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Neural Encoding in Orbitofrontal Cortex and Basolateral Amygdala During Olfactory Discrimination Learning

Overview
Journal J Neurosci
Specialty Neurology
Date 1999 Feb 19
PMID 10024371
Citations 255
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Abstract

Orbitofrontal cortex (OFC) is part of a network of structures involved in adaptive behavior and decision making. Interconnections between OFC and basolateral amygdala (ABL) may be critical for encoding the motivational significance of stimuli used to guide behavior. Indeed, much research indicates that neurons in OFC and ABL fire selectively to cues based on their associative significance. In the current study recordings were made in each region within a behavioral paradigm that allowed comparison of the development of associative encoding over the course of learning. In each recording session, rats were presented with novel odors that were informative about the outcome of making a response and had to learn to withhold a response after sampling an odor that signaled a negative outcome. In some cases, reversal training was performed in the same session as the initial learning. Ninety-six of the 328 neurons recorded in OFC and 60 of the 229 neurons recorded in ABL exhibited selective activity during evaluation of the odor cues after learning had occurred. A substantial proportion of those neurons in ABL developed selective activity very early in training, and many reversed selectivity rapidly after reversal. In contrast, those neurons in OFC rarely exhibited selective activity during odor evaluation before the rats reached the criterion for learning, and far fewer reversed selectivity after reversal. The findings support a model in which ABL encodes the motivational significance of cues and OFC uses this information in the selection and execution of an appropriate behavioral strategy.

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References
1.
Bechara A, Damasio H, Tranel D, Damasio A . Deciding advantageously before knowing the advantageous strategy. Science. 1997; 275(5304):1293-5. DOI: 10.1126/science.275.5304.1293. View

2.
Quirk G, Repa C, LeDoux J . Fear conditioning enhances short-latency auditory responses of lateral amygdala neurons: parallel recordings in the freely behaving rat. Neuron. 1995; 15(5):1029-39. DOI: 10.1016/0896-6273(95)90092-6. View

3.
Everitt B, Cador M, Robbins T . Interactions between the amygdala and ventral striatum in stimulus-reward associations: studies using a second-order schedule of sexual reinforcement. Neuroscience. 1989; 30(1):63-75. DOI: 10.1016/0306-4522(89)90353-9. View

4.
Watanabe M . Prefrontal unit activity during associative learning in the monkey. Exp Brain Res. 1990; 80(2):296-309. DOI: 10.1007/BF00228157. View

5.
Critchley H, Rolls E . Olfactory neuronal responses in the primate orbitofrontal cortex: analysis in an olfactory discrimination task. J Neurophysiol. 1996; 75(4):1659-72. DOI: 10.1152/jn.1996.75.4.1659. View