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Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice

Closed spinal dysraphisms are poorly understood malformations classified as neural tube (NT) defects. Several, including terminal myelocystocele, affect the distal spine. We have previously identified a NT closure-initiating point, Closure 5, in the distal spine of mice. Here, we document equivalent...

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Autores principales: Maniou, Eirini, Farah, Faduma, Marshall, Abigail R., Crane-Smith, Zoe, Krstevski, Andrea, Stathopoulou, Athanasia, Greene, Nicholas D. E., Copp, Andrew J., Galea, Gabriel L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10617625/
https://www.ncbi.nlm.nih.gov/pubmed/37756583
http://dx.doi.org/10.1242/dev.202139
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author Maniou, Eirini
Farah, Faduma
Marshall, Abigail R.
Crane-Smith, Zoe
Krstevski, Andrea
Stathopoulou, Athanasia
Greene, Nicholas D. E.
Copp, Andrew J.
Galea, Gabriel L.
author_facet Maniou, Eirini
Farah, Faduma
Marshall, Abigail R.
Crane-Smith, Zoe
Krstevski, Andrea
Stathopoulou, Athanasia
Greene, Nicholas D. E.
Copp, Andrew J.
Galea, Gabriel L.
author_sort Maniou, Eirini
collection PubMed
description Closed spinal dysraphisms are poorly understood malformations classified as neural tube (NT) defects. Several, including terminal myelocystocele, affect the distal spine. We have previously identified a NT closure-initiating point, Closure 5, in the distal spine of mice. Here, we document equivalent morphology of the caudal-most closing posterior neuropore (PNP) in mice and humans. Closure 5 forms in a region of active FGF signalling, and pharmacological FGF receptor blockade impairs its formation in cultured mouse embryos. Conditional genetic deletion of Fgfr1 in caudal embryonic tissues with Cdx2(Cre) diminishes neuroepithelial proliferation, impairs Closure 5 formation and delays PNP closure. After closure, the distal NT of Fgfr1-disrupted embryos dilates to form a fluid-filled sac overlying ventrally flattened spinal cord. This phenotype resembles terminal myelocystocele. Histological analysis reveals regional and progressive loss of SHH- and FOXA2-positive ventral NT domains, resulting in OLIG2 labelling of the ventral-most NT. The OLIG2 domain is also subsequently lost, eventually producing a NT that is entirely positive for the dorsal marker PAX3. Thus, a terminal myelocystocele-like phenotype can arise after completion of NT closure with localised spinal mis-patterning caused by disruption of FGFR1 signalling.
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spelling pubmed-106176252023-11-01 Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice Maniou, Eirini Farah, Faduma Marshall, Abigail R. Crane-Smith, Zoe Krstevski, Andrea Stathopoulou, Athanasia Greene, Nicholas D. E. Copp, Andrew J. Galea, Gabriel L. Development Research Article Closed spinal dysraphisms are poorly understood malformations classified as neural tube (NT) defects. Several, including terminal myelocystocele, affect the distal spine. We have previously identified a NT closure-initiating point, Closure 5, in the distal spine of mice. Here, we document equivalent morphology of the caudal-most closing posterior neuropore (PNP) in mice and humans. Closure 5 forms in a region of active FGF signalling, and pharmacological FGF receptor blockade impairs its formation in cultured mouse embryos. Conditional genetic deletion of Fgfr1 in caudal embryonic tissues with Cdx2(Cre) diminishes neuroepithelial proliferation, impairs Closure 5 formation and delays PNP closure. After closure, the distal NT of Fgfr1-disrupted embryos dilates to form a fluid-filled sac overlying ventrally flattened spinal cord. This phenotype resembles terminal myelocystocele. Histological analysis reveals regional and progressive loss of SHH- and FOXA2-positive ventral NT domains, resulting in OLIG2 labelling of the ventral-most NT. The OLIG2 domain is also subsequently lost, eventually producing a NT that is entirely positive for the dorsal marker PAX3. Thus, a terminal myelocystocele-like phenotype can arise after completion of NT closure with localised spinal mis-patterning caused by disruption of FGFR1 signalling. The Company of Biologists Ltd 2023-10-10 /pmc/articles/PMC10617625/ /pubmed/37756583 http://dx.doi.org/10.1242/dev.202139 Text en © 2023. Published by The Company of Biologists Ltd https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0 (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
Maniou, Eirini
Farah, Faduma
Marshall, Abigail R.
Crane-Smith, Zoe
Krstevski, Andrea
Stathopoulou, Athanasia
Greene, Nicholas D. E.
Copp, Andrew J.
Galea, Gabriel L.
Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice
title Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice
title_full Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice
title_fullStr Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice
title_full_unstemmed Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice
title_short Caudal Fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice
title_sort caudal fgfr1 disruption produces localised spinal mis-patterning and a terminal myelocystocele-like phenotype in mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10617625/
https://www.ncbi.nlm.nih.gov/pubmed/37756583
http://dx.doi.org/10.1242/dev.202139
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