» Articles » PMID: 15044524

Axon Branching and Synaptic Bouton Phenotypes in GABAergic Nonpyramidal Cell Subtypes

Overview
Journal J Neurosci
Specialty Neurology
Date 2004 Mar 27
PMID 15044524
Citations 94
Authors
Affiliations
Soon will be listed here.
Abstract

GABAergic nonpyramidal cells, cortical interneurons, consist of heterogeneous subtypes differing in their axonal field and target selectivity. It remains to be investigated how the diverse innervation patterns are generated and how these spatially complicated, but synaptically specific wirings are achieved. Here, we asked whether a particular cell type obeys a specific branching and bouton arrangement principle or differs from others only in average morphometric values of the morphological template common to nonpyramidal cells. For this purpose, we subclassified nonpyramidal cells within each physiological class by quantitative parameters of somata, dendrites, and axons and characterized axon branching and bouton distribution patterns quantitatively. Each subtype showed a characteristic set of vertical and horizontal bouton spreads around the somata. Each parameter, such as branching angles, internode or interbouton intervals, followed its own characteristic distribution pattern irrespective of subtypes, suggesting that nonpyramidal cells have the common mechanism for formation of the axon branching pattern and bouton arrangement. Fitting of internode and interbouton interval distributions to the exponential indicated their apparent random occurrence. Decay constants of the fitted exponentials varied among nonpyramidal cells, but each subtype expressed a particular set of interbouton and internode interval averages. The distinctive combination of innervation field shape and local axon phenotypes suggests a marked functional difference in the laminar and columnar integration properties of different GABAergic subtypes, as well as the subtype-specific density of inhibited targets.

Citing Articles

GABAergic integration of transient and persistent neurons in the developing mouse somatosensory cortex.

Abusaada A, De Rosa F, Luhmann H, Kilb W, Sinning A Front Cell Neurosci. 2025; 19:1556174.

PMID: 40078325 PMC: 11897519. DOI: 10.3389/fncel.2025.1556174.


Early-Life Stress Caused by Maternal Deprivation Impacts Dendritic Morphology of Adult Male Mouse Neocortical Interneurons.

Nakhal M, Yassin L, Al Houqani S, Mydeen A, Ibrahim M, Shehab S Int J Mol Sci. 2025; 26(5).

PMID: 40076536 PMC: 11900613. DOI: 10.3390/ijms26051909.


Reelin differentially shapes dendrite morphology of medial entorhinal cortical ocean and island cells.

Hamad M, Daoud S, Petrova P, Rabaya O, Jbara A, Al Houqani S Development. 2024; 151(13).

PMID: 38856043 PMC: 11234379. DOI: 10.1242/dev.202449.


CCK+ Interneurons Contribute to Thalamus-Evoked Feed-Forward Inhibition in the Prelimbic Prefrontal Cortex.

Kamalova A, Manoocheri K, Liu X, Casello S, Huang M, Baimel C J Neurosci. 2024; 44(23).

PMID: 38697841 PMC: 11154858. DOI: 10.1523/JNEUROSCI.0957-23.2024.


Axons of cortical basket cells originating from dendrites develop higher local complexity than axons emerging from basket cell somata.

Gonda S, Riedel C, Reiner A, Kohler I, Wahle P Development. 2023; 150(22).

PMID: 37902086 PMC: 10690106. DOI: 10.1242/dev.202305.


References
1.
Kubota Y, Kawaguchi Y . Dependence of GABAergic synaptic areas on the interneuron type and target size. J Neurosci. 2000; 20(1):375-86. PMC: 6774130. View

2.
Gupta A, Wang Y, Markram H . Organizing principles for a diversity of GABAergic interneurons and synapses in the neocortex. Science. 2000; 287(5451):273-8. DOI: 10.1126/science.287.5451.273. View

3.
Cauli B, Porter J, Tsuzuki K, Lambolez B, Rossier J, Quenet B . Classification of fusiform neocortical interneurons based on unsupervised clustering. Proc Natl Acad Sci U S A. 2000; 97(11):6144-9. PMC: 18572. DOI: 10.1073/pnas.97.11.6144. View

4.
Kawaguchi Y . Distinct firing patterns of neuronal subtypes in cortical synchronized activities. J Neurosci. 2001; 21(18):7261-72. PMC: 6762994. View

5.
Wang Y, Gupta A, Toledo-Rodriguez M, Wu C, Markram H . Anatomical, physiological, molecular and circuit properties of nest basket cells in the developing somatosensory cortex. Cereb Cortex. 2002; 12(4):395-410. DOI: 10.1093/cercor/12.4.395. View