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Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos

Human mutations in the planar cell polarity component VANGL2 are associated with the neural tube defect spina bifida. Homozygous Vangl2 mutation in mice prevents initiation of neural tube closure, precluding analysis of its subsequent roles in neurulation. Spinal neurulation involves rostral-to-caud...

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Autores principales: Galea, Gabriel L., Nychyk, Oleksandr, Mole, Matteo A., Moulding, Dale, Savery, Dawn, Nikolopoulou, Evanthia, Henderson, Deborah J., Greene, Nicholas D. E., Copp, Andrew J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5897727/
https://www.ncbi.nlm.nih.gov/pubmed/29590636
http://dx.doi.org/10.1242/dmm.032219
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author Galea, Gabriel L.
Nychyk, Oleksandr
Mole, Matteo A.
Moulding, Dale
Savery, Dawn
Nikolopoulou, Evanthia
Henderson, Deborah J.
Greene, Nicholas D. E.
Copp, Andrew J.
author_facet Galea, Gabriel L.
Nychyk, Oleksandr
Mole, Matteo A.
Moulding, Dale
Savery, Dawn
Nikolopoulou, Evanthia
Henderson, Deborah J.
Greene, Nicholas D. E.
Copp, Andrew J.
author_sort Galea, Gabriel L.
collection PubMed
description Human mutations in the planar cell polarity component VANGL2 are associated with the neural tube defect spina bifida. Homozygous Vangl2 mutation in mice prevents initiation of neural tube closure, precluding analysis of its subsequent roles in neurulation. Spinal neurulation involves rostral-to-caudal ‘zippering’ until completion of closure is imminent, when a caudal-to-rostral closure point, ‘Closure 5’, arises at the caudal-most extremity of the posterior neuropore (PNP). Here, we used Grhl3(Cre) to delete Vangl2 in the surface ectoderm (SE) throughout neurulation and in an increasing proportion of PNP neuroepithelial cells at late neurulation stages. This deletion impaired PNP closure after the ∼25-somite stage and resulted in caudal spina bifida in 67% of Grhl3(Cre/+)Vangl2(Fl/Fl) embryos. In the dorsal SE, Vangl2 deletion diminished rostrocaudal cell body orientation, but not directional polarisation of cell divisions. In the PNP, Vangl2 disruption diminished mediolateral polarisation of apical neuroepithelial F-actin profiles and resulted in eversion of the caudal PNP. This eversion prevented elevation of the caudal PNP neural folds, which in control embryos is associated with formation of Closure 5 around the 25-somite stage. Closure 5 formation in control embryos is associated with a reduction in mechanical stress withstood at the main zippering point, as inferred from the magnitude of neural fold separation following zippering point laser ablation. This stress accommodation did not happen in Vangl2-disrupted embryos. Thus, disruption of Vangl2-dependent planar-polarised processes in the PNP neuroepithelium and SE preclude zippering point biomechanical accommodation associated with Closure 5 formation at the completion of PNP closure.
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spelling pubmed-58977272018-04-13 Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos Galea, Gabriel L. Nychyk, Oleksandr Mole, Matteo A. Moulding, Dale Savery, Dawn Nikolopoulou, Evanthia Henderson, Deborah J. Greene, Nicholas D. E. Copp, Andrew J. Dis Model Mech Research Article Human mutations in the planar cell polarity component VANGL2 are associated with the neural tube defect spina bifida. Homozygous Vangl2 mutation in mice prevents initiation of neural tube closure, precluding analysis of its subsequent roles in neurulation. Spinal neurulation involves rostral-to-caudal ‘zippering’ until completion of closure is imminent, when a caudal-to-rostral closure point, ‘Closure 5’, arises at the caudal-most extremity of the posterior neuropore (PNP). Here, we used Grhl3(Cre) to delete Vangl2 in the surface ectoderm (SE) throughout neurulation and in an increasing proportion of PNP neuroepithelial cells at late neurulation stages. This deletion impaired PNP closure after the ∼25-somite stage and resulted in caudal spina bifida in 67% of Grhl3(Cre/+)Vangl2(Fl/Fl) embryos. In the dorsal SE, Vangl2 deletion diminished rostrocaudal cell body orientation, but not directional polarisation of cell divisions. In the PNP, Vangl2 disruption diminished mediolateral polarisation of apical neuroepithelial F-actin profiles and resulted in eversion of the caudal PNP. This eversion prevented elevation of the caudal PNP neural folds, which in control embryos is associated with formation of Closure 5 around the 25-somite stage. Closure 5 formation in control embryos is associated with a reduction in mechanical stress withstood at the main zippering point, as inferred from the magnitude of neural fold separation following zippering point laser ablation. This stress accommodation did not happen in Vangl2-disrupted embryos. Thus, disruption of Vangl2-dependent planar-polarised processes in the PNP neuroepithelium and SE preclude zippering point biomechanical accommodation associated with Closure 5 formation at the completion of PNP closure. The Company of Biologists Ltd 2018-03-01 /pmc/articles/PMC5897727/ /pubmed/29590636 http://dx.doi.org/10.1242/dmm.032219 Text en © 2018. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/3.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Galea, Gabriel L.
Nychyk, Oleksandr
Mole, Matteo A.
Moulding, Dale
Savery, Dawn
Nikolopoulou, Evanthia
Henderson, Deborah J.
Greene, Nicholas D. E.
Copp, Andrew J.
Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos
title Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos
title_full Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos
title_fullStr Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos
title_full_unstemmed Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos
title_short Vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos
title_sort vangl2 disruption alters the biomechanics of late spinal neurulation leading to spina bifida in mouse embryos
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5897727/
https://www.ncbi.nlm.nih.gov/pubmed/29590636
http://dx.doi.org/10.1242/dmm.032219
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