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Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion

Biological receptor-ligand adhesion governed by mammalian cells involves a series of mechanochemical processes that can realize reversible, loading rate-dependent specific interfacial bonding, and even exhibit a counterintuitive behavior called catch bonds that tend to have much longer lifetimes whe...

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Autores principales: Yuan, Zuoying, Duan, Xiaocen, Su, Xing, Tian, Zhuoling, Jiang, Anqi, Wan, Zhuo, Wang, Hao, Wei, Pengfei, Zhao, Bo, Liu, Xiaozhi, Huang, Jianyong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9519436/
https://www.ncbi.nlm.nih.gov/pubmed/36204280
http://dx.doi.org/10.1016/j.bioactmat.2022.09.002
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author Yuan, Zuoying
Duan, Xiaocen
Su, Xing
Tian, Zhuoling
Jiang, Anqi
Wan, Zhuo
Wang, Hao
Wei, Pengfei
Zhao, Bo
Liu, Xiaozhi
Huang, Jianyong
author_facet Yuan, Zuoying
Duan, Xiaocen
Su, Xing
Tian, Zhuoling
Jiang, Anqi
Wan, Zhuo
Wang, Hao
Wei, Pengfei
Zhao, Bo
Liu, Xiaozhi
Huang, Jianyong
author_sort Yuan, Zuoying
collection PubMed
description Biological receptor-ligand adhesion governed by mammalian cells involves a series of mechanochemical processes that can realize reversible, loading rate-dependent specific interfacial bonding, and even exhibit a counterintuitive behavior called catch bonds that tend to have much longer lifetimes when larger pulling forces are applied. Inspired by these catch bonds, we designed a hydrogen bonding-meditated hydrogel made from acrylic acid-N-acryloyl glycinamide (AA-NAGA) copolymers and tannic acids (TA), which formed repeatable specific adhesion to polar surfaces in an ultra-fast and robust way, but hardly adhered to nonpolar materials. It demonstrated up to five-fold increase in shear adhesive strength and interfacial adhesive toughness with external loading rates varying from 5 to 500 mm min(−1). With a mechanochemical coupling model based on Monte Carlo simulations, we quantitatively revealed the nonlinear dependence of rate-sensitive interfacial adhesion on external loading, which was in good agreement with the experimental data. Likewise, the developed hydrogels were biocompatible, possessed antioxidant and antibacterial properties and promoted wound healing. This work not only reports a stimuli-responsive hydrogel adhesive suitable for multiple biomedical applications, but also offers an innovative strategy for bionic designs of smart hydrogels with loading rate-sensitive specific adhesion for various emerging areas including flexible electronics and soft robotics.
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spelling pubmed-95194362022-10-05 Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion Yuan, Zuoying Duan, Xiaocen Su, Xing Tian, Zhuoling Jiang, Anqi Wan, Zhuo Wang, Hao Wei, Pengfei Zhao, Bo Liu, Xiaozhi Huang, Jianyong Bioact Mater Article Biological receptor-ligand adhesion governed by mammalian cells involves a series of mechanochemical processes that can realize reversible, loading rate-dependent specific interfacial bonding, and even exhibit a counterintuitive behavior called catch bonds that tend to have much longer lifetimes when larger pulling forces are applied. Inspired by these catch bonds, we designed a hydrogen bonding-meditated hydrogel made from acrylic acid-N-acryloyl glycinamide (AA-NAGA) copolymers and tannic acids (TA), which formed repeatable specific adhesion to polar surfaces in an ultra-fast and robust way, but hardly adhered to nonpolar materials. It demonstrated up to five-fold increase in shear adhesive strength and interfacial adhesive toughness with external loading rates varying from 5 to 500 mm min(−1). With a mechanochemical coupling model based on Monte Carlo simulations, we quantitatively revealed the nonlinear dependence of rate-sensitive interfacial adhesion on external loading, which was in good agreement with the experimental data. Likewise, the developed hydrogels were biocompatible, possessed antioxidant and antibacterial properties and promoted wound healing. This work not only reports a stimuli-responsive hydrogel adhesive suitable for multiple biomedical applications, but also offers an innovative strategy for bionic designs of smart hydrogels with loading rate-sensitive specific adhesion for various emerging areas including flexible electronics and soft robotics. KeAi Publishing 2022-09-22 /pmc/articles/PMC9519436/ /pubmed/36204280 http://dx.doi.org/10.1016/j.bioactmat.2022.09.002 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 Article
Yuan, Zuoying
Duan, Xiaocen
Su, Xing
Tian, Zhuoling
Jiang, Anqi
Wan, Zhuo
Wang, Hao
Wei, Pengfei
Zhao, Bo
Liu, Xiaozhi
Huang, Jianyong
Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion
title Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion
title_full Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion
title_fullStr Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion
title_full_unstemmed Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion
title_short Catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion
title_sort catch bond-inspired hydrogels with repeatable and loading rate-sensitive specific adhesion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9519436/
https://www.ncbi.nlm.nih.gov/pubmed/36204280
http://dx.doi.org/10.1016/j.bioactmat.2022.09.002
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