The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathways
Abstract Background Human adipose-derived stem cells (hADSCs) are stem cells with the potential to differentiate in multiple directions. miR-204-5p is expressed at low levels during the osteogenic differentiation of hADSCs, and its specific regulatory mechanism remains unclear. Here, we aimed to exp...
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doaj-f099c695147445819d42384a174a7ca12021-01-24T12:08:45ZengBMCStem Cell Research & Therapy1757-65122021-01-0112111910.1186/s13287-020-02117-4The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathwaysYou Zhou0Siyu Liu1Wei Wang2Qiang Sun3Mengzhu Lv4Shude Yang5Shuang Tong6Shu Guo7Department of Plastic Surgery, The First Hospital of China Medical UniversityDepartment of Plastic Surgery, The First Hospital of China Medical UniversityInstitute of Respiratory Disease, The First Hospital of China Medical UniversityDepartment of Plastic Surgery, The First Hospital of China Medical UniversityDepartment of Plastic Surgery, The First Hospital of China Medical UniversityDepartment of Plastic Surgery, The First Hospital of China Medical UniversityDepartment of Plastic Surgery, The First Hospital of China Medical UniversityDepartment of Plastic Surgery, The First Hospital of China Medical UniversityAbstract Background Human adipose-derived stem cells (hADSCs) are stem cells with the potential to differentiate in multiple directions. miR-204-5p is expressed at low levels during the osteogenic differentiation of hADSCs, and its specific regulatory mechanism remains unclear. Here, we aimed to explore the function and possible molecular mechanism of miR-204-5p in the osteogenic differentiation of hADSCs. Methods The expression patterns of miR-204-5p, Runx2, alkaline phosphatase (ALP), osteocalcin (OCN), forkhead box C1 (FOXC1) and growth differentiation factor 7 (GDF7) in hADSCs during osteogenesis were detected by qRT-PCR. Then, ALP and alizarin red staining (ARS) were used to detect osteoblast activities and mineral deposition. Western blotting was conducted to confirm the protein levels. The regulatory relationship among miR-204-5p, FOXC1 and GDF7 was verified by dual-luciferase activity and chromatin immunoprecipitation (ChIP) assays. Results miR-204-5p expression was downregulated in hADSC osteogenesis, and overexpression of miR-204-5p suppressed osteogenic differentiation. Furthermore, the levels of FOXC1 and GDF7 were decreased in the miR-204-5p mimics group, which indicates that miR-204-5p overexpression suppresses the expression of FOXC1 and GDF7 by binding to their 3′-untranslated regions (UTRs). Overexpression of FOXC1 or GDF7 improved the inhibition of osteogenic differentiation of hADSCs induced by the miR-204-5p mimics. Moreover, FOXC1 was found to bind to the promoter of miR-204-5p and GDF7, promote the deacetylation of miR-204-5p and reduce the expression of miR-204-5p, thus promoting the expression of GDF7 during osteogenic differentiation. GDF7 induced hADSC osteogenesis differentiation by activating the AKT and P38 signalling pathways. Conclusions Our results demonstrated that the miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of hADSCs via the AKT and p38 signalling pathways. This study further revealed the regulatory mechanism of hADSC differentiation from the perspective of miRNA regulation.https://doi.org/10.1186/s13287-020-02117-4Human adipose-derived stem cellsOsteogenic differentiationmiR-204-5pForkhead box C1Growth differentiation factor 7 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
You Zhou Siyu Liu Wei Wang Qiang Sun Mengzhu Lv Shude Yang Shuang Tong Shu Guo |
spellingShingle |
You Zhou Siyu Liu Wei Wang Qiang Sun Mengzhu Lv Shude Yang Shuang Tong Shu Guo The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathways Stem Cell Research & Therapy Human adipose-derived stem cells Osteogenic differentiation miR-204-5p Forkhead box C1 Growth differentiation factor 7 |
author_facet |
You Zhou Siyu Liu Wei Wang Qiang Sun Mengzhu Lv Shude Yang Shuang Tong Shu Guo |
author_sort |
You Zhou |
title |
The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathways |
title_short |
The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathways |
title_full |
The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathways |
title_fullStr |
The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathways |
title_full_unstemmed |
The miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the AKT and p38 signalling pathways |
title_sort |
mir-204-5p/foxc1/gdf7 axis regulates the osteogenic differentiation of human adipose-derived stem cells via the akt and p38 signalling pathways |
publisher |
BMC |
series |
Stem Cell Research & Therapy |
issn |
1757-6512 |
publishDate |
2021-01-01 |
description |
Abstract Background Human adipose-derived stem cells (hADSCs) are stem cells with the potential to differentiate in multiple directions. miR-204-5p is expressed at low levels during the osteogenic differentiation of hADSCs, and its specific regulatory mechanism remains unclear. Here, we aimed to explore the function and possible molecular mechanism of miR-204-5p in the osteogenic differentiation of hADSCs. Methods The expression patterns of miR-204-5p, Runx2, alkaline phosphatase (ALP), osteocalcin (OCN), forkhead box C1 (FOXC1) and growth differentiation factor 7 (GDF7) in hADSCs during osteogenesis were detected by qRT-PCR. Then, ALP and alizarin red staining (ARS) were used to detect osteoblast activities and mineral deposition. Western blotting was conducted to confirm the protein levels. The regulatory relationship among miR-204-5p, FOXC1 and GDF7 was verified by dual-luciferase activity and chromatin immunoprecipitation (ChIP) assays. Results miR-204-5p expression was downregulated in hADSC osteogenesis, and overexpression of miR-204-5p suppressed osteogenic differentiation. Furthermore, the levels of FOXC1 and GDF7 were decreased in the miR-204-5p mimics group, which indicates that miR-204-5p overexpression suppresses the expression of FOXC1 and GDF7 by binding to their 3′-untranslated regions (UTRs). Overexpression of FOXC1 or GDF7 improved the inhibition of osteogenic differentiation of hADSCs induced by the miR-204-5p mimics. Moreover, FOXC1 was found to bind to the promoter of miR-204-5p and GDF7, promote the deacetylation of miR-204-5p and reduce the expression of miR-204-5p, thus promoting the expression of GDF7 during osteogenic differentiation. GDF7 induced hADSC osteogenesis differentiation by activating the AKT and P38 signalling pathways. Conclusions Our results demonstrated that the miR-204-5p/FOXC1/GDF7 axis regulates the osteogenic differentiation of hADSCs via the AKT and p38 signalling pathways. This study further revealed the regulatory mechanism of hADSC differentiation from the perspective of miRNA regulation. |
topic |
Human adipose-derived stem cells Osteogenic differentiation miR-204-5p Forkhead box C1 Growth differentiation factor 7 |
url |
https://doi.org/10.1186/s13287-020-02117-4 |
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