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Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis

Sepsis is a life-threatening organ dysfunction characterized by severe systemic inflammatory response to infection. Effective treatment of bacterial sepsis remains a paramount clinical challenge, due to its astonishingly rapid progression and the prevalence of bacterial drug resistance. Here, we pre...

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Autores principales: Du, Xuancheng, Zhang, Mingzhen, Zhou, Huiting, Wang, Weijie, Zhang, Chengmei, Zhang, Lei, Qu, Yuanyuan, Li, Weifeng, Liu, Xiangdong, Zhao, Mingwen, Tu, Kangsheng, Li, Yong-Qiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9534579/
https://www.ncbi.nlm.nih.gov/pubmed/36258843
http://dx.doi.org/10.34133/2022/9767643
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author Du, Xuancheng
Zhang, Mingzhen
Zhou, Huiting
Wang, Weijie
Zhang, Chengmei
Zhang, Lei
Qu, Yuanyuan
Li, Weifeng
Liu, Xiangdong
Zhao, Mingwen
Tu, Kangsheng
Li, Yong-Qiang
author_facet Du, Xuancheng
Zhang, Mingzhen
Zhou, Huiting
Wang, Weijie
Zhang, Chengmei
Zhang, Lei
Qu, Yuanyuan
Li, Weifeng
Liu, Xiangdong
Zhao, Mingwen
Tu, Kangsheng
Li, Yong-Qiang
author_sort Du, Xuancheng
collection PubMed
description Sepsis is a life-threatening organ dysfunction characterized by severe systemic inflammatory response to infection. Effective treatment of bacterial sepsis remains a paramount clinical challenge, due to its astonishingly rapid progression and the prevalence of bacterial drug resistance. Here, we present a decoy nanozyme-enabled intervention strategy for multitarget blockade of proinflammatory cascades to treat multi-drug-resistant (MDR) bacterial sepsis. The decoy nanozymes (named MCeC@MΦ) consist mesoporous silica nanoparticle cores loaded with CeO(2) nanocatalyst and Ce6 photosensitizer and biomimetic shells of macrophage membrane. By acting as macrophage decoys, MCeC@MΦ allow targeted photodynamic eradication of MDR bacteria and realize simultaneous endotoxin/proinflammatory cytokine neutralization. Meanwhile, MCeC@MΦ possess intriguing superoxide dismutase and catalase-like activities as well as hydroxyl radical antioxidant capacity and enable catalytic scavenging of multiple reactive oxygen species (ROS). These unique capabilities make MCeC@MΦ to collaboratively address the issues of bacterial infection, endotoxin/proinflammatory cytokine secretion, and ROS burst, fully cutting off the path of proinflammatory cascades to reverse the progression of bacterial sepsis. In vivo experiments demonstrate that MCeC@MΦ considerably attenuate systemic hyperinflammation and rapidly rescue organ damage within 1 day to confer higher survival rates (>75%) to mice with progressive MDR Escherichia coli bacteremia. The proposed decoy nanozyme-enabled multitarget collaborative intervention strategy offers a powerful modality for bacterial sepsis management and opens up possibilities for the treatment of cytokine storm in the COVID-19 pandemic and immune-mediated inflammation diseases.
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spelling pubmed-95345792022-10-17 Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis Du, Xuancheng Zhang, Mingzhen Zhou, Huiting Wang, Weijie Zhang, Chengmei Zhang, Lei Qu, Yuanyuan Li, Weifeng Liu, Xiangdong Zhao, Mingwen Tu, Kangsheng Li, Yong-Qiang Research (Wash D C) Research Article Sepsis is a life-threatening organ dysfunction characterized by severe systemic inflammatory response to infection. Effective treatment of bacterial sepsis remains a paramount clinical challenge, due to its astonishingly rapid progression and the prevalence of bacterial drug resistance. Here, we present a decoy nanozyme-enabled intervention strategy for multitarget blockade of proinflammatory cascades to treat multi-drug-resistant (MDR) bacterial sepsis. The decoy nanozymes (named MCeC@MΦ) consist mesoporous silica nanoparticle cores loaded with CeO(2) nanocatalyst and Ce6 photosensitizer and biomimetic shells of macrophage membrane. By acting as macrophage decoys, MCeC@MΦ allow targeted photodynamic eradication of MDR bacteria and realize simultaneous endotoxin/proinflammatory cytokine neutralization. Meanwhile, MCeC@MΦ possess intriguing superoxide dismutase and catalase-like activities as well as hydroxyl radical antioxidant capacity and enable catalytic scavenging of multiple reactive oxygen species (ROS). These unique capabilities make MCeC@MΦ to collaboratively address the issues of bacterial infection, endotoxin/proinflammatory cytokine secretion, and ROS burst, fully cutting off the path of proinflammatory cascades to reverse the progression of bacterial sepsis. In vivo experiments demonstrate that MCeC@MΦ considerably attenuate systemic hyperinflammation and rapidly rescue organ damage within 1 day to confer higher survival rates (>75%) to mice with progressive MDR Escherichia coli bacteremia. The proposed decoy nanozyme-enabled multitarget collaborative intervention strategy offers a powerful modality for bacterial sepsis management and opens up possibilities for the treatment of cytokine storm in the COVID-19 pandemic and immune-mediated inflammation diseases. AAAS 2022-09-26 /pmc/articles/PMC9534579/ /pubmed/36258843 http://dx.doi.org/10.34133/2022/9767643 Text en Copyright © 2022 Xuancheng Du et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Du, Xuancheng
Zhang, Mingzhen
Zhou, Huiting
Wang, Weijie
Zhang, Chengmei
Zhang, Lei
Qu, Yuanyuan
Li, Weifeng
Liu, Xiangdong
Zhao, Mingwen
Tu, Kangsheng
Li, Yong-Qiang
Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis
title Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis
title_full Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis
title_fullStr Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis
title_full_unstemmed Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis
title_short Decoy Nanozymes Enable Multitarget Blockade of Proinflammatory Cascades for the Treatment of Multi-Drug-Resistant Bacterial Sepsis
title_sort decoy nanozymes enable multitarget blockade of proinflammatory cascades for the treatment of multi-drug-resistant bacterial sepsis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9534579/
https://www.ncbi.nlm.nih.gov/pubmed/36258843
http://dx.doi.org/10.34133/2022/9767643
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