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A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity

Accelerating diabetes-related chronic wound healing is a long-sought-after goal in diabetes management. However, therapeutic strategies based on antibiotics or catalysts still face great challenges to break the limitations of antimicrobial resistance, low H(2)O(2) and the blocking effect of bacteria...

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Detalles Bibliográficos
Autores principales: Wang, Linlin, Su, Qiwen, Liu, Yi, Yimamumaimaiti, Tajiguli, Hu, Dandan, Zhu, Jun-Jie, Zhang, Jian-Rong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9601455/
https://www.ncbi.nlm.nih.gov/pubmed/36349095
http://dx.doi.org/10.1039/d2sc04242h
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author Wang, Linlin
Su, Qiwen
Liu, Yi
Yimamumaimaiti, Tajiguli
Hu, Dandan
Zhu, Jun-Jie
Zhang, Jian-Rong
author_facet Wang, Linlin
Su, Qiwen
Liu, Yi
Yimamumaimaiti, Tajiguli
Hu, Dandan
Zhu, Jun-Jie
Zhang, Jian-Rong
author_sort Wang, Linlin
collection PubMed
description Accelerating diabetes-related chronic wound healing is a long-sought-after goal in diabetes management. However, therapeutic strategies based on antibiotics or catalysts still face great challenges to break the limitations of antimicrobial resistance, low H(2)O(2) and the blocking effect of bacterial biofilms on antibiotic/catalyst penetration. Herein, we reported a glucose biofuel cell-powered and drug-free antibacterial patch, which consisted of an MAF-7 protected glucose oxidase/horseradish peroxidase anode and a horseradish peroxidase cathode, for treating diabetic wounds. This self-powered patch could take high blood glucose as fuel to generate electricity and abundant reactive oxygen species (ROS) in situ, synergistically regulating local hyperglycemia and breaking the limitations of insufficient ROS caused by low H(2)O(2) levels. In particular, the electric field created by the GBFC could drive the negatively charged bacteria to adhere firmly to the electrode surface. As a result, the ROS produced in situ on the electrodes was localized to the bacteria, realizing precise sterilization. In vivo experiments confirmed that this self-powered patch enabled the wounds on diabetic mice to take a mere 10 days to eliminate inflammation and form mature skin with new hair follicles, demonstrating its great potential in treating bacteria-infected diabetic wounds.
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spelling pubmed-96014552022-11-07 A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity Wang, Linlin Su, Qiwen Liu, Yi Yimamumaimaiti, Tajiguli Hu, Dandan Zhu, Jun-Jie Zhang, Jian-Rong Chem Sci Chemistry Accelerating diabetes-related chronic wound healing is a long-sought-after goal in diabetes management. However, therapeutic strategies based on antibiotics or catalysts still face great challenges to break the limitations of antimicrobial resistance, low H(2)O(2) and the blocking effect of bacterial biofilms on antibiotic/catalyst penetration. Herein, we reported a glucose biofuel cell-powered and drug-free antibacterial patch, which consisted of an MAF-7 protected glucose oxidase/horseradish peroxidase anode and a horseradish peroxidase cathode, for treating diabetic wounds. This self-powered patch could take high blood glucose as fuel to generate electricity and abundant reactive oxygen species (ROS) in situ, synergistically regulating local hyperglycemia and breaking the limitations of insufficient ROS caused by low H(2)O(2) levels. In particular, the electric field created by the GBFC could drive the negatively charged bacteria to adhere firmly to the electrode surface. As a result, the ROS produced in situ on the electrodes was localized to the bacteria, realizing precise sterilization. In vivo experiments confirmed that this self-powered patch enabled the wounds on diabetic mice to take a mere 10 days to eliminate inflammation and form mature skin with new hair follicles, demonstrating its great potential in treating bacteria-infected diabetic wounds. The Royal Society of Chemistry 2022-09-30 /pmc/articles/PMC9601455/ /pubmed/36349095 http://dx.doi.org/10.1039/d2sc04242h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Wang, Linlin
Su, Qiwen
Liu, Yi
Yimamumaimaiti, Tajiguli
Hu, Dandan
Zhu, Jun-Jie
Zhang, Jian-Rong
A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity
title A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity
title_full A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity
title_fullStr A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity
title_full_unstemmed A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity
title_short A self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low H(2)O(2) limitations and precisely sterilizing driven by electricity
title_sort self-powered and drug-free diabetic wound healing patch breaking hyperglycemia and low h(2)o(2) limitations and precisely sterilizing driven by electricity
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9601455/
https://www.ncbi.nlm.nih.gov/pubmed/36349095
http://dx.doi.org/10.1039/d2sc04242h
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