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Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain

A hallmark of neurogenesis in the vertebrate brain is the apical–basal nuclear oscillation in polarized neural progenitor cells. Known as interkinetic nuclear migration (INM), these movements are synchronized with the cell cycle such that nuclei move basally during G1-phase and apically during G2-ph...

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Autores principales: Kosodo, Yoichi, Suetsugu, Taeko, Suda, Masumi, Mimori-Kiyosue, Yuko, Toida, Kazunori, Baba, Shoji A, Kimura, Akatsuki, Matsuzaki, Fumio
Formato: Texto
Lenguaje:English
Publicado: European Molecular Biology Organization 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3101991/
https://www.ncbi.nlm.nih.gov/pubmed/21441895
http://dx.doi.org/10.1038/emboj.2011.81
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author Kosodo, Yoichi
Suetsugu, Taeko
Suda, Masumi
Mimori-Kiyosue, Yuko
Toida, Kazunori
Baba, Shoji A
Kimura, Akatsuki
Matsuzaki, Fumio
author_facet Kosodo, Yoichi
Suetsugu, Taeko
Suda, Masumi
Mimori-Kiyosue, Yuko
Toida, Kazunori
Baba, Shoji A
Kimura, Akatsuki
Matsuzaki, Fumio
author_sort Kosodo, Yoichi
collection PubMed
description A hallmark of neurogenesis in the vertebrate brain is the apical–basal nuclear oscillation in polarized neural progenitor cells. Known as interkinetic nuclear migration (INM), these movements are synchronized with the cell cycle such that nuclei move basally during G1-phase and apically during G2-phase. However, it is unknown how the direction of movement and the cell cycle are tightly coupled. Here, we show that INM proceeds through the cell cycle-dependent linkage of cell-autonomous and non-autonomous mechanisms. During S to G2 progression, the microtubule-associated protein Tpx2 redistributes from the nucleus to the apical process, and promotes nuclear migration during G2-phase by altering microtubule organization. Thus, Tpx2 links cell-cycle progression and autonomous apical nuclear migration. In contrast, in vivo observations of implanted microbeads, acute S-phase arrest of surrounding cells and computational modelling suggest that the basal migration of G1-phase nuclei depends on a displacement effect by G2-phase nuclei migrating apically. Our model for INM explains how the dynamics of neural progenitors harmonize their extensive proliferation with the epithelial architecture in the developing brain.
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spelling pubmed-31019912011-07-05 Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain Kosodo, Yoichi Suetsugu, Taeko Suda, Masumi Mimori-Kiyosue, Yuko Toida, Kazunori Baba, Shoji A Kimura, Akatsuki Matsuzaki, Fumio EMBO J Article A hallmark of neurogenesis in the vertebrate brain is the apical–basal nuclear oscillation in polarized neural progenitor cells. Known as interkinetic nuclear migration (INM), these movements are synchronized with the cell cycle such that nuclei move basally during G1-phase and apically during G2-phase. However, it is unknown how the direction of movement and the cell cycle are tightly coupled. Here, we show that INM proceeds through the cell cycle-dependent linkage of cell-autonomous and non-autonomous mechanisms. During S to G2 progression, the microtubule-associated protein Tpx2 redistributes from the nucleus to the apical process, and promotes nuclear migration during G2-phase by altering microtubule organization. Thus, Tpx2 links cell-cycle progression and autonomous apical nuclear migration. In contrast, in vivo observations of implanted microbeads, acute S-phase arrest of surrounding cells and computational modelling suggest that the basal migration of G1-phase nuclei depends on a displacement effect by G2-phase nuclei migrating apically. Our model for INM explains how the dynamics of neural progenitors harmonize their extensive proliferation with the epithelial architecture in the developing brain. European Molecular Biology Organization 2011-05-04 2011-03-25 /pmc/articles/PMC3101991/ /pubmed/21441895 http://dx.doi.org/10.1038/emboj.2011.81 Text en Copyright © 2011, European Molecular Biology Organization https://creativecommons.org/licenses/by-nc-nd/3.0/This is an open-access article distributed under the terms of the Creative Commons Attribution Noncommercial No Derivative Works 3.0 Unported License, which permits distribution and reproduction in any medium, provided the original author and source are credited. This license does not permit commercial exploitation or the creation of derivative works without specific permission.
spellingShingle Article
Kosodo, Yoichi
Suetsugu, Taeko
Suda, Masumi
Mimori-Kiyosue, Yuko
Toida, Kazunori
Baba, Shoji A
Kimura, Akatsuki
Matsuzaki, Fumio
Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain
title Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain
title_full Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain
title_fullStr Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain
title_full_unstemmed Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain
title_short Regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain
title_sort regulation of interkinetic nuclear migration by cell cycle-coupled active and passive mechanisms in the developing brain
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3101991/
https://www.ncbi.nlm.nih.gov/pubmed/21441895
http://dx.doi.org/10.1038/emboj.2011.81
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