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A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing

Skin wounds caused by external injuries remain a serious challenge in clinical practice. Wound dressings that are antibacterial, pro-angiogenic, and have potent regeneration capacities are highly desirable for wound healing. In this study, a minimally invasive and wound-friendly Cu@ZIF-8 encapsulate...

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Autores principales: Xiang, Jieyu, Zhu, Yufan, Xie, Yuanlong, Chen, Hang, Zhou, Ling, Chen, Danyang, Guo, Jia, Wang, Min, Cai, Lin, Guo, Liang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496905/
https://www.ncbi.nlm.nih.gov/pubmed/37705764
http://dx.doi.org/10.1039/d3na00291h
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author Xiang, Jieyu
Zhu, Yufan
Xie, Yuanlong
Chen, Hang
Zhou, Ling
Chen, Danyang
Guo, Jia
Wang, Min
Cai, Lin
Guo, Liang
author_facet Xiang, Jieyu
Zhu, Yufan
Xie, Yuanlong
Chen, Hang
Zhou, Ling
Chen, Danyang
Guo, Jia
Wang, Min
Cai, Lin
Guo, Liang
author_sort Xiang, Jieyu
collection PubMed
description Skin wounds caused by external injuries remain a serious challenge in clinical practice. Wound dressings that are antibacterial, pro-angiogenic, and have potent regeneration capacities are highly desirable for wound healing. In this study, a minimally invasive and wound-friendly Cu@ZIF-8 encapsulated PEGDA/CMCS microneedle (MN) array was fabricated using the molding method to promote wound healing. The MNs had good biocompatibility, excellent mechanical strength, as well as strong antibacterial properties and pro-angiogenic effects. When incubated with H(2)O(2), Cu@ZIF-8 nanoparticles generated reactive oxygen species, which contributed to their antibacterial properties. Due to the oxidative stress of the cupric ions released from Cu@ZIF-8 and the anti-bacterial capability of the PEGDA/CMCS hydrogel scaffold, such an MN array presents excellent antibacterial activity. Moreover, with the continuous release of Cu ions from the scaffold, such MNs are effective in terms of promoting angiogenesis. With considerable biocompatibility and a minimally invasive approach, the degradable MN array composed of PEGDA/CMCS possessed superior capabilities to continuously and steadily release the loaded ingredients and avoid secondary damage to the wound. Benefiting from these features, the Cu@ZIF-8 encapsulated degradable MN array can dramatically accelerate epithelial regeneration and neovascularization. These results indicated that the combination of Cu@ZIF-8 and degradable MN arrays is valuable in promoting wound healing, which opened a new window for treatment of skin defection.
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spelling pubmed-104969052023-09-13 A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing Xiang, Jieyu Zhu, Yufan Xie, Yuanlong Chen, Hang Zhou, Ling Chen, Danyang Guo, Jia Wang, Min Cai, Lin Guo, Liang Nanoscale Adv Chemistry Skin wounds caused by external injuries remain a serious challenge in clinical practice. Wound dressings that are antibacterial, pro-angiogenic, and have potent regeneration capacities are highly desirable for wound healing. In this study, a minimally invasive and wound-friendly Cu@ZIF-8 encapsulated PEGDA/CMCS microneedle (MN) array was fabricated using the molding method to promote wound healing. The MNs had good biocompatibility, excellent mechanical strength, as well as strong antibacterial properties and pro-angiogenic effects. When incubated with H(2)O(2), Cu@ZIF-8 nanoparticles generated reactive oxygen species, which contributed to their antibacterial properties. Due to the oxidative stress of the cupric ions released from Cu@ZIF-8 and the anti-bacterial capability of the PEGDA/CMCS hydrogel scaffold, such an MN array presents excellent antibacterial activity. Moreover, with the continuous release of Cu ions from the scaffold, such MNs are effective in terms of promoting angiogenesis. With considerable biocompatibility and a minimally invasive approach, the degradable MN array composed of PEGDA/CMCS possessed superior capabilities to continuously and steadily release the loaded ingredients and avoid secondary damage to the wound. Benefiting from these features, the Cu@ZIF-8 encapsulated degradable MN array can dramatically accelerate epithelial regeneration and neovascularization. These results indicated that the combination of Cu@ZIF-8 and degradable MN arrays is valuable in promoting wound healing, which opened a new window for treatment of skin defection. RSC 2023-08-17 /pmc/articles/PMC10496905/ /pubmed/37705764 http://dx.doi.org/10.1039/d3na00291h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xiang, Jieyu
Zhu, Yufan
Xie, Yuanlong
Chen, Hang
Zhou, Ling
Chen, Danyang
Guo, Jia
Wang, Min
Cai, Lin
Guo, Liang
A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing
title A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing
title_full A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing
title_fullStr A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing
title_full_unstemmed A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing
title_short A Cu@ZIF-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing
title_sort cu@zif-8 encapsulated antibacterial and angiogenic microneedle array for promoting wound healing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496905/
https://www.ncbi.nlm.nih.gov/pubmed/37705764
http://dx.doi.org/10.1039/d3na00291h
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