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Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering

Supramolecular nanofiber peptide assemblies had been used to construct functional hydrogel biomaterials and achieved great progress. Here, a new class of biphenyl-tripeptides with different C-terminal amino acids sequences transposition were developed, which could self-assemble to form robust supram...

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Detalles Bibliográficos
Autores principales: Sun, Yong, Li, Xing, Zhao, Mingda, Chen, Yafang, Xu, Yang, Wang, Kefeng, Bian, Shaoquan, Jiang, Qing, Fan, Yujiang, Zhang, Xingdong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8429915/
https://www.ncbi.nlm.nih.gov/pubmed/34541409
http://dx.doi.org/10.1016/j.bioactmat.2021.05.054
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author Sun, Yong
Li, Xing
Zhao, Mingda
Chen, Yafang
Xu, Yang
Wang, Kefeng
Bian, Shaoquan
Jiang, Qing
Fan, Yujiang
Zhang, Xingdong
author_facet Sun, Yong
Li, Xing
Zhao, Mingda
Chen, Yafang
Xu, Yang
Wang, Kefeng
Bian, Shaoquan
Jiang, Qing
Fan, Yujiang
Zhang, Xingdong
author_sort Sun, Yong
collection PubMed
description Supramolecular nanofiber peptide assemblies had been used to construct functional hydrogel biomaterials and achieved great progress. Here, a new class of biphenyl-tripeptides with different C-terminal amino acids sequences transposition were developed, which could self-assemble to form robust supramolecular nanofiber hydrogels from 0.7 to 13.8 kPa at ultra-low weight percent (about 0.27 wt%). Using molecular dynamics simulations to interrogate the physicochemical properties of designed biphenyl-tripeptide sequences in atomic detail, reasonable hydrogen bond interactions and “FF” brick (phenylalanine-phenylalanine) promoted the formation of supramolecular fibrous hydrogels. The biomechanical properties and intermolecular interactions were also analyzed by rheology and spectroscopy analysis to optimize amino acid sequence. Enhanced L929 cells adhesion and proliferation demonstrated good biocompatibility of the hydrogels. The storage modulus of BPAA-AFF with 10 nm nanofibers self-assembling was around 13.8 kPa, and the morphology was similar to natural extracellular matrix. These supramolecular nanofiber hydrogels could effectively support chondrocytes spreading and proliferation, and specifically enhance chondrogenic related genes expression and chondrogenic matrix secretion. Such biomimetic supramolecular short peptide biomaterials hold great potential in regenerative medicine as promising innovative matrices because of their simple and regular molecular structure and excellent biological performance.
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spelling pubmed-84299152021-09-17 Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering Sun, Yong Li, Xing Zhao, Mingda Chen, Yafang Xu, Yang Wang, Kefeng Bian, Shaoquan Jiang, Qing Fan, Yujiang Zhang, Xingdong Bioact Mater Article Supramolecular nanofiber peptide assemblies had been used to construct functional hydrogel biomaterials and achieved great progress. Here, a new class of biphenyl-tripeptides with different C-terminal amino acids sequences transposition were developed, which could self-assemble to form robust supramolecular nanofiber hydrogels from 0.7 to 13.8 kPa at ultra-low weight percent (about 0.27 wt%). Using molecular dynamics simulations to interrogate the physicochemical properties of designed biphenyl-tripeptide sequences in atomic detail, reasonable hydrogen bond interactions and “FF” brick (phenylalanine-phenylalanine) promoted the formation of supramolecular fibrous hydrogels. The biomechanical properties and intermolecular interactions were also analyzed by rheology and spectroscopy analysis to optimize amino acid sequence. Enhanced L929 cells adhesion and proliferation demonstrated good biocompatibility of the hydrogels. The storage modulus of BPAA-AFF with 10 nm nanofibers self-assembling was around 13.8 kPa, and the morphology was similar to natural extracellular matrix. These supramolecular nanofiber hydrogels could effectively support chondrocytes spreading and proliferation, and specifically enhance chondrogenic related genes expression and chondrogenic matrix secretion. Such biomimetic supramolecular short peptide biomaterials hold great potential in regenerative medicine as promising innovative matrices because of their simple and regular molecular structure and excellent biological performance. KeAi Publishing 2021-06-11 /pmc/articles/PMC8429915/ /pubmed/34541409 http://dx.doi.org/10.1016/j.bioactmat.2021.05.054 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
Sun, Yong
Li, Xing
Zhao, Mingda
Chen, Yafang
Xu, Yang
Wang, Kefeng
Bian, Shaoquan
Jiang, Qing
Fan, Yujiang
Zhang, Xingdong
Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering
title Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering
title_full Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering
title_fullStr Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering
title_full_unstemmed Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering
title_short Bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering
title_sort bioinspired supramolecular nanofiber hydrogel through self-assembly of biphenyl-tripeptide for tissue engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8429915/
https://www.ncbi.nlm.nih.gov/pubmed/34541409
http://dx.doi.org/10.1016/j.bioactmat.2021.05.054
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