Literature DB >> 17072835

Novel interneuronal network in the mouse posterior piriform cortex.

Chunzhao Zhang1, Gábor Szabó, Ferenc Erdélyi, James D Rose, Qian-Quan Sun.   

Abstract

The neural circuits of the piriform cortex mediate field potential oscillations and complex functions related to integrating odor cues with behavior, affective states, and multisensory processing. Previous anatomical studies have established major neural pathways linking the piriform cortex to other cortical and subcortical regions and major glutamatergic and GABAergic neuronal subtypes within the piriform circuits. However, the quantitative properties of diverse piriform interneurons are unknown. Using quantitative neural anatomical analysis and electrophysiological recording applied to a GAD65-EGFP transgenic mouse expressing GFP (green fluorescent protein) under the control of the GAD65 promoter, here we report a novel inhibitory network that is composed of neurons positive for GAD65-EGFP in the posterior piriform cortex (PPC). These interneurons had stereotyped dendritic and axonal properties that were distinct from basket cells or interneurons expressing various calcium-binding proteins (parvalbumin, calbindin, and calretinin) within the PPC. The GAD65-GFP neurons are GABAergic and outnumbered any other interneurons (expressing parvalbumin, calbindin, and calretinin) we studied. The firing pattern of these interneurons was highly homogenous and is similar to the regular-spiking nonpyramidal (RSNP) interneurons reported in primary sensory and other neocortical regions. Robust dye coupling among these interneurons and expression of connexin 36 suggested that they form electrically coupled networks. The predominant targets of descending axons of these interneurons were the dendrites of Layer III principal cells. Additionally, synapses were found on dendrites and somata of deep Layer II principal neurons and Layer III basket cells. A similar interneuronal subtype was also found in GAD65-EGFP-negative mouse. The extensive dendritic bifurcation at superficial lamina IA among horizontal afferent fibers and unique axonal targeting pattern suggests that these interneurons may play a role in direct feedforward inhibitory and disinhibitory olfactory processing. We conclude that the GAD65-GFP neurons may play distinct roles in regulating information flow and olfactory-related oscillation within the PPC in vivo.

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Year:  2006        PMID: 17072835     DOI: 10.1002/cne.21166

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  17 in total

1.  Differential metabotropic glutamate receptor expression and modulation in two neocortical inhibitory networks.

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2.  The mouse olfactory peduncle.

Authors:  Peter C Brunjes; Rachel B Kay; J P Arrivillaga
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Review 3.  Assessment of direct knowledge of the human olfactory system.

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4.  The Laminar Organization of Piriform Cortex Follows a Selective Developmental and Migratory Program Established by Cell Lineage.

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Journal:  Cereb Cortex       Date:  2019-01-01       Impact factor: 5.357

5.  Generalized vs. stimulus-specific learned fear differentially modifies stimulus encoding in primary sensory cortex of awake rats.

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Review 6.  Odor representations in mammalian cortical circuits.

Authors:  Jeffry S Isaacson
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7.  Characteristics of GABAergic and cholinergic neurons in perinuclear zone of mouse supraoptic nucleus.

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8.  Matching of feedback inhibition with excitation ensures fidelity of information flow in the anterior piriform cortex.

Authors:  D C Sheridan; A R Hughes; F Erdélyi; G Szabó; S T Hentges; N E Schoppa
Journal:  Neuroscience       Date:  2014-06-24       Impact factor: 3.590

9.  GABAergic inhibitory interneurons in the posterior piriform cortex of the GAD67-GFP mouse.

Authors:  Andrew Young; Qian-Quan Sun
Journal:  Cereb Cortex       Date:  2009-04-09       Impact factor: 5.357

10.  Distribution of CaMKIIα expression in the brain in vivo, studied by CaMKIIα-GFP mice.

Authors:  Xinjun Wang; Chunzhao Zhang; Gábor Szábo; Qian-Quan Sun
Journal:  Brain Res       Date:  2013-04-28       Impact factor: 3.252

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