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GABAA-mediated inhibition of basolateral amygdala blocks reward devaluation in macaques
Laurie L Wellman1, Karen Gale, Ludise Malkova
1Interdisciplinary Program in Neuroscience and Department of Pharmacology, Georgetown University, Washington, DC 20007, USA.
Abstract:
Amygdala ablation disrupts reinforcer "devaluation" in monkeys (Malkova et al., 1997). Here, we tested the hypothesis that transient inactivation of amygdala by the GABA(A) agonist muscimol (MUS), specifically during the period of reward satiation, would have a similar effect. Six pigtail macaques were trained on a visual object discrimination task in which 60 objects were associated with one of two specific food rewards. Subsequently, we evaluated the selective satiation-induced change (devaluation) in object preference in probe sessions. We also examined the effect of the amygdala inactivation during the probe sessions to determine whether the inactivation limited to the testing period (and not during the satiation period) is sufficient to impair the expression of reinforcer devaluation. MUS infusions were aimed at basolateral amygdala (BLA) in a pseudorandomized design; each monkey received MUS or saline either before or after selective satiation with each of the two food rewards (six infusions total). Under the control (saline) condition, the monkeys significantly shifted their preference from objects representing the sated food rewards to those representing the nonsated rewards (30% change). When BLA was inactivated during selective satiation (i.e., MUS infused before satiation), this devaluation effect was blocked. In contrast, MUS infusion after satiation, so that it was present just during the testing period, did not impair the shift in object preference (27% change). Thus, BLA is necessary for the appropriate registration of the change in the reinforcer value but not for the subsequent expression of the devaluation involving its transfer to secondary reinforcers.
Insights
Transient inactivation of the basolateral amygdala (BLA) during reward satiation blocks reinforcer devaluation in monkeys. This suggests the BLA is crucial for registering value changes, not expressing them.
Area of Science:
- Neuroscience
- Behavioral Neuroscience
- Primate Cognition
Background:
- The amygdala plays a role in processing reward value and emotional learning.
- Previous research indicates amygdala lesions disrupt reinforcer devaluation, where the value of a reward decreases after satiation.
Purpose of the Study:
- To investigate if transient inactivation of the amygdala, specifically the basolateral amygdala (BLA), during reward satiation impairs reinforcer devaluation.
- To determine if BLA inactivation is sufficient to block the expression of devaluation when it occurs only during the testing phase.
Main Methods:
- Six pigtail macaques were trained on a visual object-reward association task.
- Transient inactivation of the BLA was achieved using muscimol (MUS) infusions.
- MUS or saline was administered before or after selective food reward satiation to assess its effect on object preference shifts.
Main Results:
- Control (saline) infusions resulted in a significant shift in object preference away from associated sated rewards.
- BLA inactivation during selective satiation (MUS infused before satiation) completely blocked this devaluation effect.
- BLA inactivation after satiation, during the testing period, did not impair the expression of devaluation.
Conclusions:
- The basolateral amygdala (BLA) is essential for the registration of changes in reinforcer value during satiation.
- The BLA is not required for the subsequent expression or transfer of this devaluation to associated secondary reinforcers.
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