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Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification

Endochondral ossification initiates the growth of the majority of the mammalian skeleton and is tightly controlled through gene regulatory networks. The forkhead box transcription factors Foxc1 and Foxc2 regulate aspects of osteoblast function in the formation of the skeleton, but their roles in cho...

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Autores principales: Almubarak, Asra, Lavy, Rotem, Srnic, Nikola, Hu, Yawen, Maripuri, Devi Priyanka, Kume, Tsutomo, Berry, Fred B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8383119/
https://www.ncbi.nlm.nih.gov/pubmed/34331943
http://dx.doi.org/10.1016/j.jbc.2021.101020
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author Almubarak, Asra
Lavy, Rotem
Srnic, Nikola
Hu, Yawen
Maripuri, Devi Priyanka
Kume, Tsutomo
Berry, Fred B.
author_facet Almubarak, Asra
Lavy, Rotem
Srnic, Nikola
Hu, Yawen
Maripuri, Devi Priyanka
Kume, Tsutomo
Berry, Fred B.
author_sort Almubarak, Asra
collection PubMed
description Endochondral ossification initiates the growth of the majority of the mammalian skeleton and is tightly controlled through gene regulatory networks. The forkhead box transcription factors Foxc1 and Foxc2 regulate aspects of osteoblast function in the formation of the skeleton, but their roles in chondrocytes to control endochondral ossification are less clear. Here, we demonstrate that Foxc1 expression is directly regulated by the activity of SRY (sex-determining region Y)-box 9, one of the earliest transcription factors to specify the chondrocyte lineage. Moreover, we demonstrate that elevated expression of Foxc1 promotes chondrocyte differentiation in mouse embryonic stem cells and loss of Foxc1 function inhibits chondrogenesis in vitro. Using chondrocyte-targeted deletion of Foxc1 and Foxc2 in mice, we reveal a role for these factors in chondrocyte differentiation in vivo. Loss of both Foxc1 and Foxc2 caused a general skeletal dysplasia predominantly affecting the vertebral column. The long bones of the limbs were smaller, mineralization was reduced, and organization of the growth plate was disrupted; in particular, the stacked columnar organization of the proliferative chondrocyte layer was reduced in size and cell proliferation was decreased. Differential gene expression analysis indicated disrupted expression patterns of chondrogenesis and ossification genes throughout the entire process of endochondral ossification in chondrocyte-specific Foxc1/Foxc2 KO embryos. Our results suggest that Foxc1 and Foxc2 are required for normal chondrocyte differentiation and function, as loss of both genes results in disorganization of the growth plate, reduced chondrocyte proliferation, and delays in chondrocyte hypertrophy that prevents ossification of the skeleton.
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spelling pubmed-83831192021-08-30 Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification Almubarak, Asra Lavy, Rotem Srnic, Nikola Hu, Yawen Maripuri, Devi Priyanka Kume, Tsutomo Berry, Fred B. J Biol Chem Research Article Endochondral ossification initiates the growth of the majority of the mammalian skeleton and is tightly controlled through gene regulatory networks. The forkhead box transcription factors Foxc1 and Foxc2 regulate aspects of osteoblast function in the formation of the skeleton, but their roles in chondrocytes to control endochondral ossification are less clear. Here, we demonstrate that Foxc1 expression is directly regulated by the activity of SRY (sex-determining region Y)-box 9, one of the earliest transcription factors to specify the chondrocyte lineage. Moreover, we demonstrate that elevated expression of Foxc1 promotes chondrocyte differentiation in mouse embryonic stem cells and loss of Foxc1 function inhibits chondrogenesis in vitro. Using chondrocyte-targeted deletion of Foxc1 and Foxc2 in mice, we reveal a role for these factors in chondrocyte differentiation in vivo. Loss of both Foxc1 and Foxc2 caused a general skeletal dysplasia predominantly affecting the vertebral column. The long bones of the limbs were smaller, mineralization was reduced, and organization of the growth plate was disrupted; in particular, the stacked columnar organization of the proliferative chondrocyte layer was reduced in size and cell proliferation was decreased. Differential gene expression analysis indicated disrupted expression patterns of chondrogenesis and ossification genes throughout the entire process of endochondral ossification in chondrocyte-specific Foxc1/Foxc2 KO embryos. Our results suggest that Foxc1 and Foxc2 are required for normal chondrocyte differentiation and function, as loss of both genes results in disorganization of the growth plate, reduced chondrocyte proliferation, and delays in chondrocyte hypertrophy that prevents ossification of the skeleton. American Society for Biochemistry and Molecular Biology 2021-07-29 /pmc/articles/PMC8383119/ /pubmed/34331943 http://dx.doi.org/10.1016/j.jbc.2021.101020 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Almubarak, Asra
Lavy, Rotem
Srnic, Nikola
Hu, Yawen
Maripuri, Devi Priyanka
Kume, Tsutomo
Berry, Fred B.
Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification
title Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification
title_full Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification
title_fullStr Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification
title_full_unstemmed Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification
title_short Loss of Foxc1 and Foxc2 function in chondroprogenitor cells disrupts endochondral ossification
title_sort loss of foxc1 and foxc2 function in chondroprogenitor cells disrupts endochondral ossification
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8383119/
https://www.ncbi.nlm.nih.gov/pubmed/34331943
http://dx.doi.org/10.1016/j.jbc.2021.101020
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