Cargando…

Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure

Cellular generation of mechanical forces required to close the presumptive spinal neural tube, the ‘posterior neuropore’ (PNP), involves interkinetic nuclear migration (INM) and apical constriction. Both processes change the apical surface area of neuroepithelial cells, but how they are biomechanica...

Descripción completa

Detalles Bibliográficos
Autores principales: Butler, Max B., Short, Nina E., Maniou, Eirini, Alexandre, Paula, Greene, Nicholas D. E., Copp, Andrew J., Galea, Gabriel L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6633395/
https://www.ncbi.nlm.nih.gov/pubmed/31182644
http://dx.doi.org/10.1242/jcs.230300
_version_ 1783435721027092480
author Butler, Max B.
Short, Nina E.
Maniou, Eirini
Alexandre, Paula
Greene, Nicholas D. E.
Copp, Andrew J.
Galea, Gabriel L.
author_facet Butler, Max B.
Short, Nina E.
Maniou, Eirini
Alexandre, Paula
Greene, Nicholas D. E.
Copp, Andrew J.
Galea, Gabriel L.
author_sort Butler, Max B.
collection PubMed
description Cellular generation of mechanical forces required to close the presumptive spinal neural tube, the ‘posterior neuropore’ (PNP), involves interkinetic nuclear migration (INM) and apical constriction. Both processes change the apical surface area of neuroepithelial cells, but how they are biomechanically integrated is unknown. Rho kinase (Rock; herein referring to both ROCK1 and ROCK2) inhibition in mouse whole embryo culture progressively widens the PNP. PNP widening is not caused by increased mechanical tension opposing closure, as evidenced by diminished recoil following laser ablation. Rather, Rock inhibition diminishes neuroepithelial apical constriction, producing increased apical areas in neuroepithelial cells despite diminished tension. Neuroepithelial apices are also dynamically related to INM progression, with the smallest dimensions achieved in cells positive for the pan-M phase marker Rb phosphorylated at S780 (pRB-S780). A brief (2 h) Rock inhibition selectively increases the apical area of pRB-S780-positive cells, but not pre-anaphase cells positive for phosphorylated histone 3 (pHH3(+)). Longer inhibition (8 h, more than one cell cycle) increases apical areas in pHH3(+) cells, suggesting cell cycle-dependent accumulation of cells with larger apical surfaces during PNP widening. Consequently, arresting cell cycle progression with hydroxyurea prevents PNP widening following Rock inhibition. Thus, Rock-dependent apical constriction compensates for the PNP-widening effects of INM to enable progression of closure. This article has an associated First Person interview with the first authors of the paper.
format Online
Article
Text
id pubmed-6633395
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Company of Biologists Ltd
record_format MEDLINE/PubMed
spelling pubmed-66333952019-08-01 Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure Butler, Max B. Short, Nina E. Maniou, Eirini Alexandre, Paula Greene, Nicholas D. E. Copp, Andrew J. Galea, Gabriel L. J Cell Sci Research Article Cellular generation of mechanical forces required to close the presumptive spinal neural tube, the ‘posterior neuropore’ (PNP), involves interkinetic nuclear migration (INM) and apical constriction. Both processes change the apical surface area of neuroepithelial cells, but how they are biomechanically integrated is unknown. Rho kinase (Rock; herein referring to both ROCK1 and ROCK2) inhibition in mouse whole embryo culture progressively widens the PNP. PNP widening is not caused by increased mechanical tension opposing closure, as evidenced by diminished recoil following laser ablation. Rather, Rock inhibition diminishes neuroepithelial apical constriction, producing increased apical areas in neuroepithelial cells despite diminished tension. Neuroepithelial apices are also dynamically related to INM progression, with the smallest dimensions achieved in cells positive for the pan-M phase marker Rb phosphorylated at S780 (pRB-S780). A brief (2 h) Rock inhibition selectively increases the apical area of pRB-S780-positive cells, but not pre-anaphase cells positive for phosphorylated histone 3 (pHH3(+)). Longer inhibition (8 h, more than one cell cycle) increases apical areas in pHH3(+) cells, suggesting cell cycle-dependent accumulation of cells with larger apical surfaces during PNP widening. Consequently, arresting cell cycle progression with hydroxyurea prevents PNP widening following Rock inhibition. Thus, Rock-dependent apical constriction compensates for the PNP-widening effects of INM to enable progression of closure. This article has an associated First Person interview with the first authors of the paper. The Company of Biologists Ltd 2019-07-01 2019-07-01 /pmc/articles/PMC6633395/ /pubmed/31182644 http://dx.doi.org/10.1242/jcs.230300 Text en © 2019. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/4.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://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 Research Article
Butler, Max B.
Short, Nina E.
Maniou, Eirini
Alexandre, Paula
Greene, Nicholas D. E.
Copp, Andrew J.
Galea, Gabriel L.
Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure
title Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure
title_full Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure
title_fullStr Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure
title_full_unstemmed Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure
title_short Rho kinase-dependent apical constriction counteracts M-phase apical expansion to enable mouse neural tube closure
title_sort rho kinase-dependent apical constriction counteracts m-phase apical expansion to enable mouse neural tube closure
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6633395/
https://www.ncbi.nlm.nih.gov/pubmed/31182644
http://dx.doi.org/10.1242/jcs.230300
work_keys_str_mv AT butlermaxb rhokinasedependentapicalconstrictioncounteractsmphaseapicalexpansiontoenablemouseneuraltubeclosure
AT shortninae rhokinasedependentapicalconstrictioncounteractsmphaseapicalexpansiontoenablemouseneuraltubeclosure
AT manioueirini rhokinasedependentapicalconstrictioncounteractsmphaseapicalexpansiontoenablemouseneuraltubeclosure
AT alexandrepaula rhokinasedependentapicalconstrictioncounteractsmphaseapicalexpansiontoenablemouseneuraltubeclosure
AT greenenicholasde rhokinasedependentapicalconstrictioncounteractsmphaseapicalexpansiontoenablemouseneuraltubeclosure
AT coppandrewj rhokinasedependentapicalconstrictioncounteractsmphaseapicalexpansiontoenablemouseneuraltubeclosure
AT galeagabriell rhokinasedependentapicalconstrictioncounteractsmphaseapicalexpansiontoenablemouseneuraltubeclosure