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Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels

OBJECTIVE: The widespread use of antibiotics has inevitably led to the emergence of multidrug-resistant bacterial strains, such as methicillin-resistant Staphylococcus aureus (MRSA), making treatment of this infection a serious challenge. This study aimed to explore new treatment strategies for MRSA...

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Autores principales: Ye, Jinhua, Hou, Fangpeng, Chen, Guanyu, Zhong, Tianyu, Xue, Junxia, Yu, Fangyou, Lai, Yi, Yang, Yingjie, Liu, Dedong, Tian, Yuantong, Huang, Junyun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9947852/
https://www.ncbi.nlm.nih.gov/pubmed/36846790
http://dx.doi.org/10.3389/fmicb.2023.1023036
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author Ye, Jinhua
Hou, Fangpeng
Chen, Guanyu
Zhong, Tianyu
Xue, Junxia
Yu, Fangyou
Lai, Yi
Yang, Yingjie
Liu, Dedong
Tian, Yuantong
Huang, Junyun
author_facet Ye, Jinhua
Hou, Fangpeng
Chen, Guanyu
Zhong, Tianyu
Xue, Junxia
Yu, Fangyou
Lai, Yi
Yang, Yingjie
Liu, Dedong
Tian, Yuantong
Huang, Junyun
author_sort Ye, Jinhua
collection PubMed
description OBJECTIVE: The widespread use of antibiotics has inevitably led to the emergence of multidrug-resistant bacterial strains, such as methicillin-resistant Staphylococcus aureus (MRSA), making treatment of this infection a serious challenge. This study aimed to explore new treatment strategies for MRSA infection. METHODS: The structure of Fe(3)O(4) NPs with limited antibacterial activity was optimized, and the Fe(2+) ↔ Fe(3+) electronic coupling was eliminated by replacing 1/2 Fe(2+) with Cu(2+). A new type of copper-containing ferrite nanoparticles (hereinafter referred to as Cu@Fe NPs) that fully retained oxidation–reduction activity was synthesized. First, the ultrastructure of Cu@Fe NPs was examined. Then, antibacterial activity was determined by testing the minimum inhibitory concentration (MIC) and safety for use as an antibiotic agent. Next, the mechanisms underlying the antibacterial effects of Cu@Fe NPs were investigated. Finally, mice models of systemic and localized MRSA infections was established for in vivo validation. RESULTS: It was found that Cu@Fe NPs exhibited excellent antibacterial activity against MRSA with MIC of 1 μg/mL. It effectively inhibited the development of MRSA resistance and disrupted the bacterial biofilms. More importantly, the cell membranes of MRSA exposed to Cu@Fe NPs underwent significant rupture and leakage of the cell contents. Cu@Fe NPs also significantly reduced the iron ions required for bacterial growth and contributed to excessive intracellular accumulation of exogenous reactive oxygen species (ROS). Therefore, these findings may important for its antibacterial effect. Furthermore, Cu@Fe NPs treatment led to a significant reduction in colony forming units within intra-abdominal organs, such as the liver, spleen, kidney, and lung, in mice with systemic MRSA infection, but not for damaged skin in those with localized MRSA infection. CONCLUSION: The synthesized nanoparticles has an excellent drug safety profile, confers high resistant to MRSA, and can effectively inhibit the progression of drug resistance. It also has the potential to exert anti-MRSA infection effects systemically in vivo. In addition, our study revealed a unique multifaceted antibacterial mode of Cu@Fe NPs: (1) an increase in cell membrane permeability, (2) depletion of Fe ions in cells, (3) generation of ROS in cells. Overall, Cu@Fe NPs may be potential therapeutic agents for MRSA infections.
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spelling pubmed-99478522023-02-24 Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels Ye, Jinhua Hou, Fangpeng Chen, Guanyu Zhong, Tianyu Xue, Junxia Yu, Fangyou Lai, Yi Yang, Yingjie Liu, Dedong Tian, Yuantong Huang, Junyun Front Microbiol Microbiology OBJECTIVE: The widespread use of antibiotics has inevitably led to the emergence of multidrug-resistant bacterial strains, such as methicillin-resistant Staphylococcus aureus (MRSA), making treatment of this infection a serious challenge. This study aimed to explore new treatment strategies for MRSA infection. METHODS: The structure of Fe(3)O(4) NPs with limited antibacterial activity was optimized, and the Fe(2+) ↔ Fe(3+) electronic coupling was eliminated by replacing 1/2 Fe(2+) with Cu(2+). A new type of copper-containing ferrite nanoparticles (hereinafter referred to as Cu@Fe NPs) that fully retained oxidation–reduction activity was synthesized. First, the ultrastructure of Cu@Fe NPs was examined. Then, antibacterial activity was determined by testing the minimum inhibitory concentration (MIC) and safety for use as an antibiotic agent. Next, the mechanisms underlying the antibacterial effects of Cu@Fe NPs were investigated. Finally, mice models of systemic and localized MRSA infections was established for in vivo validation. RESULTS: It was found that Cu@Fe NPs exhibited excellent antibacterial activity against MRSA with MIC of 1 μg/mL. It effectively inhibited the development of MRSA resistance and disrupted the bacterial biofilms. More importantly, the cell membranes of MRSA exposed to Cu@Fe NPs underwent significant rupture and leakage of the cell contents. Cu@Fe NPs also significantly reduced the iron ions required for bacterial growth and contributed to excessive intracellular accumulation of exogenous reactive oxygen species (ROS). Therefore, these findings may important for its antibacterial effect. Furthermore, Cu@Fe NPs treatment led to a significant reduction in colony forming units within intra-abdominal organs, such as the liver, spleen, kidney, and lung, in mice with systemic MRSA infection, but not for damaged skin in those with localized MRSA infection. CONCLUSION: The synthesized nanoparticles has an excellent drug safety profile, confers high resistant to MRSA, and can effectively inhibit the progression of drug resistance. It also has the potential to exert anti-MRSA infection effects systemically in vivo. In addition, our study revealed a unique multifaceted antibacterial mode of Cu@Fe NPs: (1) an increase in cell membrane permeability, (2) depletion of Fe ions in cells, (3) generation of ROS in cells. Overall, Cu@Fe NPs may be potential therapeutic agents for MRSA infections. Frontiers Media S.A. 2023-02-09 /pmc/articles/PMC9947852/ /pubmed/36846790 http://dx.doi.org/10.3389/fmicb.2023.1023036 Text en Copyright © 2023 Ye, Hou, Chen, Zhong, Xue, Yu, Lai, Yang, Liu, Tian and Huang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Ye, Jinhua
Hou, Fangpeng
Chen, Guanyu
Zhong, Tianyu
Xue, Junxia
Yu, Fangyou
Lai, Yi
Yang, Yingjie
Liu, Dedong
Tian, Yuantong
Huang, Junyun
Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels
title Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels
title_full Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels
title_fullStr Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels
title_full_unstemmed Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels
title_short Novel copper-containing ferrite nanoparticles exert lethality to MRSA by disrupting MRSA cell membrane permeability, depleting intracellular iron ions, and upregulating ROS levels
title_sort novel copper-containing ferrite nanoparticles exert lethality to mrsa by disrupting mrsa cell membrane permeability, depleting intracellular iron ions, and upregulating ros levels
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9947852/
https://www.ncbi.nlm.nih.gov/pubmed/36846790
http://dx.doi.org/10.3389/fmicb.2023.1023036
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