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Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins

BACKGROUND: The specificity of synaptic connections is fundamental for proper neural circuit function. Specific neuronal connections that underlie information processing in the sensory cortex are initially established without sensory experiences to a considerable extent, and then the connections are...

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Autores principales: Tarusawa, Etsuko, Sanbo, Makoto, Okayama, Atsushi, Miyashita, Toshio, Kitsukawa, Takashi, Hirayama, Teruyoshi, Hirabayashi, Takahiro, Hasegawa, Sonoko, Kaneko, Ryosuke, Toyoda, Shunsuke, Kobayashi, Toshihiro, Kato-Itoh, Megumi, Nakauchi, Hiromitsu, Hirabayashi, Masumi, Yagi, Takeshi, Yoshimura, Yumiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5133762/
https://www.ncbi.nlm.nih.gov/pubmed/27912755
http://dx.doi.org/10.1186/s12915-016-0326-6
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author Tarusawa, Etsuko
Sanbo, Makoto
Okayama, Atsushi
Miyashita, Toshio
Kitsukawa, Takashi
Hirayama, Teruyoshi
Hirabayashi, Takahiro
Hasegawa, Sonoko
Kaneko, Ryosuke
Toyoda, Shunsuke
Kobayashi, Toshihiro
Kato-Itoh, Megumi
Nakauchi, Hiromitsu
Hirabayashi, Masumi
Yagi, Takeshi
Yoshimura, Yumiko
author_facet Tarusawa, Etsuko
Sanbo, Makoto
Okayama, Atsushi
Miyashita, Toshio
Kitsukawa, Takashi
Hirayama, Teruyoshi
Hirabayashi, Takahiro
Hasegawa, Sonoko
Kaneko, Ryosuke
Toyoda, Shunsuke
Kobayashi, Toshihiro
Kato-Itoh, Megumi
Nakauchi, Hiromitsu
Hirabayashi, Masumi
Yagi, Takeshi
Yoshimura, Yumiko
author_sort Tarusawa, Etsuko
collection PubMed
description BACKGROUND: The specificity of synaptic connections is fundamental for proper neural circuit function. Specific neuronal connections that underlie information processing in the sensory cortex are initially established without sensory experiences to a considerable extent, and then the connections are individually refined through sensory experiences. Excitatory neurons arising from the same single progenitor cell are preferentially connected in the postnatal cortex, suggesting that cell lineage contributes to the initial wiring of neurons. However, the postnatal developmental process of lineage-dependent connection specificity is not known, nor how clonal neurons, which are derived from the same neural stem cell, are stamped with the identity of their common neural stem cell and guided to form synaptic connections. RESULTS: We show that cortical excitatory neurons that arise from the same neural stem cell and reside within the same layer preferentially establish reciprocal synaptic connections in the mouse barrel cortex. We observed a transient increase in synaptic connections between clonal but not nonclonal neuron pairs during postnatal development, followed by selective stabilization of the reciprocal connections between clonal neuron pairs. Furthermore, we demonstrate that selective stabilization of the reciprocal connections between clonal neuron pairs is impaired by the deficiency of DNA methyltransferase 3b (Dnmt3b), which determines DNA-methylation patterns of genes in stem cells during early corticogenesis. Dnmt3b regulates the postnatal expression of clustered protocadherin (cPcdh) isoforms, a family of adhesion molecules. We found that cPcdh deficiency in clonal neuron pairs impairs the whole process of the formation and stabilization of connections to establish lineage-specific connection reciprocity. CONCLUSIONS: Our results demonstrate that local, reciprocal neural connections are selectively formed and retained between clonal neurons in layer 4 of the barrel cortex during postnatal development, and that Dnmt3b and cPcdhs are required for the establishment of lineage-specific reciprocal connections. These findings indicate that lineage-specific connection reciprocity is predetermined by Dnmt3b during embryonic development, and that the cPcdhs contribute to postnatal cortical neuron identification to guide lineage-dependent synaptic connections in the neocortex. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12915-016-0326-6) contains supplementary material, which is available to authorized users.
