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Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement

Diverse types of cortical interneurons (INs) mediate various kinds of inhibitory control mechanisms to balance and shape network activity. Distinct IN subtypes develop uniquely organized axonal arbors that innervate different subcellular compartments of excitatory principal neurons (PNs), which crit...

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Autores principales: Steinecke, André, Hozhabri, Ellie, Tapanes, Stephen, Ishino, Yugo, Zeng, Hongkui, Kamasawa, Naomi, Taniguchi, Hiroki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5458751/
https://www.ncbi.nlm.nih.gov/pubmed/28584877
http://dx.doi.org/10.1523/ENEURO.0057-17.2017
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author Steinecke, André
Hozhabri, Ellie
Tapanes, Stephen
Ishino, Yugo
Zeng, Hongkui
Kamasawa, Naomi
Taniguchi, Hiroki
author_facet Steinecke, André
Hozhabri, Ellie
Tapanes, Stephen
Ishino, Yugo
Zeng, Hongkui
Kamasawa, Naomi
Taniguchi, Hiroki
author_sort Steinecke, André
collection PubMed
description Diverse types of cortical interneurons (INs) mediate various kinds of inhibitory control mechanisms to balance and shape network activity. Distinct IN subtypes develop uniquely organized axonal arbors that innervate different subcellular compartments of excitatory principal neurons (PNs), which critically contribute to determining their output properties. However, it remains poorly understood how they establish this peculiar axonal organization and synaptic connectivity during development. Here, taking advantage of genetic labeling of IN progenitors, we examined developmental processes of axonal arbors and synaptic connections formed by murine chandelier cells (ChCs), which innervate axon initial segments (AISs) of PNs and thus powerfully regulate their spike generation. Our quantitative analysis by light microscopy revealed that ChCs overgrow and subsequently refine axonal branches as well as varicosities. Interestingly, we found that although a significant number of axonal varicosities are formed off AISs in addition to on AISs, presynaptic markers are predominantly colocalized with those on AISs throughout development. Immunoelectron microscopic (IEM) analysis also demonstrated that only varicosities apposed to AISs contain presynaptic profiles. These results suggest that subcellular synapse specificity of ChCs is genetically predetermined while axonal geometry is shaped through remodeling. Molecular cues localized at AISs may regulate target recognition and synapse formation by ChCs.
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spelling pubmed-54587512017-06-05 Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement Steinecke, André Hozhabri, Ellie Tapanes, Stephen Ishino, Yugo Zeng, Hongkui Kamasawa, Naomi Taniguchi, Hiroki eNeuro New Research Diverse types of cortical interneurons (INs) mediate various kinds of inhibitory control mechanisms to balance and shape network activity. Distinct IN subtypes develop uniquely organized axonal arbors that innervate different subcellular compartments of excitatory principal neurons (PNs), which critically contribute to determining their output properties. However, it remains poorly understood how they establish this peculiar axonal organization and synaptic connectivity during development. Here, taking advantage of genetic labeling of IN progenitors, we examined developmental processes of axonal arbors and synaptic connections formed by murine chandelier cells (ChCs), which innervate axon initial segments (AISs) of PNs and thus powerfully regulate their spike generation. Our quantitative analysis by light microscopy revealed that ChCs overgrow and subsequently refine axonal branches as well as varicosities. Interestingly, we found that although a significant number of axonal varicosities are formed off AISs in addition to on AISs, presynaptic markers are predominantly colocalized with those on AISs throughout development. Immunoelectron microscopic (IEM) analysis also demonstrated that only varicosities apposed to AISs contain presynaptic profiles. These results suggest that subcellular synapse specificity of ChCs is genetically predetermined while axonal geometry is shaped through remodeling. Molecular cues localized at AISs may regulate target recognition and synapse formation by ChCs. Society for Neuroscience 2017-05-12 /pmc/articles/PMC5458751/ /pubmed/28584877 http://dx.doi.org/10.1523/ENEURO.0057-17.2017 Text en Copyright © 2017 Steinecke et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle New Research
Steinecke, André
Hozhabri, Ellie
Tapanes, Stephen
Ishino, Yugo
Zeng, Hongkui
Kamasawa, Naomi
Taniguchi, Hiroki
Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement
title Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement
title_full Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement
title_fullStr Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement
title_full_unstemmed Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement
title_short Neocortical Chandelier Cells Developmentally Shape Axonal Arbors through Reorganization but Establish Subcellular Synapse Specificity without Refinement
title_sort neocortical chandelier cells developmentally shape axonal arbors through reorganization but establish subcellular synapse specificity without refinement
topic New Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5458751/
https://www.ncbi.nlm.nih.gov/pubmed/28584877
http://dx.doi.org/10.1523/ENEURO.0057-17.2017
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