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YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells

Bone remodeling is vital to the maintenance of bone homeostasis and may lead to destructive skeletal diseases once the balance is disrupted. Crosstalk between Wnt and estrogen receptor (ER) signaling has been proposed in bone remodeling, but the underlying mechanism remains unclear. This study was d...

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Autores principales: Wang, Peiqi, Huang, Lingyi, Yang, Fan, Chen, Wanxi, Bai, Ding, Guo, Yongwen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10183651/
https://www.ncbi.nlm.nih.gov/pubmed/37197086
http://dx.doi.org/10.1002/mco2.246
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author Wang, Peiqi
Huang, Lingyi
Yang, Fan
Chen, Wanxi
Bai, Ding
Guo, Yongwen
author_facet Wang, Peiqi
Huang, Lingyi
Yang, Fan
Chen, Wanxi
Bai, Ding
Guo, Yongwen
author_sort Wang, Peiqi
collection PubMed
description Bone remodeling is vital to the maintenance of bone homeostasis and may lead to destructive skeletal diseases once the balance is disrupted. Crosstalk between Wnt and estrogen receptor (ER) signaling has been proposed in bone remodeling, but the underlying mechanism remains unclear. This study was designed to explore the effect of Wnt‐ER signaling during the osteogenic differentiation of bone marrow stromal cells (BMSCs). Rat BMSCs were isolated and identified using flow cytometry and stimulated with Wnt3a. Wnt3a treatment promoted osteogenic differentiation and mineralization of the BMSCs. Meanwhile, Wnt3a enhanced the expression of ERα as well as the canonical Wnt signaling mediator β‐catenin and the alternative Wnt signaling effector Yes‐associated protein 1 (YAP1). Interestingly, DNA pulldown assay revealed direct binding of transcriptional enhanced associate domain 1 (TEAD1) and lymphoid enhancer binding factor 1 (LEF1), transcriptional partners of YAP1 and β‐catenin, respectively, to the promoter region of ERα. In addition, inhibition of TEAD1 and LEF1 suppressed Wnt3‐promoted BMSC osteogenic differentiation and blocked Wnt3a‐induced ERα expression. Furthermore, an in vivo model of femoral bone defect also supported that Wnt3a facilitated bone healing in an ERα‐dependent way. Together, we suggest that Wnt3a promotes the osteogenic activity of BMSCs through YAP1 and β‐catenin‐dependent activation of ERα, via direct binding of TEAD1 and LEF1 to the ERα promoter.
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spelling pubmed-101836512023-05-16 YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells Wang, Peiqi Huang, Lingyi Yang, Fan Chen, Wanxi Bai, Ding Guo, Yongwen MedComm (2020) Original Articles Bone remodeling is vital to the maintenance of bone homeostasis and may lead to destructive skeletal diseases once the balance is disrupted. Crosstalk between Wnt and estrogen receptor (ER) signaling has been proposed in bone remodeling, but the underlying mechanism remains unclear. This study was designed to explore the effect of Wnt‐ER signaling during the osteogenic differentiation of bone marrow stromal cells (BMSCs). Rat BMSCs were isolated and identified using flow cytometry and stimulated with Wnt3a. Wnt3a treatment promoted osteogenic differentiation and mineralization of the BMSCs. Meanwhile, Wnt3a enhanced the expression of ERα as well as the canonical Wnt signaling mediator β‐catenin and the alternative Wnt signaling effector Yes‐associated protein 1 (YAP1). Interestingly, DNA pulldown assay revealed direct binding of transcriptional enhanced associate domain 1 (TEAD1) and lymphoid enhancer binding factor 1 (LEF1), transcriptional partners of YAP1 and β‐catenin, respectively, to the promoter region of ERα. In addition, inhibition of TEAD1 and LEF1 suppressed Wnt3‐promoted BMSC osteogenic differentiation and blocked Wnt3a‐induced ERα expression. Furthermore, an in vivo model of femoral bone defect also supported that Wnt3a facilitated bone healing in an ERα‐dependent way. Together, we suggest that Wnt3a promotes the osteogenic activity of BMSCs through YAP1 and β‐catenin‐dependent activation of ERα, via direct binding of TEAD1 and LEF1 to the ERα promoter. John Wiley and Sons Inc. 2023-05-14 /pmc/articles/PMC10183651/ /pubmed/37197086 http://dx.doi.org/10.1002/mco2.246 Text en © 2023 The Authors. MedComm published by Sichuan International Medical Exchange & Promotion Association (SCIMEA) and John Wiley & Sons Australia, Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Wang, Peiqi
Huang, Lingyi
Yang, Fan
Chen, Wanxi
Bai, Ding
Guo, Yongwen
YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells
title YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells
title_full YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells
title_fullStr YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells
title_full_unstemmed YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells
title_short YAP/TEAD1 and β‐catenin/LEF1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells
title_sort yap/tead1 and β‐catenin/lef1 synergistically induce estrogen receptor α to promote osteogenic differentiation of bone marrow stromal cells
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10183651/
https://www.ncbi.nlm.nih.gov/pubmed/37197086
http://dx.doi.org/10.1002/mco2.246
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