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Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ

Many recent studies have shown that joint-resident mesenchymal stem cells (MSCs) play a vital role in articular cartilage (AC) in situ regeneration. Specifically, synovium-derived MSCs (SMSCs), which have strong chondrogenic differentiation potential, may be the main driver of cartilage repair. Howe...

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Autores principales: Fu, Liwei, Li, Pinxue, Zhu, Junyao, Liao, Zhiyao, Gao, Cangjian, Li, Hao, Yang, Zhen, Zhao, Tianyuan, Chen, Wei, Peng, Yu, Cao, Fuyang, Ning, Chao, Sui, Xiang, Guo, Quanyi, Lin, Yunfeng, Liu, Shuyun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8586787/
https://www.ncbi.nlm.nih.gov/pubmed/34820580
http://dx.doi.org/10.1016/j.bioactmat.2021.07.028
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author Fu, Liwei
Li, Pinxue
Zhu, Junyao
Liao, Zhiyao
Gao, Cangjian
Li, Hao
Yang, Zhen
Zhao, Tianyuan
Chen, Wei
Peng, Yu
Cao, Fuyang
Ning, Chao
Sui, Xiang
Guo, Quanyi
Lin, Yunfeng
Liu, Shuyun
author_facet Fu, Liwei
Li, Pinxue
Zhu, Junyao
Liao, Zhiyao
Gao, Cangjian
Li, Hao
Yang, Zhen
Zhao, Tianyuan
Chen, Wei
Peng, Yu
Cao, Fuyang
Ning, Chao
Sui, Xiang
Guo, Quanyi
Lin, Yunfeng
Liu, Shuyun
author_sort Fu, Liwei
collection PubMed
description Many recent studies have shown that joint-resident mesenchymal stem cells (MSCs) play a vital role in articular cartilage (AC) in situ regeneration. Specifically, synovium-derived MSCs (SMSCs), which have strong chondrogenic differentiation potential, may be the main driver of cartilage repair. However, both the insufficient number of MSCs and the lack of an ideal regenerative microenvironment in the defect area will seriously affect the regeneration of AC. Tetrahedral framework nucleic acids (tFNAs), notable novel nanomaterials, are considered prospective biological regulators in biomedical engineering. Here, we aimed to explore whether tFNAs have positive effects on AC in situ regeneration and to investigate the related mechanism. The results of in vitro experiments showed that the proliferation and migration of SMSCs were significantly enhanced by tFNAs. In addition, tFNAs, which were added to chondrogenic induction medium, were shown to promote the chondrogenic capacity of SMSCs by increasing the phosphorylation of Smad2/3. In animal models, the injection of tFNAs improved the therapeutic outcome of cartilage defects compared with that of the control treatments without tFNAs. In conclusion, this is the first report to demonstrate that tFNAs can promote the chondrogenic differentiation of SMSCs in vitro and enhance AC regeneration in vivo, indicating that tFNAs may become a promising therapeutic for AC regeneration.
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spelling pubmed-85867872021-11-23 Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ Fu, Liwei Li, Pinxue Zhu, Junyao Liao, Zhiyao Gao, Cangjian Li, Hao Yang, Zhen Zhao, Tianyuan Chen, Wei Peng, Yu Cao, Fuyang Ning, Chao Sui, Xiang Guo, Quanyi Lin, Yunfeng Liu, Shuyun Bioact Mater Article Many recent studies have shown that joint-resident mesenchymal stem cells (MSCs) play a vital role in articular cartilage (AC) in situ regeneration. Specifically, synovium-derived MSCs (SMSCs), which have strong chondrogenic differentiation potential, may be the main driver of cartilage repair. However, both the insufficient number of MSCs and the lack of an ideal regenerative microenvironment in the defect area will seriously affect the regeneration of AC. Tetrahedral framework nucleic acids (tFNAs), notable novel nanomaterials, are considered prospective biological regulators in biomedical engineering. Here, we aimed to explore whether tFNAs have positive effects on AC in situ regeneration and to investigate the related mechanism. The results of in vitro experiments showed that the proliferation and migration of SMSCs were significantly enhanced by tFNAs. In addition, tFNAs, which were added to chondrogenic induction medium, were shown to promote the chondrogenic capacity of SMSCs by increasing the phosphorylation of Smad2/3. In animal models, the injection of tFNAs improved the therapeutic outcome of cartilage defects compared with that of the control treatments without tFNAs. In conclusion, this is the first report to demonstrate that tFNAs can promote the chondrogenic differentiation of SMSCs in vitro and enhance AC regeneration in vivo, indicating that tFNAs may become a promising therapeutic for AC regeneration. KeAi Publishing 2021-07-27 /pmc/articles/PMC8586787/ /pubmed/34820580 http://dx.doi.org/10.1016/j.bioactmat.2021.07.028 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Fu, Liwei
Li, Pinxue
Zhu, Junyao
Liao, Zhiyao
Gao, Cangjian
Li, Hao
Yang, Zhen
Zhao, Tianyuan
Chen, Wei
Peng, Yu
Cao, Fuyang
Ning, Chao
Sui, Xiang
Guo, Quanyi
Lin, Yunfeng
Liu, Shuyun
Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ
title Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ
title_full Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ
title_fullStr Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ
title_full_unstemmed Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ
title_short Tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ
title_sort tetrahedral framework nucleic acids promote the biological functions and related mechanism of synovium-derived mesenchymal stem cells and show improved articular cartilage regeneration activity in situ
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8586787/
https://www.ncbi.nlm.nih.gov/pubmed/34820580
http://dx.doi.org/10.1016/j.bioactmat.2021.07.028
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