Literature DB >> 21436395

Impact of infralimbic inputs on intercalated amygdala neurons: a biophysical modeling study.

Guoshi Li1, Taiju Amano, Denis Pare, Satish S Nair.   

Abstract

Intercalated (ITC) amygdala neurons regulate fear expression by controlling impulse traffic between the input (basolateral amygdala; BLA) and output (central nucleus; Ce) stations of the amygdala for conditioned fear responses. Previously, stimulation of the infralimbic (IL) cortex was found to reduce fear expression and the responsiveness of Ce neurons to BLA inputs. These effects were hypothesized to result from the activation of ITC cells projecting to Ce. However, ITC cells inhibit each other, leading to the question of how IL inputs could overcome the inter-ITC inhibition to regulate the responses of Ce neurons to aversive conditioned stimuli (CSs). To investigate this, we first developed a compartmental model of a single ITC cell that could reproduce their bistable electroresponsive properties, as observed experimentally. Next, we generated an ITC network that implemented the experimentally observed short-term synaptic plasticity of inhibitory inter-ITC connections. Model experiments showed that strongly adaptive CS-related BLA inputs elicited persistent responses in ITC cells despite the presence of inhibitory interconnections. The sustained CS-evoked activity of ITC cells resulted from an unusual slowly deinactivating K(+) current. Finally, over a wide range of stimulation strengths, brief IL activation caused a marked increase in the firing rate of ITC neurons, leading to a persistent decrease in Ce output, despite inter-ITC inhibition. Simulations revealed that this effect depended on the bistable properties and synaptic heterogeneity of ITC neurons. These results support the notion that IL inputs are in a strategic position to control extinction of conditioned fear via the activation of ITC neurons.

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Year:  2011        PMID: 21436395      PMCID: PMC3072774          DOI: 10.1101/lm.1938011

Source DB:  PubMed          Journal:  Learn Mem        ISSN: 1072-0502            Impact factor:   2.460


  56 in total

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6.  Morphological and electrophysiological properties of principal neurons in the rat lateral amygdala in vitro.

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  22 in total

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3.  Exposure to a fearful context during periods of memory plasticity impairs extinction via hyperactivation of frontal-amygdalar circuits.

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Review 5.  Mechanisms to medicines: elucidating neural and molecular substrates of fear extinction to identify novel treatments for anxiety disorders.

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Authors:  Dayan Knox; Sophie A George; Christopher J Fitzpatrick; Christine A Rabinak; Stephen Maren; Israel Liberzon
Journal:  Learn Mem       Date:  2012-01-12       Impact factor: 2.460

8.  A model of amygdala-hippocampal-prefrontal interaction in fear conditioning and extinction in animals.

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9.  Physiological identification and infralimbic responsiveness of rat intercalated amygdala neurons.

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Journal:  J Neurophysiol       Date:  2011-04-06       Impact factor: 2.714

10.  The intercalated nuclear complex of the primate amygdala.

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Journal:  Neuroscience       Date:  2016-05-30       Impact factor: 3.590

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