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Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway

[Image: see text] Excessive extracellular matrix deposition drives fibroblasts into a state of high mechanical stress, exacerbating pathological fibrosis and hypertrophic scar formation, leading to tissue dysfunction. This study reports a minimally invasive and convenient approach to obtaining scarl...

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Autores principales: Zhang, Qing, Shi, Lin, He, Hong, Liu, Xingmou, Huang, Yong, Xu, Dan, Yao, Mengyun, Zhang, Ning, Guo, Yicheng, Lu, Yifei, Li, Haisheng, Zhou, Junyi, Tan, Jianglin, Xing, Malcolm, Luo, Gaoxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9331171/
https://www.ncbi.nlm.nih.gov/pubmed/35617518
http://dx.doi.org/10.1021/acsnano.1c11016
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author Zhang, Qing
Shi, Lin
He, Hong
Liu, Xingmou
Huang, Yong
Xu, Dan
Yao, Mengyun
Zhang, Ning
Guo, Yicheng
Lu, Yifei
Li, Haisheng
Zhou, Junyi
Tan, Jianglin
Xing, Malcolm
Luo, Gaoxing
author_facet Zhang, Qing
Shi, Lin
He, Hong
Liu, Xingmou
Huang, Yong
Xu, Dan
Yao, Mengyun
Zhang, Ning
Guo, Yicheng
Lu, Yifei
Li, Haisheng
Zhou, Junyi
Tan, Jianglin
Xing, Malcolm
Luo, Gaoxing
author_sort Zhang, Qing
collection PubMed
description [Image: see text] Excessive extracellular matrix deposition drives fibroblasts into a state of high mechanical stress, exacerbating pathological fibrosis and hypertrophic scar formation, leading to tissue dysfunction. This study reports a minimally invasive and convenient approach to obtaining scarless tissue using a silk fibroin microneedle patch (SF MNs). We found that by tuning the MN size and density only, the biocompatible MNs significantly decreased the scar elevation index in the rabbit ear hypertrophic scar model and increased ultimate tensile strength close to regular skin. To advance our understanding of this recent approach, we built a fibroblast-populated collagen lattice system and finite element model to study MN-mediated cellular behavior of fibroblasts. We found that the MNs reduced the fibroblasts generated contraction and mechanical stress, as indicated by decreased expression of the mechanical sensitive gene ANKRD1. Specifically, SF MNs attenuated the integrin-FAK signaling and consequently down-regulated the expression of TGF-β1, α-SMA, collagen I, and fibronectin. It resulted in a low-stress microenvironment that helps to reduce scar formation significantly. Microneedles’ physical intervention via the mechanotherapeutic strategy is promising for scar-free wound healing.
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spelling pubmed-93311712022-07-29 Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway Zhang, Qing Shi, Lin He, Hong Liu, Xingmou Huang, Yong Xu, Dan Yao, Mengyun Zhang, Ning Guo, Yicheng Lu, Yifei Li, Haisheng Zhou, Junyi Tan, Jianglin Xing, Malcolm Luo, Gaoxing ACS Nano [Image: see text] Excessive extracellular matrix deposition drives fibroblasts into a state of high mechanical stress, exacerbating pathological fibrosis and hypertrophic scar formation, leading to tissue dysfunction. This study reports a minimally invasive and convenient approach to obtaining scarless tissue using a silk fibroin microneedle patch (SF MNs). We found that by tuning the MN size and density only, the biocompatible MNs significantly decreased the scar elevation index in the rabbit ear hypertrophic scar model and increased ultimate tensile strength close to regular skin. To advance our understanding of this recent approach, we built a fibroblast-populated collagen lattice system and finite element model to study MN-mediated cellular behavior of fibroblasts. We found that the MNs reduced the fibroblasts generated contraction and mechanical stress, as indicated by decreased expression of the mechanical sensitive gene ANKRD1. Specifically, SF MNs attenuated the integrin-FAK signaling and consequently down-regulated the expression of TGF-β1, α-SMA, collagen I, and fibronectin. It resulted in a low-stress microenvironment that helps to reduce scar formation significantly. Microneedles’ physical intervention via the mechanotherapeutic strategy is promising for scar-free wound healing. American Chemical Society 2022-05-26 2022-07-26 /pmc/articles/PMC9331171/ /pubmed/35617518 http://dx.doi.org/10.1021/acsnano.1c11016 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Zhang, Qing
Shi, Lin
He, Hong
Liu, Xingmou
Huang, Yong
Xu, Dan
Yao, Mengyun
Zhang, Ning
Guo, Yicheng
Lu, Yifei
Li, Haisheng
Zhou, Junyi
Tan, Jianglin
Xing, Malcolm
Luo, Gaoxing
Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway
title Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway
title_full Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway
title_fullStr Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway
title_full_unstemmed Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway
title_short Down-Regulating Scar Formation by Microneedles Directly via a Mechanical Communication Pathway
title_sort down-regulating scar formation by microneedles directly via a mechanical communication pathway
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9331171/
https://www.ncbi.nlm.nih.gov/pubmed/35617518
http://dx.doi.org/10.1021/acsnano.1c11016
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