Literature DB >> 31358536

Dchs1-Fat4 regulation of osteogenic differentiation in mouse.

Ivan Crespo-Enriquez1, Tina Hodgson1, Sana Zakaria1, Erika Cadoni1, Mittal Shah2, Stephen Allen2, Ayman Al-Khishali1, Yaopan Mao3, Angela Yiu1, Jonna Petzold1, Guillermo Villagomez-Olea1, Andrew A Pitsillides2, Kenneth D Irvine3, Philippa Francis-West.   

Abstract

In human, mutations of the protocadherins FAT4 and DCHS1 result in Van Maldergem syndrome, which is characterised, in part, by craniofacial abnormalities. Here, we analyse the role of Dchs1-Fat4 signalling during osteoblast differentiation in mouse. We show that Fat4 and Dchs1 mutants mimic the craniofacial phenotype of the human syndrome and that Dchs1-Fat4 signalling is essential for osteoblast differentiation. In Dchs1/Fat4 mutants, proliferation of osteoprogenitors is increased and osteoblast differentiation is delayed. We show that loss of Dchs1-Fat4 signalling is linked to increased Yap-Tead activity and that Yap is expressed and required for proliferation in osteoprogenitors. In contrast, Taz is expressed in more-committed Runx2-expressing osteoblasts, Taz does not regulate osteoblast proliferation and Taz-Tead activity is unaffected in Dchs1/Fat4 mutants. Finally, we show that Yap and Taz differentially regulate the transcriptional activity of Runx2, and that the activity of Yap-Runx2 and Taz-Runx2 complexes is altered in Dchs1/Fat4 mutant osteoblasts. In conclusion, these data identify Dchs1-Fat4 as a signalling pathway in osteoblast differentiation, reveal its crucial role within the early Runx2 progenitors, and identify distinct requirements for Yap and Taz during osteoblast differentiation.
© 2019. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  Dchs1-Fat4; Osteoblast; Runx2; Yap/Taz

Mesh:

Substances:

Year:  2019        PMID: 31358536     DOI: 10.1242/dev.176776

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  5 in total

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Journal:  JCI Insight       Date:  2020-10-27

5.  Bone marrow derived stromal cells from myelodysplastic syndromes are altered but not clonally mutated in vivo.

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Journal:  Nat Commun       Date:  2021-10-25       Impact factor: 14.919

  5 in total

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