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Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish

BACKGROUND: Twist1a and twist1b are the principal components of twists that negatively regulate a number of cellular signaling events. Expression of runx2 and downstream targets is essential for skeletal development and ventral organizer formation and specification in early vertebrate embryos, but w...

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Autores principales: Yang, Der-Chih, Tsai, Chih-Chien, Liao, Yun-Feng, Fu, Hui-Chuan, Tsay, Huey-Jen, Huang, Tung-Fu, Chen, Yau-Hung, Hung, Shih-Chieh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3210159/
https://www.ncbi.nlm.nih.gov/pubmed/22087291
http://dx.doi.org/10.1371/journal.pone.0027324
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author Yang, Der-Chih
Tsai, Chih-Chien
Liao, Yun-Feng
Fu, Hui-Chuan
Tsay, Huey-Jen
Huang, Tung-Fu
Chen, Yau-Hung
Hung, Shih-Chieh
author_facet Yang, Der-Chih
Tsai, Chih-Chien
Liao, Yun-Feng
Fu, Hui-Chuan
Tsay, Huey-Jen
Huang, Tung-Fu
Chen, Yau-Hung
Hung, Shih-Chieh
author_sort Yang, Der-Chih
collection PubMed
description BACKGROUND: Twist1a and twist1b are the principal components of twists that negatively regulate a number of cellular signaling events. Expression of runx2 and downstream targets is essential for skeletal development and ventral organizer formation and specification in early vertebrate embryos, but what controls ventral activity of maternal runx2 and how twists function in zebrafish embryogenesis still remain unclear. METHODOLOGY/PRINCIPAL FINDINGS: By studying the loss of twist induced by injection of morpholino-oligonucleotide in zebrafish, we found that twist1a and twist1b, but not twist2 or twist3, were required for proper skeletal development and dorsoventral patterning in early embryos. Overexpression of twist1a or twist1b following mRNA injection resulted in deteriorated skeletal development and formation of typical dorsalized embryos, whereas knockdown of twist1a and twist1b led to the formation of abnormal embryos with enhanced skeletal formation and typical ventralized patterning. Overexpression of twist1a or twist1b decreased the expression of runx2b, whereas twist1a and twist1b knockdown increased runx2b expression. We have further demonstrated that phenotypes induced by twist1a and twist1b knockdown were rescued by runx2b knockdown. CONCLUSIONS/SIGNIFICANCE: Together, these results suggest that twist1a and twist1b control skeletal development and dorsoventral patterning by regulating runx2b in zebrafish and provide potential targets for the treatment of diseases or syndromes associated with decreased skeletal development.
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spelling pubmed-32101592011-11-15 Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish Yang, Der-Chih Tsai, Chih-Chien Liao, Yun-Feng Fu, Hui-Chuan Tsay, Huey-Jen Huang, Tung-Fu Chen, Yau-Hung Hung, Shih-Chieh PLoS One Research Article BACKGROUND: Twist1a and twist1b are the principal components of twists that negatively regulate a number of cellular signaling events. Expression of runx2 and downstream targets is essential for skeletal development and ventral organizer formation and specification in early vertebrate embryos, but what controls ventral activity of maternal runx2 and how twists function in zebrafish embryogenesis still remain unclear. METHODOLOGY/PRINCIPAL FINDINGS: By studying the loss of twist induced by injection of morpholino-oligonucleotide in zebrafish, we found that twist1a and twist1b, but not twist2 or twist3, were required for proper skeletal development and dorsoventral patterning in early embryos. Overexpression of twist1a or twist1b following mRNA injection resulted in deteriorated skeletal development and formation of typical dorsalized embryos, whereas knockdown of twist1a and twist1b led to the formation of abnormal embryos with enhanced skeletal formation and typical ventralized patterning. Overexpression of twist1a or twist1b decreased the expression of runx2b, whereas twist1a and twist1b knockdown increased runx2b expression. We have further demonstrated that phenotypes induced by twist1a and twist1b knockdown were rescued by runx2b knockdown. CONCLUSIONS/SIGNIFICANCE: Together, these results suggest that twist1a and twist1b control skeletal development and dorsoventral patterning by regulating runx2b in zebrafish and provide potential targets for the treatment of diseases or syndromes associated with decreased skeletal development. Public Library of Science 2011-11-07 /pmc/articles/PMC3210159/ /pubmed/22087291 http://dx.doi.org/10.1371/journal.pone.0027324 Text en Yang et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yang, Der-Chih
Tsai, Chih-Chien
Liao, Yun-Feng
Fu, Hui-Chuan
Tsay, Huey-Jen
Huang, Tung-Fu
Chen, Yau-Hung
Hung, Shih-Chieh
Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish
title Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish
title_full Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish
title_fullStr Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish
title_full_unstemmed Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish
title_short Twist Controls Skeletal Development and Dorsoventral Patterning by Regulating Runx2 in Zebrafish
title_sort twist controls skeletal development and dorsoventral patterning by regulating runx2 in zebrafish
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3210159/
https://www.ncbi.nlm.nih.gov/pubmed/22087291
http://dx.doi.org/10.1371/journal.pone.0027324
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