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spelling pubmed-51337622016-12-15 Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins Tarusawa, Etsuko Sanbo, Makoto Okayama, Atsushi Miyashita, Toshio Kitsukawa, Takashi Hirayama, Teruyoshi Hirabayashi, Takahiro Hasegawa, Sonoko Kaneko, Ryosuke Toyoda, Shunsuke Kobayashi, Toshihiro Kato-Itoh, Megumi Nakauchi, Hiromitsu Hirabayashi, Masumi Yagi, Takeshi Yoshimura, Yumiko BMC Biol Research Article BACKGROUND: The specificity of synaptic connections is fundamental for proper neural circuit function. Specific neuronal connections that underlie information processing in the sensory cortex are initially established without sensory experiences to a considerable extent, and then the connections are individually refined through sensory experiences. Excitatory neurons arising from the same single progenitor cell are preferentially connected in the postnatal cortex, suggesting that cell lineage contributes to the initial wiring of neurons. However, the postnatal developmental process of lineage-dependent connection specificity is not known, nor how clonal neurons, which are derived from the same neural stem cell, are stamped with the identity of their common neural stem cell and guided to form synaptic connections. RESULTS: We show that cortical excitatory neurons that arise from the same neural stem cell and reside within the same layer preferentially establish reciprocal synaptic connections in the mouse barrel cortex. We observed a transient increase in synaptic connections between clonal but not nonclonal neuron pairs during postnatal development, followed by selective stabilization of the reciprocal connections between clonal neuron pairs. Furthermore, we demonstrate that selective stabilization of the reciprocal connections between clonal neuron pairs is impaired by the deficiency of DNA methyltransferase 3b (Dnmt3b), which determines DNA-methylation patterns of genes in stem cells during early corticogenesis. Dnmt3b regulates the postnatal expression of clustered protocadherin (cPcdh) isoforms, a family of adhesion molecules. We found that cPcdh deficiency in clonal neuron pairs impairs the whole process of the formation and stabilization of connections to establish lineage-specific connection reciprocity. CONCLUSIONS: Our results demonstrate that local, reciprocal neural connections are selectively formed and retained between clonal neurons in layer 4 of the barrel cortex during postnatal development, and that Dnmt3b and cPcdhs are required for the establishment of lineage-specific reciprocal connections. These findings indicate that lineage-specific connection reciprocity is predetermined by Dnmt3b during embryonic development, and that the cPcdhs contribute to postnatal cortical neuron identification to guide lineage-dependent synaptic connections in the neocortex. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12915-016-0326-6) contains supplementary material, which is available to authorized users. BioMed Central 2016-12-02 /pmc/articles/PMC5133762/ /pubmed/27912755 http://dx.doi.org/10.1186/s12915-016-0326-6 Text en © Yoshimura et al. 2016 Open AccessThis article is 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 you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research Article
Tarusawa, Etsuko
Sanbo, Makoto
Okayama, Atsushi
Miyashita, Toshio
Kitsukawa, Takashi
Hirayama, Teruyoshi
Hirabayashi, Takahiro
Hasegawa, Sonoko
Kaneko, Ryosuke
Toyoda, Shunsuke
Kobayashi, Toshihiro
Kato-Itoh, Megumi
Nakauchi, Hiromitsu
Hirabayashi, Masumi
Yagi, Takeshi
Yoshimura, Yumiko
Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins
title Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins
title_full Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins
title_fullStr Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins
title_full_unstemmed Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins
title_short Establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the Dnmt3b DNA methyltransferase and clustered protocadherins
title_sort establishment of high reciprocal connectivity between clonal cortical neurons is regulated by the dnmt3b dna methyltransferase and clustered protocadherins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5133762/
https://www.ncbi.nlm.nih.gov/pubmed/27912755
http://dx.doi.org/10.1186/s12915-016-0326-6
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