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Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing

In wound care management, the prevention of wound infection and the retention of an appropriate level of moisture are two major challenges. Therefore, designing an excellent antibacterial hydrogel with a suitable water-adsorbing capacity is very important to improve the development of wound dressing...

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Detalles Bibliográficos
Autores principales: Wang, Yu, Dou, Chunyan, He, Guidong, Ban, Litong, Huang, Liang, Li, Zheng, Gong, Jixian, Zhang, Jianfei, Yu, Peng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5977338/
https://www.ncbi.nlm.nih.gov/pubmed/29757942
http://dx.doi.org/10.3390/nano8050324
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author Wang, Yu
Dou, Chunyan
He, Guidong
Ban, Litong
Huang, Liang
Li, Zheng
Gong, Jixian
Zhang, Jianfei
Yu, Peng
author_facet Wang, Yu
Dou, Chunyan
He, Guidong
Ban, Litong
Huang, Liang
Li, Zheng
Gong, Jixian
Zhang, Jianfei
Yu, Peng
author_sort Wang, Yu
collection PubMed
description In wound care management, the prevention of wound infection and the retention of an appropriate level of moisture are two major challenges. Therefore, designing an excellent antibacterial hydrogel with a suitable water-adsorbing capacity is very important to improve the development of wound dressings. In this paper, a novel silver nanoparticles/poly (gamma-glutamic acid) (γ-PGA) composite dressing was prepared for biomedical applications. The promoted wound-healing ability of the hydrogels were systematically evaluated with the aim of attaining a novel and effective wound dressing. A diffusion study showed that hydrogels can continuously release antibacterial factors (Ag). Hydrogels contain a high percentage of water, providing an ideal moist environment for tissue regeneration, while also preventing contraction of the wound. Moreover, an in vivo, wound-healing model evaluation of artificial wounds in mice indicated that silver/γ-PGA hydrogels could significantly promote wound healing. Histological examination revealed that hydrogels can successfully help to reconstruct intact epidermis and collagen deposition during 14 days of impaired wound healing. Overall, this research could shed new light on the design of antibacterial silver/γ-PGA hydrogels with potential applications in wound dressing.
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spelling pubmed-59773382018-06-05 Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing Wang, Yu Dou, Chunyan He, Guidong Ban, Litong Huang, Liang Li, Zheng Gong, Jixian Zhang, Jianfei Yu, Peng Nanomaterials (Basel) Article In wound care management, the prevention of wound infection and the retention of an appropriate level of moisture are two major challenges. Therefore, designing an excellent antibacterial hydrogel with a suitable water-adsorbing capacity is very important to improve the development of wound dressings. In this paper, a novel silver nanoparticles/poly (gamma-glutamic acid) (γ-PGA) composite dressing was prepared for biomedical applications. The promoted wound-healing ability of the hydrogels were systematically evaluated with the aim of attaining a novel and effective wound dressing. A diffusion study showed that hydrogels can continuously release antibacterial factors (Ag). Hydrogels contain a high percentage of water, providing an ideal moist environment for tissue regeneration, while also preventing contraction of the wound. Moreover, an in vivo, wound-healing model evaluation of artificial wounds in mice indicated that silver/γ-PGA hydrogels could significantly promote wound healing. Histological examination revealed that hydrogels can successfully help to reconstruct intact epidermis and collagen deposition during 14 days of impaired wound healing. Overall, this research could shed new light on the design of antibacterial silver/γ-PGA hydrogels with potential applications in wound dressing. MDPI 2018-05-14 /pmc/articles/PMC5977338/ /pubmed/29757942 http://dx.doi.org/10.3390/nano8050324 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Yu
Dou, Chunyan
He, Guidong
Ban, Litong
Huang, Liang
Li, Zheng
Gong, Jixian
Zhang, Jianfei
Yu, Peng
Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing
title Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing
title_full Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing
title_fullStr Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing
title_full_unstemmed Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing
title_short Biomedical Potential of Ultrafine Ag Nanoparticles Coated on Poly (Gamma-Glutamic Acid) Hydrogel with Special Reference to Wound Healing
title_sort biomedical potential of ultrafine ag nanoparticles coated on poly (gamma-glutamic acid) hydrogel with special reference to wound healing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5977338/
https://www.ncbi.nlm.nih.gov/pubmed/29757942
http://dx.doi.org/10.3390/nano8050324
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