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Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches

The intricate, tightly controlled mechanism of wound healing that is a vital physiological mechanism is essential to maintaining the skin's natural barrier function. Numerous studies have focused on wound healing as it is a massive burden on the healthcare system. Wound repair is a complicated...

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Autores principales: Dam, Paulami, Celik, Merve, Ustun, Merve, Saha, Sayantan, Saha, Chirantan, Kacar, Elif Ayse, Kugu, Senanur, Karagulle, Elif Naz, Tasoglu, Savaş, Buyukserin, Fatih, Mondal, Rittick, Roy, Priya, Macedo, Maria L. R., Franco, Octávio L., Cardoso, Marlon H., Altuntas, Sevde, Mandal, Amit Kumar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10350660/
https://www.ncbi.nlm.nih.gov/pubmed/37465579
http://dx.doi.org/10.1039/d3ra03477a
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author Dam, Paulami
Celik, Merve
Ustun, Merve
Saha, Sayantan
Saha, Chirantan
Kacar, Elif Ayse
Kugu, Senanur
Karagulle, Elif Naz
Tasoglu, Savaş
Buyukserin, Fatih
Mondal, Rittick
Roy, Priya
Macedo, Maria L. R.
Franco, Octávio L.
Cardoso, Marlon H.
Altuntas, Sevde
Mandal, Amit Kumar
author_facet Dam, Paulami
Celik, Merve
Ustun, Merve
Saha, Sayantan
Saha, Chirantan
Kacar, Elif Ayse
Kugu, Senanur
Karagulle, Elif Naz
Tasoglu, Savaş
Buyukserin, Fatih
Mondal, Rittick
Roy, Priya
Macedo, Maria L. R.
Franco, Octávio L.
Cardoso, Marlon H.
Altuntas, Sevde
Mandal, Amit Kumar
author_sort Dam, Paulami
collection PubMed
description The intricate, tightly controlled mechanism of wound healing that is a vital physiological mechanism is essential to maintaining the skin's natural barrier function. Numerous studies have focused on wound healing as it is a massive burden on the healthcare system. Wound repair is a complicated process with various cell types and microenvironment conditions. In wound healing studies, novel therapeutic approaches have been proposed to deliver an effective treatment. Nanoparticle-based materials are preferred due to their antibacterial activity, biocompatibility, and increased mechanical strength in wound healing. They can be divided into six main groups: metal NPs, ceramic NPs, polymer NPs, self-assembled NPs, composite NPs, and nanoparticle-loaded hydrogels. Each group shows several advantages and disadvantages, and which material will be used depends on the type, depth, and area of the wound. Better wound care/healing techniques are now possible, thanks to the development of wound healing strategies based on these materials, which mimic the extracellular matrix (ECM) microenvironment of the wound. Bearing this in mind, here we reviewed current studies on which NPs have been used in wound healing and how this strategy has become a key biotechnological procedure to treat skin infections and wounds.
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spelling pubmed-103506602023-07-18 Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches Dam, Paulami Celik, Merve Ustun, Merve Saha, Sayantan Saha, Chirantan Kacar, Elif Ayse Kugu, Senanur Karagulle, Elif Naz Tasoglu, Savaş Buyukserin, Fatih Mondal, Rittick Roy, Priya Macedo, Maria L. R. Franco, Octávio L. Cardoso, Marlon H. Altuntas, Sevde Mandal, Amit Kumar RSC Adv Chemistry The intricate, tightly controlled mechanism of wound healing that is a vital physiological mechanism is essential to maintaining the skin's natural barrier function. Numerous studies have focused on wound healing as it is a massive burden on the healthcare system. Wound repair is a complicated process with various cell types and microenvironment conditions. In wound healing studies, novel therapeutic approaches have been proposed to deliver an effective treatment. Nanoparticle-based materials are preferred due to their antibacterial activity, biocompatibility, and increased mechanical strength in wound healing. They can be divided into six main groups: metal NPs, ceramic NPs, polymer NPs, self-assembled NPs, composite NPs, and nanoparticle-loaded hydrogels. Each group shows several advantages and disadvantages, and which material will be used depends on the type, depth, and area of the wound. Better wound care/healing techniques are now possible, thanks to the development of wound healing strategies based on these materials, which mimic the extracellular matrix (ECM) microenvironment of the wound. Bearing this in mind, here we reviewed current studies on which NPs have been used in wound healing and how this strategy has become a key biotechnological procedure to treat skin infections and wounds. The Royal Society of Chemistry 2023-07-17 /pmc/articles/PMC10350660/ /pubmed/37465579 http://dx.doi.org/10.1039/d3ra03477a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Dam, Paulami
Celik, Merve
Ustun, Merve
Saha, Sayantan
Saha, Chirantan
Kacar, Elif Ayse
Kugu, Senanur
Karagulle, Elif Naz
Tasoglu, Savaş
Buyukserin, Fatih
Mondal, Rittick
Roy, Priya
Macedo, Maria L. R.
Franco, Octávio L.
Cardoso, Marlon H.
Altuntas, Sevde
Mandal, Amit Kumar
Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches
title Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches
title_full Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches
title_fullStr Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches
title_full_unstemmed Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches
title_short Wound healing strategies based on nanoparticles incorporated in hydrogel wound patches
title_sort wound healing strategies based on nanoparticles incorporated in hydrogel wound patches
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10350660/
https://www.ncbi.nlm.nih.gov/pubmed/37465579
http://dx.doi.org/10.1039/d3ra03477a
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