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Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish

Idiopathic scoliosis (IS) is the most common spinal deformity diagnosed in childhood or early adolescence, while the underlying pathogenesis of this serious condition remains largely unknown. Here, we report zebrafish ccdc57 mutants exhibiting scoliosis during late development, similar to that obser...

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Autores principales: Xie, Haibo, Kang, Yunsi, Liu, Junjun, Huang, Min, Dai, Zhicheng, Shi, Jiale, Wang, Shuo, Li, Lanqin, Li, Yuan, Zheng, Pengfei, Sun, Yi, Han, Qize, Zhang, Jingjing, Zhu, Zezhang, Xu, Leilei, Yelick, Pamela C., Cao, Muqing, Zhao, Chengtian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10013924/
https://www.ncbi.nlm.nih.gov/pubmed/36862758
http://dx.doi.org/10.1371/journal.pbio.3002008
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author Xie, Haibo
Kang, Yunsi
Liu, Junjun
Huang, Min
Dai, Zhicheng
Shi, Jiale
Wang, Shuo
Li, Lanqin
Li, Yuan
Zheng, Pengfei
Sun, Yi
Han, Qize
Zhang, Jingjing
Zhu, Zezhang
Xu, Leilei
Yelick, Pamela C.
Cao, Muqing
Zhao, Chengtian
author_facet Xie, Haibo
Kang, Yunsi
Liu, Junjun
Huang, Min
Dai, Zhicheng
Shi, Jiale
Wang, Shuo
Li, Lanqin
Li, Yuan
Zheng, Pengfei
Sun, Yi
Han, Qize
Zhang, Jingjing
Zhu, Zezhang
Xu, Leilei
Yelick, Pamela C.
Cao, Muqing
Zhao, Chengtian
author_sort Xie, Haibo
collection PubMed
description Idiopathic scoliosis (IS) is the most common spinal deformity diagnosed in childhood or early adolescence, while the underlying pathogenesis of this serious condition remains largely unknown. Here, we report zebrafish ccdc57 mutants exhibiting scoliosis during late development, similar to that observed in human adolescent idiopathic scoliosis (AIS). Zebrafish ccdc57 mutants developed hydrocephalus due to cerebrospinal fluid (CSF) flow defects caused by uncoordinated cilia beating in ependymal cells. Mechanistically, Ccdc57 localizes to ciliary basal bodies and controls the planar polarity of ependymal cells through regulating the organization of microtubule networks and proper positioning of basal bodies. Interestingly, ependymal cell polarity defects were first observed in ccdc57 mutants at approximately 17 days postfertilization, the same time when scoliosis became apparent and prior to multiciliated ependymal cell maturation. We further showed that mutant spinal cord exhibited altered expression pattern of the Urotensin neuropeptides, in consistent with the curvature of the spine. Strikingly, human IS patients also displayed abnormal Urotensin signaling in paraspinal muscles. Altogether, our data suggest that ependymal polarity defects are one of the earliest sign of scoliosis in zebrafish and disclose the essential and conserved roles of Urotensin signaling during scoliosis progression.
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spelling pubmed-100139242023-03-15 Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish Xie, Haibo Kang, Yunsi Liu, Junjun Huang, Min Dai, Zhicheng Shi, Jiale Wang, Shuo Li, Lanqin Li, Yuan Zheng, Pengfei Sun, Yi Han, Qize Zhang, Jingjing Zhu, Zezhang Xu, Leilei Yelick, Pamela C. Cao, Muqing Zhao, Chengtian PLoS Biol Research Article Idiopathic scoliosis (IS) is the most common spinal deformity diagnosed in childhood or early adolescence, while the underlying pathogenesis of this serious condition remains largely unknown. Here, we report zebrafish ccdc57 mutants exhibiting scoliosis during late development, similar to that observed in human adolescent idiopathic scoliosis (AIS). Zebrafish ccdc57 mutants developed hydrocephalus due to cerebrospinal fluid (CSF) flow defects caused by uncoordinated cilia beating in ependymal cells. Mechanistically, Ccdc57 localizes to ciliary basal bodies and controls the planar polarity of ependymal cells through regulating the organization of microtubule networks and proper positioning of basal bodies. Interestingly, ependymal cell polarity defects were first observed in ccdc57 mutants at approximately 17 days postfertilization, the same time when scoliosis became apparent and prior to multiciliated ependymal cell maturation. We further showed that mutant spinal cord exhibited altered expression pattern of the Urotensin neuropeptides, in consistent with the curvature of the spine. Strikingly, human IS patients also displayed abnormal Urotensin signaling in paraspinal muscles. Altogether, our data suggest that ependymal polarity defects are one of the earliest sign of scoliosis in zebrafish and disclose the essential and conserved roles of Urotensin signaling during scoliosis progression. Public Library of Science 2023-03-02 /pmc/articles/PMC10013924/ /pubmed/36862758 http://dx.doi.org/10.1371/journal.pbio.3002008 Text en © 2023 Xie et al 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/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Xie, Haibo
Kang, Yunsi
Liu, Junjun
Huang, Min
Dai, Zhicheng
Shi, Jiale
Wang, Shuo
Li, Lanqin
Li, Yuan
Zheng, Pengfei
Sun, Yi
Han, Qize
Zhang, Jingjing
Zhu, Zezhang
Xu, Leilei
Yelick, Pamela C.
Cao, Muqing
Zhao, Chengtian
Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish
title Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish
title_full Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish
title_fullStr Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish
title_full_unstemmed Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish
title_short Ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish
title_sort ependymal polarity defects coupled with disorganized ciliary beating drive abnormal cerebrospinal fluid flow and spine curvature in zebrafish
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10013924/
https://www.ncbi.nlm.nih.gov/pubmed/36862758
http://dx.doi.org/10.1371/journal.pbio.3002008
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