously coordinates physical actions like drinking and eating. To disentangle reward prediction from the movements to consume reward, we trained mice to push for delayed dopamine rewards delivered directly into the brain. Via two-photon imaging, we found that many cerebellar granule cells (GrCs) anticipated dopamine with sustained activity that terminated at reward delivery. GrC activity also "stretched" to match 1- or 2-s intervals before dopamine, thereby linking the action to the expected reward time. By contrast, most cerebellar climbing fibers (CFs) spiked just after dopamine delivery. GrC-CF activity also generalized between dopamine versus water rewards, both in individual mice and many individual neurons. Finally, naive mice rewarded only with CF stimulation also learned to execute a modest number of pushing movements, with similar predictive GrC activity. Thus, cerebellar circuits help animals learn to anticipate rewards even when no consummatory action is needed, suggesting deeper cerebellar integration in brain reward prediction networks.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Unexpected contributions of striatal projection neurons coexpressing dopamine D1 and D2 receptors in balancing motor control 98%
- Latent neural population dynamics underlying normal breathing, opioid induced respiratory depression, and gasping 98%
- The formation of an expanding memory representation in the hippocampus 98%
Similar papers in this journal
- Acquisition of non-olfactory encoding improves odour discrimination in olfactory cortex 99%
- Fast updating feedback from piriform cortex to the olfactory bulb relays multimodal reward contingency signals during rule-reversal 98%
- Cone Opponent Functional Domains in Primary Visual Cortex Combine Signals for Color Appearance Mechanisms 98%
Similar papers in this journal
- A cortical circuit mechanism for coding and updating task structural knowledge in inference-based decision-making 99%
- Potentiation of active locomotor state by spinal-projecting serotonergic neurons 98%
- Ventral frontostriatal circuitry mediates the computation of reinforcement from symbolic gains and losses 98%
"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.