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bioRxiv · 10.1101/2025.01.26.634924

Striatal cell-type specific stability and reorganization underlying agency and habit

Abstract

Goal-directed behavior is guided by learned action-outcome associations, allowing actions to adapt when outcomes change. With repetition, behavioral control shifts toward habit, enabling more automatic action execution, but reducing flexibility to outcome changes. Here, we used longitudinal, cellular-resolution calcium imaging, chemogenetics, instrumental conditioning, and the outcome devaluation test to ask how dorsomedial striatum D1+ and D2/A2A+ neurons contribute to the formation of goal-directed behavior and habit. DMS D1+ neurons stably encode instrumental actions, carry information about behavioral engagement and organization, and develop and maintain action-reward representational similarity and conjunctive activation with learning. Correspondingly, these neurons are critical for action-outcome learning and goal-directed decision making. In contrast, one ensemble of DMS A2A+ neurons transiently encodes actions during early action-outcome learning and another slowly starts to encode actions as habits form. Similarly, DMS A2A+ neurons transiently mediate action-outcome learning and become dispensable for goal-directed decision making. Thus, action-outcome associations are learned through DMS D1+ and A2A+ neuronal activity but only DMS D1+ neurons maintain support of adaptive, goal-directed decision making. Habit formation is associated with reorganization of A2A+ neuronal encoding. These data reveal a cell-type-specific dissociation between stable v. reorganizing striatal action representations paralleled by persistent v. transient contributions to goal-directed control.

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BibTeXRIS

Malvaez, M., Liang, A., Hall, B. S., Giovanniello, J. R., Paredes, N., Gonzalez, J. Y., Blair, G. J., Sias, A. C., Murphy, M. D., Guo, W., Wang, A., Singh, M., Griffin, N. K., Bridges, S. P., Wiener, A., Pimenta, J. S., Holley, S. M., Cepeda, C., Levine, M. S., Blair, H. T., Wikenheiser, A. M., Wassum, K. M.. 2025-01-26. Striatal cell-type specific stability and reorganization underlying agency and habit. https://doi.org/10.1101/2025.01.26.634924

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