Cargando…
Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair
As a highly specialized shock-absorbing connective tissue, articular cartilage (AC) has very limited self-repair capacity after traumatic injuries, posing a heavy socioeconomic burden. Common clinical therapies for small- to medium-size focal AC defects are well-developed endogenous repair and cell-...
Autores principales: | , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
KeAi Publishing
2023
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10248882/ https://www.ncbi.nlm.nih.gov/pubmed/37304336 http://dx.doi.org/10.1016/j.bioactmat.2023.03.008 |
_version_ | 1785055441557913600 |
---|---|
author | Zhou, Liangbin Xu, Jietao Schwab, Andrea Tong, Wenxue Xu, Jiankun Zheng, Lizhen Li, Ye Li, Zhuo Xu, Shunxiang Chen, Ziyi Zou, Li Zhao, Xin van Osch, Gerjo J.V.M. Wen, Chunyi Qin, Ling |
author_facet | Zhou, Liangbin Xu, Jietao Schwab, Andrea Tong, Wenxue Xu, Jiankun Zheng, Lizhen Li, Ye Li, Zhuo Xu, Shunxiang Chen, Ziyi Zou, Li Zhao, Xin van Osch, Gerjo J.V.M. Wen, Chunyi Qin, Ling |
author_sort | Zhou, Liangbin |
collection | PubMed |
description | As a highly specialized shock-absorbing connective tissue, articular cartilage (AC) has very limited self-repair capacity after traumatic injuries, posing a heavy socioeconomic burden. Common clinical therapies for small- to medium-size focal AC defects are well-developed endogenous repair and cell-based strategies, including microfracture, mosaicplasty, autologous chondrocyte implantation (ACI), and matrix-induced ACI (MACI). However, these treatments frequently result in mechanically inferior fibrocartilage, low cost-effectiveness, donor site morbidity, and short-term durability. It prompts an urgent need for innovative approaches to pattern a pro-regenerative microenvironment and yield hyaline-like cartilage with similar biomechanical and biochemical properties as healthy native AC. Acellular regenerative biomaterials can create a favorable local environment for AC repair without causing relevant regulatory and scientific concerns from cell-based treatments. A deeper understanding of the mechanism of endogenous cartilage healing is furthering the (bio)design and application of these scaffolds. Currently, the utilization of regenerative biomaterials to magnify the repairing effect of joint-resident endogenous stem/progenitor cells (ESPCs) presents an evolving improvement for cartilage repair. This review starts by briefly summarizing the current understanding of endogenous AC repair and the vital roles of ESPCs and chemoattractants for cartilage regeneration. Then several intrinsic hurdles for regenerative biomaterials-based AC repair are discussed. The recent advances in novel (bio)design and application regarding regenerative biomaterials with favorable biochemical cues to provide an instructive extracellular microenvironment and to guide the ESPCs (e.g. adhesion, migration, proliferation, differentiation, matrix production, and remodeling) for cartilage repair are summarized. Finally, this review outlines the future directions of engineering the next-generation regenerative biomaterials toward ultimate clinical translation. |
format | Online Article Text |
id | pubmed-10248882 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | KeAi Publishing |
record_format | MEDLINE/PubMed |
spelling | pubmed-102488822023-06-09 Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair Zhou, Liangbin Xu, Jietao Schwab, Andrea Tong, Wenxue Xu, Jiankun Zheng, Lizhen Li, Ye Li, Zhuo Xu, Shunxiang Chen, Ziyi Zou, Li Zhao, Xin van Osch, Gerjo J.V.M. Wen, Chunyi Qin, Ling Bioact Mater Review Article As a highly specialized shock-absorbing connective tissue, articular cartilage (AC) has very limited self-repair capacity after traumatic injuries, posing a heavy socioeconomic burden. Common clinical therapies for small- to medium-size focal AC defects are well-developed endogenous repair and cell-based strategies, including microfracture, mosaicplasty, autologous chondrocyte implantation (ACI), and matrix-induced ACI (MACI). However, these treatments frequently result in mechanically inferior fibrocartilage, low cost-effectiveness, donor site morbidity, and short-term durability. It prompts an urgent need for innovative approaches to pattern a pro-regenerative microenvironment and yield hyaline-like cartilage with similar biomechanical and biochemical properties as healthy native AC. Acellular regenerative biomaterials can create a favorable local environment for AC repair without causing relevant regulatory and scientific concerns from cell-based treatments. A deeper understanding of the mechanism of endogenous cartilage healing is furthering the (bio)design and application of these scaffolds. Currently, the utilization of regenerative biomaterials to magnify the repairing effect of joint-resident endogenous stem/progenitor cells (ESPCs) presents an evolving improvement for cartilage repair. This review starts by briefly summarizing the current understanding of endogenous AC repair and the vital roles of ESPCs and chemoattractants for cartilage regeneration. Then several intrinsic hurdles for regenerative biomaterials-based AC repair are discussed. The recent advances in novel (bio)design and application regarding regenerative biomaterials with favorable biochemical cues to provide an instructive extracellular microenvironment and to guide the ESPCs (e.g. adhesion, migration, proliferation, differentiation, matrix production, and remodeling) for cartilage repair are summarized. Finally, this review outlines the future directions of engineering the next-generation regenerative biomaterials toward ultimate clinical translation. KeAi Publishing 2023-05-02 /pmc/articles/PMC10248882/ /pubmed/37304336 http://dx.doi.org/10.1016/j.bioactmat.2023.03.008 Text en © 2023 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 | Review Article Zhou, Liangbin Xu, Jietao Schwab, Andrea Tong, Wenxue Xu, Jiankun Zheng, Lizhen Li, Ye Li, Zhuo Xu, Shunxiang Chen, Ziyi Zou, Li Zhao, Xin van Osch, Gerjo J.V.M. Wen, Chunyi Qin, Ling Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair |
title | Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair |
title_full | Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair |
title_fullStr | Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair |
title_full_unstemmed | Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair |
title_short | Engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (ESPCs)-mediated articular cartilage repair |
title_sort | engineered biochemical cues of regenerative biomaterials to enhance endogenous stem/progenitor cells (espcs)-mediated articular cartilage repair |
topic | Review Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10248882/ https://www.ncbi.nlm.nih.gov/pubmed/37304336 http://dx.doi.org/10.1016/j.bioactmat.2023.03.008 |
work_keys_str_mv | AT zhouliangbin engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT xujietao engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT schwabandrea engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT tongwenxue engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT xujiankun engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT zhenglizhen engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT liye engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT lizhuo engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT xushunxiang engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT chenziyi engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT zouli engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT zhaoxin engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT vanoschgerjojvm engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT wenchunyi engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair AT qinling engineeredbiochemicalcuesofregenerativebiomaterialstoenhanceendogenousstemprogenitorcellsespcsmediatedarticularcartilagerepair |