Dopamine release-associated striatal blood oxygenation and whole-brain dynamics during associative learning

Dopaminergic signaling in the nucleus accumbens (NAc) is central to reward-based learning, but its relationship to brain-wide hemodynamics remains unclear. Using concurrent fMRI and dopamine photometry in awake, behaving mice, we reveal that associative learning induces a gradual temporal shift in NAc blood oxygenation responses that mirrors dopamine release dynamics. This shift emerges with cue-reward learning and extends across a distributed network encompassing the lateral septal complex, as well as prefrontal, insular, and hypothalamic regions. Further, dopamine transients tightly correspond with local blood oxygenation level dependent (BOLD) signals, and variations in reward value modulate delayed BOLD responses in both the NAc and additional subcortical structures. Regressing out the measured dopaminergic signal abolishes this reward-related modulation, suggesting that BOLD signals track dopaminergic reward prediction. These findings reveal a close relationship between dopamine signaling and widespread changes in brain activity during learning.

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Publication Details

Journal
Science Advances
Published
2026-10-07
DOI
https://doi.org/10.1126/sciadv.aed0935
Primary Topic
Neurotransmitter Receptor Influence on Behavior
Type
article
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article

Dopamine release-associated striatal blood oxygenation and whole-brain dynamics during associative learning

Amir Lawen, Darcy S. Peterka, Ishmail Abdus-Saboor, Daniela Lichtman et al.
Science Advances
Neurotransmitter Receptor Influence on Behavior
article

Dopamine release-associated striatal blood oxygenation and whole-brain dynamics during associative learning

Amir Lawen, Darcy S. Peterka, Ishmail Abdus-Saboor, Daniela Lichtman, Itamar Kahn, Isabella Succi
article en

Abstract

Dopaminergic signaling in the nucleus accumbens (NAc) is central to reward-based learning, but its relationship to brain-wide hemodynamics remains unclear. Using concurrent fMRI and dopamine photometry in awake, behaving mice, we reveal that associative learning induces a gradual temporal shift in NAc blood oxygenation responses that mirrors dopamine release dynamics. This shift emerges with cue-reward learning and extends across a distributed network encompassing the lateral septal complex, as well as prefrontal, insular, and hypothalamic regions. Further, dopamine transients tightly correspond with local blood oxygenation level dependent (BOLD) signals, and variations in reward value modulate delayed BOLD responses in both the NAc and additional subcortical structures. Regressing out the measured dopaminergic signal abolishes this reward-related modulation, suggesting that BOLD signals track dopaminergic reward prediction. These findings reveal a close relationship between dopamine signaling and widespread changes in brain activity during learning.

Science AdvancesVol. 12(41)
City University of New York (US), MIND Research Institute (US), Columbia University (US)
Openalex Percentile: Top 19%
Neurotransmitter Receptor Influence on Behavior
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Dopamine release-associated striatal blood oxygenation and whole-brain dynamics during associative learning — Amir Lawen, Darcy S. Peterka, et al. · Science Advances (2026) | TGRS Research Map | TGRS