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A Unified Framework for Dopamine Signals across Timescales
Author(s) -
HyungGoo R. Kim,
Athar N. Malik,
John G. Mikhael,
Pol Bech,
Iku TsutsuiKimura,
Fangmiao Sun,
Yajun Zhang,
Yulong Li,
Mitsuko WatabeUchida,
Samuel J. Gershman,
Naoshige Uchida
Publication year - 2020
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2020.11.013
Subject(s) - dopamine , biology , neuroscience , midbrain , stimulus (psychology) , cognitive psychology , psychology , central nervous system
Rapid phasic activity of midbrain dopamine neurons is thought to signal reward prediction errors (RPEs), resembling temporal difference errors used in machine learning. However, recent studies describing slowly increasing dopamine signals have instead proposed that they represent state values and arise independent from somatic spiking activity. Here we developed experimental paradigms using virtual reality that disambiguate RPEs from values. We examined dopamine circuit activity at various stages, including somatic spiking, calcium signals at somata and axons, and striatal dopamine concentrations. Our results demonstrate that ramping dopamine signals are consistent with RPEs rather than value, and this ramping is observed at all stages examined. Ramping dopamine signals can be driven by a dynamic stimulus that indicates a gradual approach to a reward. We provide a unified computational understanding of rapid phasic and slowly ramping dopamine signals: dopamine neurons perform a derivative-like computation over values on a moment-by-moment basis.

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