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Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles

Decellularization is a promising technique to produce natural scaffolds for tissue engineering applications. However, non-crosslinked natural scaffolds disfavor application in cardiovascular surgery due to poor biomechanics and rapid degradation. Herein, we proposed a green strategy to crosslink and...

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Autores principales: Li, Qin, Gao, Yuan, Zhang, Jiajun, Tang, Yangfeng, Sun, Yangyong, Wu, Lujia, Wu, Hao, Shen, Meifang, Liu, Xiaohong, Han, Lin, Xu, Zhiyun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9157057/
https://www.ncbi.nlm.nih.gov/pubmed/35665201
http://dx.doi.org/10.1093/rb/rbac030
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author Li, Qin
Gao, Yuan
Zhang, Jiajun
Tang, Yangfeng
Sun, Yangyong
Wu, Lujia
Wu, Hao
Shen, Meifang
Liu, Xiaohong
Han, Lin
Xu, Zhiyun
author_facet Li, Qin
Gao, Yuan
Zhang, Jiajun
Tang, Yangfeng
Sun, Yangyong
Wu, Lujia
Wu, Hao
Shen, Meifang
Liu, Xiaohong
Han, Lin
Xu, Zhiyun
author_sort Li, Qin
collection PubMed
description Decellularization is a promising technique to produce natural scaffolds for tissue engineering applications. However, non-crosslinked natural scaffolds disfavor application in cardiovascular surgery due to poor biomechanics and rapid degradation. Herein, we proposed a green strategy to crosslink and functionalize acellular scaffolds via the self-assembly of copper@tea polyphenol nanoparticles (Cu@TP NPs), and the resultant nanocomposite acellular scaffolds were named as Cu@TP-dBPs. The crosslinking degree, biomechanics, denaturation temperature and resistance to enzymatic degradation of Cu@TP-dBPs were comparable to those of glutaraldehyde crosslinked decellularized bovine pericardias (Glut-dBPs). Furthermore, Cu@TP-dBPs were biocompatible and had abilities to inhibit bacterial growth and promote the formation of capillary-like networks. Subcutaneous implantation models demonstrated that Cu@TP-dBPs were free of calcification and allowed for host cell infiltration at Day 21. Cardiac patch graft models confirmed that Cu@TP-dBP patches showed improved ingrowth of functional blood vessels and remodeling of extracellular matrix at Day 60. These results suggested that Cu@TP-dBPs not only had comparable biomechanics and biostability to Glut-dBPs, but also had several advantages over Glut-dBPs in terms of anticalcification, remodeling and integration capabilities. Particularly, they were functional patches possessing antibacterial and proangiogenic activities. These material properties and biological functions made Cu@TP-dBPs a promising functional acellular patch for cardiovascular applications.
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spelling pubmed-91570572022-06-04 Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles Li, Qin Gao, Yuan Zhang, Jiajun Tang, Yangfeng Sun, Yangyong Wu, Lujia Wu, Hao Shen, Meifang Liu, Xiaohong Han, Lin Xu, Zhiyun Regen Biomater Research Article Decellularization is a promising technique to produce natural scaffolds for tissue engineering applications. However, non-crosslinked natural scaffolds disfavor application in cardiovascular surgery due to poor biomechanics and rapid degradation. Herein, we proposed a green strategy to crosslink and functionalize acellular scaffolds via the self-assembly of copper@tea polyphenol nanoparticles (Cu@TP NPs), and the resultant nanocomposite acellular scaffolds were named as Cu@TP-dBPs. The crosslinking degree, biomechanics, denaturation temperature and resistance to enzymatic degradation of Cu@TP-dBPs were comparable to those of glutaraldehyde crosslinked decellularized bovine pericardias (Glut-dBPs). Furthermore, Cu@TP-dBPs were biocompatible and had abilities to inhibit bacterial growth and promote the formation of capillary-like networks. Subcutaneous implantation models demonstrated that Cu@TP-dBPs were free of calcification and allowed for host cell infiltration at Day 21. Cardiac patch graft models confirmed that Cu@TP-dBP patches showed improved ingrowth of functional blood vessels and remodeling of extracellular matrix at Day 60. These results suggested that Cu@TP-dBPs not only had comparable biomechanics and biostability to Glut-dBPs, but also had several advantages over Glut-dBPs in terms of anticalcification, remodeling and integration capabilities. Particularly, they were functional patches possessing antibacterial and proangiogenic activities. These material properties and biological functions made Cu@TP-dBPs a promising functional acellular patch for cardiovascular applications. Oxford University Press 2022-05-18 /pmc/articles/PMC9157057/ /pubmed/35665201 http://dx.doi.org/10.1093/rb/rbac030 Text en © The Author(s) 2022. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Li, Qin
Gao, Yuan
Zhang, Jiajun
Tang, Yangfeng
Sun, Yangyong
Wu, Lujia
Wu, Hao
Shen, Meifang
Liu, Xiaohong
Han, Lin
Xu, Zhiyun
Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles
title Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles
title_full Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles
title_fullStr Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles
title_full_unstemmed Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles
title_short Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles
title_sort crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9157057/
https://www.ncbi.nlm.nih.gov/pubmed/35665201
http://dx.doi.org/10.1093/rb/rbac030
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