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Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses

Inflammation plays a crucial role in triggering regeneration, while inadequate or chronic inflammation hinders the regenerative process, resulting in refractory wounds. Inspired by the ideal regeneration mode in lower vertebrates and the human oral mucosa, realigning dysregulated inflammation to a h...

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Autores principales: Liu, Xuemei, Dou, Geng, Li, Zihan, Wang, Xiangdong, Jin, Ronghua, Liu, Yao, Kuang, Huijuan, Huang, Xiaoyao, Yang, Xiaoxue, Yang, Xiaoshan, Liu, Siying, Wu, Meiling, Guo, Hao, Ding, Feng, Xu, Haokun, Liu, Shiyu, Jin, Yan, Xuan, Kun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9313498/
https://www.ncbi.nlm.nih.gov/pubmed/35603963
http://dx.doi.org/10.1002/advs.202105650
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author Liu, Xuemei
Dou, Geng
Li, Zihan
Wang, Xiangdong
Jin, Ronghua
Liu, Yao
Kuang, Huijuan
Huang, Xiaoyao
Yang, Xiaoxue
Yang, Xiaoshan
Liu, Siying
Wu, Meiling
Guo, Hao
Ding, Feng
Xu, Haokun
Liu, Shiyu
Jin, Yan
Xuan, Kun
author_facet Liu, Xuemei
Dou, Geng
Li, Zihan
Wang, Xiangdong
Jin, Ronghua
Liu, Yao
Kuang, Huijuan
Huang, Xiaoyao
Yang, Xiaoxue
Yang, Xiaoshan
Liu, Siying
Wu, Meiling
Guo, Hao
Ding, Feng
Xu, Haokun
Liu, Shiyu
Jin, Yan
Xuan, Kun
author_sort Liu, Xuemei
collection PubMed
description Inflammation plays a crucial role in triggering regeneration, while inadequate or chronic inflammation hinders the regenerative process, resulting in refractory wounds. Inspired by the ideal regeneration mode in lower vertebrates and the human oral mucosa, realigning dysregulated inflammation to a heightened and acute response provides a promising option for refractory wound therapy. Neutrophils play important roles in inflammation initiation and resolution. Here, a hybrid biomaterial is used to stimulate transiently heightened inflammatory responses by precise tempospatial regulation of neutrophil recruitment and apoptosis. The hybrid biomaterial (Gel@fMLP/SiO(2)‐FasL) is constructed by loading of formyl‐met‐leu‐phe (fMLP) and FasL‐conjugated silica nanoparticles (SiO(2)‐FasL) into a pH‐responsive hydrogel matrix. This composition enables burst release of fMLP to rapidly recruit neutrophils for heightened inflammation initiation. After neutrophils act to produce acids, the pH‐responsive hydrogel degrades to expose SiO(2)‐FasL, which induces activated neutrophils apoptosis via FasL‐Fas signaling triggering timely inflammation resolution. Apoptotic neutrophils are subsequently cleared by macrophages, and this efferocytosis activates key signalings to promote macrophage anti‐inflammatory phenotypic transformation to drive regeneration. Ultimately, Gel@fMLP/SiO(2)‐FasL successfully promotes tissue regeneration by manipulating inflammation in critical‐sized calvarial bone defects and diabetic cutaneous wound models. This work provides a new strategy for refractory wound therapy via inducing transiently heightened inflammatory responses.
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spelling pubmed-93134982022-07-27 Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses Liu, Xuemei Dou, Geng Li, Zihan Wang, Xiangdong Jin, Ronghua Liu, Yao Kuang, Huijuan Huang, Xiaoyao Yang, Xiaoxue Yang, Xiaoshan Liu, Siying Wu, Meiling Guo, Hao Ding, Feng Xu, Haokun Liu, Shiyu Jin, Yan Xuan, Kun Adv Sci (Weinh) Research Articles Inflammation plays a crucial role in triggering regeneration, while inadequate or chronic inflammation hinders the regenerative process, resulting in refractory wounds. Inspired by the ideal regeneration mode in lower vertebrates and the human oral mucosa, realigning dysregulated inflammation to a heightened and acute response provides a promising option for refractory wound therapy. Neutrophils play important roles in inflammation initiation and resolution. Here, a hybrid biomaterial is used to stimulate transiently heightened inflammatory responses by precise tempospatial regulation of neutrophil recruitment and apoptosis. The hybrid biomaterial (Gel@fMLP/SiO(2)‐FasL) is constructed by loading of formyl‐met‐leu‐phe (fMLP) and FasL‐conjugated silica nanoparticles (SiO(2)‐FasL) into a pH‐responsive hydrogel matrix. This composition enables burst release of fMLP to rapidly recruit neutrophils for heightened inflammation initiation. After neutrophils act to produce acids, the pH‐responsive hydrogel degrades to expose SiO(2)‐FasL, which induces activated neutrophils apoptosis via FasL‐Fas signaling triggering timely inflammation resolution. Apoptotic neutrophils are subsequently cleared by macrophages, and this efferocytosis activates key signalings to promote macrophage anti‐inflammatory phenotypic transformation to drive regeneration. Ultimately, Gel@fMLP/SiO(2)‐FasL successfully promotes tissue regeneration by manipulating inflammation in critical‐sized calvarial bone defects and diabetic cutaneous wound models. This work provides a new strategy for refractory wound therapy via inducing transiently heightened inflammatory responses. John Wiley and Sons Inc. 2022-05-23 /pmc/articles/PMC9313498/ /pubmed/35603963 http://dx.doi.org/10.1002/advs.202105650 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Liu, Xuemei
Dou, Geng
Li, Zihan
Wang, Xiangdong
Jin, Ronghua
Liu, Yao
Kuang, Huijuan
Huang, Xiaoyao
Yang, Xiaoxue
Yang, Xiaoshan
Liu, Siying
Wu, Meiling
Guo, Hao
Ding, Feng
Xu, Haokun
Liu, Shiyu
Jin, Yan
Xuan, Kun
Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses
title Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses
title_full Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses
title_fullStr Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses
title_full_unstemmed Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses
title_short Hybrid Biomaterial Initiates Refractory Wound Healing via Inducing Transiently Heightened Inflammatory Responses
title_sort hybrid biomaterial initiates refractory wound healing via inducing transiently heightened inflammatory responses
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9313498/
https://www.ncbi.nlm.nih.gov/pubmed/35603963
http://dx.doi.org/10.1002/advs.202105650
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