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Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord

Inhibitory microcircuits are wired with a precision that underlies their complex regulatory roles in neural information processing. In the spinal cord, one specialized class of GABAergic interneurons (GABApre) mediates presynaptic inhibitory control of sensory-motor synapses. The synaptic targeting...

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Autores principales: Ashrafi, Soha, Betley, J. Nicholas, Comer, John D., Brenner-Morton, Susan, Bar, Vered, Shimoda, Yasushi, Watanabe, Kazutada, Peles, Elior, Jessell, Thomas M., Kaltschmidt, Julia A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3898991/
https://www.ncbi.nlm.nih.gov/pubmed/24411736
http://dx.doi.org/10.1016/j.neuron.2013.10.060
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author Ashrafi, Soha
Betley, J. Nicholas
Comer, John D.
Brenner-Morton, Susan
Bar, Vered
Shimoda, Yasushi
Watanabe, Kazutada
Peles, Elior
Jessell, Thomas M.
Kaltschmidt, Julia A.
author_facet Ashrafi, Soha
Betley, J. Nicholas
Comer, John D.
Brenner-Morton, Susan
Bar, Vered
Shimoda, Yasushi
Watanabe, Kazutada
Peles, Elior
Jessell, Thomas M.
Kaltschmidt, Julia A.
author_sort Ashrafi, Soha
collection PubMed
description Inhibitory microcircuits are wired with a precision that underlies their complex regulatory roles in neural information processing. In the spinal cord, one specialized class of GABAergic interneurons (GABApre) mediates presynaptic inhibitory control of sensory-motor synapses. The synaptic targeting of these GABAergic neurons exhibits an absolute dependence on proprioceptive sensory terminals, yet the molecular underpinnings of this specialized axoaxonic organization remain unclear. Here, we show that sensory expression of an NB2 (Contactin5)/Caspr4 coreceptor complex, together with spinal interneuron expression of NrCAM/CHL1, directs the high-density accumulation of GABAergic boutons on sensory terminals. Moreover, genetic elimination of NB2 results in a disproportionate stripping of inhibitory boutons from high-density GABApre-sensory synapses, suggesting that the preterminal axons of GABApre neurons compete for access to individual sensory terminals. Our findings define a recognition complex that contributes to the assembly and organization of a specialized GABAergic microcircuit.
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spelling pubmed-38989912014-01-24 Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord Ashrafi, Soha Betley, J. Nicholas Comer, John D. Brenner-Morton, Susan Bar, Vered Shimoda, Yasushi Watanabe, Kazutada Peles, Elior Jessell, Thomas M. Kaltschmidt, Julia A. Neuron Article Inhibitory microcircuits are wired with a precision that underlies their complex regulatory roles in neural information processing. In the spinal cord, one specialized class of GABAergic interneurons (GABApre) mediates presynaptic inhibitory control of sensory-motor synapses. The synaptic targeting of these GABAergic neurons exhibits an absolute dependence on proprioceptive sensory terminals, yet the molecular underpinnings of this specialized axoaxonic organization remain unclear. Here, we show that sensory expression of an NB2 (Contactin5)/Caspr4 coreceptor complex, together with spinal interneuron expression of NrCAM/CHL1, directs the high-density accumulation of GABAergic boutons on sensory terminals. Moreover, genetic elimination of NB2 results in a disproportionate stripping of inhibitory boutons from high-density GABApre-sensory synapses, suggesting that the preterminal axons of GABApre neurons compete for access to individual sensory terminals. Our findings define a recognition complex that contributes to the assembly and organization of a specialized GABAergic microcircuit. Cell Press 2014-01-08 /pmc/articles/PMC3898991/ /pubmed/24411736 http://dx.doi.org/10.1016/j.neuron.2013.10.060 Text en © 2014 The Authors https://creativecommons.org/licenses/by/3.0/This is an open access article under the CC BY license (https://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Ashrafi, Soha
Betley, J. Nicholas
Comer, John D.
Brenner-Morton, Susan
Bar, Vered
Shimoda, Yasushi
Watanabe, Kazutada
Peles, Elior
Jessell, Thomas M.
Kaltschmidt, Julia A.
Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord
title Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord
title_full Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord
title_fullStr Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord
title_full_unstemmed Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord
title_short Neuronal Ig/Caspr Recognition Promotes the Formation of Axoaxonic Synapses in Mouse Spinal Cord
title_sort neuronal ig/caspr recognition promotes the formation of axoaxonic synapses in mouse spinal cord
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3898991/
https://www.ncbi.nlm.nih.gov/pubmed/24411736
http://dx.doi.org/10.1016/j.neuron.2013.10.060
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