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Orbitofrontal Circuits Control Multiple Reinforcement-Learning Processes.

Stephanie M Groman | Colby Keistler | Alex J Keip | Emma Hammarlund | Ralph J DiLeone | Christopher Pittenger | Daeyeol Lee | Jane R Taylor
Neuron | 2019

Adaptive decision making in dynamic environments requires multiple reinforcement-learning steps that may be implemented by dissociable neural circuits. Here, we used a novel directionally specific viral ablation approach to investigate the function of several anatomically defined orbitofrontal cortex (OFC) circuits during adaptive, flexible decision making in rats trained on a probabilistic reversal learning task. Ablation of OFC neurons projecting to the nucleus accumbens selectively disrupted performance following a reversal, by disrupting the use of negative outcomes to guide subsequent choices. Ablation of amygdala neurons projecting to the OFC also impaired reversal performance, but due to disruptions in the use of positive outcomes to guide subsequent choices. Ablation of OFC neurons projecting to the amygdala, by contrast, enhanced reversal performance by destabilizing action values. Our data are inconsistent with a unitary function of the OFC in decision making. Rather, distinct OFC-amygdala-striatal circuits mediate distinct components of the action-value updating and maintenance necessary for decision making.

Pubmed ID: 31253468

Associated grants

  • Agency: NIDA NIH HHS, United States
    Id: R01 DA043443
  • Agency: NIMH NIH HHS, United States
    Id: R01 MH091861
  • Agency: NCATS NIH HHS, United States
    Id: UL1 TR001863
  • Agency: NIDA NIH HHS, United States
    Id: R01 DA041480
  • Agency: NIAAA NIH HHS, United States
    Id: P50 AA012870

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