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Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects

In osteochondral defects, oxidative stress caused by elevated levels of reactive oxygen species (ROS) can disrupt the normal endogenous repair process. In this study, a multifunctional hydrogel composed of silk fibroin (SF) and tannic acid (TA), the FDA-approved ingredients, was developed to allevia...

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Autores principales: Zhang, Wei, Zhang, Yanan, Li, Xiaolong, Cao, Zhicheng, Mo, Qingyun, Sheng, Renwang, Ling, Chen, Chi, Jiayu, Yao, Qingqiang, Chen, Jialin, Wang, Hongmei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034395/
https://www.ncbi.nlm.nih.gov/pubmed/35469254
http://dx.doi.org/10.1016/j.mtbio.2022.100251
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author Zhang, Wei
Zhang, Yanan
Li, Xiaolong
Cao, Zhicheng
Mo, Qingyun
Sheng, Renwang
Ling, Chen
Chi, Jiayu
Yao, Qingqiang
Chen, Jialin
Wang, Hongmei
author_facet Zhang, Wei
Zhang, Yanan
Li, Xiaolong
Cao, Zhicheng
Mo, Qingyun
Sheng, Renwang
Ling, Chen
Chi, Jiayu
Yao, Qingqiang
Chen, Jialin
Wang, Hongmei
author_sort Zhang, Wei
collection PubMed
description In osteochondral defects, oxidative stress caused by elevated levels of reactive oxygen species (ROS) can disrupt the normal endogenous repair process. In this study, a multifunctional hydrogel composed of silk fibroin (SF) and tannic acid (TA), the FDA-approved ingredients, was developed to alleviate oxidative stress and enhance osteochondral regeneration. In this proposed hydrogel, SF first interacts with TA to form a hydrogen-bonded supramolecular structure, which is subsequently enzymatically crosslinked to form a stable hydrogel. Furthermore, TA had multiple phenolic hydroxyl groups that formed interactions with the therapeutic molecule E7 peptide for controlled drug delivery. In vitro investigations showed that SF-TA and SF-TA-E7 hydrogels exhibited a multitude of biological effects including scavenging of ROS, maintaining cell viability, and promoting the proliferation of bone marrow mesenchymal stem cells (BMSCs) against oxidative stress. The proteomic analysis indicated that SF-TA and SF-TA-E7 hydrogels suppressed oxidative stress, which in turn improved cell proliferation in multiple proliferation and apoptosis-related pathways. In rabbit osteochondral defect model, SF-TA and SF-TA-E7 hydrogels promoted enhanced regeneration of both cartilage and subchondral bone as compared to hydrogel without TA incorporation. These findings indicated that the multifunctional SF-TA hydrogel provided a microenvironment suitable for the endogenous regeneration of osteochondral defects.
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spelling pubmed-90343952022-04-24 Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects Zhang, Wei Zhang, Yanan Li, Xiaolong Cao, Zhicheng Mo, Qingyun Sheng, Renwang Ling, Chen Chi, Jiayu Yao, Qingqiang Chen, Jialin Wang, Hongmei Mater Today Bio Full Length Article In osteochondral defects, oxidative stress caused by elevated levels of reactive oxygen species (ROS) can disrupt the normal endogenous repair process. In this study, a multifunctional hydrogel composed of silk fibroin (SF) and tannic acid (TA), the FDA-approved ingredients, was developed to alleviate oxidative stress and enhance osteochondral regeneration. In this proposed hydrogel, SF first interacts with TA to form a hydrogen-bonded supramolecular structure, which is subsequently enzymatically crosslinked to form a stable hydrogel. Furthermore, TA had multiple phenolic hydroxyl groups that formed interactions with the therapeutic molecule E7 peptide for controlled drug delivery. In vitro investigations showed that SF-TA and SF-TA-E7 hydrogels exhibited a multitude of biological effects including scavenging of ROS, maintaining cell viability, and promoting the proliferation of bone marrow mesenchymal stem cells (BMSCs) against oxidative stress. The proteomic analysis indicated that SF-TA and SF-TA-E7 hydrogels suppressed oxidative stress, which in turn improved cell proliferation in multiple proliferation and apoptosis-related pathways. In rabbit osteochondral defect model, SF-TA and SF-TA-E7 hydrogels promoted enhanced regeneration of both cartilage and subchondral bone as compared to hydrogel without TA incorporation. These findings indicated that the multifunctional SF-TA hydrogel provided a microenvironment suitable for the endogenous regeneration of osteochondral defects. Elsevier 2022-04-09 /pmc/articles/PMC9034395/ /pubmed/35469254 http://dx.doi.org/10.1016/j.mtbio.2022.100251 Text en © 2022 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 Full Length Article
Zhang, Wei
Zhang, Yanan
Li, Xiaolong
Cao, Zhicheng
Mo, Qingyun
Sheng, Renwang
Ling, Chen
Chi, Jiayu
Yao, Qingqiang
Chen, Jialin
Wang, Hongmei
Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects
title Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects
title_full Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects
title_fullStr Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects
title_full_unstemmed Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects
title_short Multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects
title_sort multifunctional polyphenol-based silk hydrogel alleviates oxidative stress and enhances endogenous regeneration of osteochondral defects
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034395/
https://www.ncbi.nlm.nih.gov/pubmed/35469254
http://dx.doi.org/10.1016/j.mtbio.2022.100251
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