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Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage

Pneumonia caused by multidrug-resistant (MDR) Klebsiella pneumoniae of sequence types ST11 and ST383 have highlighted the necessity for new therapies against these prevalent pathogens. Bacteriophages (phages) may be used as alternatives or complements to antibiotics for treating MDR bacteria because...

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Autores principales: Gan, Lin, Fu, Hanyu, Tian, Ziyan, Cui, Jinghua, Yan, Chao, Xue, Guanhua, Fan, Zheng, Du, Bing, Feng, Junxia, Zhao, Hanqing, Feng, Yanling, Xu, Ziying, Fu, Tongtong, Cui, Xiaohu, Zhang, Rui, Du, Shuheng, Liu, Shiyu, Zhou, Yao, Zhang, Qun, Cao, Ling, Yuan, Jing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9602770/
https://www.ncbi.nlm.nih.gov/pubmed/36165773
http://dx.doi.org/10.1128/spectrum.02358-22
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author Gan, Lin
Fu, Hanyu
Tian, Ziyan
Cui, Jinghua
Yan, Chao
Xue, Guanhua
Fan, Zheng
Du, Bing
Feng, Junxia
Zhao, Hanqing
Feng, Yanling
Xu, Ziying
Fu, Tongtong
Cui, Xiaohu
Zhang, Rui
Du, Shuheng
Liu, Shiyu
Zhou, Yao
Zhang, Qun
Cao, Ling
Yuan, Jing
author_facet Gan, Lin
Fu, Hanyu
Tian, Ziyan
Cui, Jinghua
Yan, Chao
Xue, Guanhua
Fan, Zheng
Du, Bing
Feng, Junxia
Zhao, Hanqing
Feng, Yanling
Xu, Ziying
Fu, Tongtong
Cui, Xiaohu
Zhang, Rui
Du, Shuheng
Liu, Shiyu
Zhou, Yao
Zhang, Qun
Cao, Ling
Yuan, Jing
author_sort Gan, Lin
collection PubMed
description Pneumonia caused by multidrug-resistant (MDR) Klebsiella pneumoniae of sequence types ST11 and ST383 have highlighted the necessity for new therapies against these prevalent pathogens. Bacteriophages (phages) may be used as alternatives or complements to antibiotics for treating MDR bacteria because they show potential efficacy in mouse models and even individual clinical cases, and they also cause fewer side effects, such as microbiota-imbalance-induced diseases. In the present study, we screened two phages, pKp11 and pKp383, that targeted ST11 and ST383 MDR K. pneumoniae isolates collected from patients with pneumonia, and they exhibited a broad host range, high lytic activity, and high environmental adaptability. Both phages pKp11 and pKp383 provided an effective treatment for the early stage of pneumonia in a murine infection model without promoting obvious side effects, and cocktails consisting of the two phages were more effective for reducing bacterial loads, inflammation, and pathogenic injuries. Our findings support the application of phages as new medications for refractory ST11 and ST383 K. pneumoniae infections and emphasize the potential of enhancing phage therapy modalities through phage screening. These data provided important resources for assessing and optimizing phage therapies for MDR ST11 and ST383 infection treatment. However, substantial amounts of further work are needed before phage therapy can be translated to human therapeutics. IMPORTANCE K. pneumoniae is recognized as the most common pathogen of hospital- and community-acquired pneumonia across the world. The strains of ST11 and ST383 are frequently reported in patients with pneumonia. However, the efficacy of antibiotics toward K. pneumoniae is decreasing dramatically. As a new approach to combat MDR bacteria, phages have exhibited positive clinical effects and efficacy as synergetic or alternative strategies to antibiotics. Thus, we screened two phages that targeted ST11 and ST383 MDR K. pneumoniae, and they exhibited a broad host range, high lytic activity, and high environmental adaptability. Both phages provided an effective treatment for the early stage of pneumonia in mice, and cocktails consisting of the two phages were more effective in reducing bacterial loads, inflammation, and pathogenic injuries. Although these data suggest that phages are effective alternatives or complements to antibiotics, more research is needed before they can be translated into therapeutics for humans.
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spelling pubmed-96027702022-10-27 Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage Gan, Lin Fu, Hanyu Tian, Ziyan Cui, Jinghua Yan, Chao Xue, Guanhua Fan, Zheng Du, Bing Feng, Junxia Zhao, Hanqing Feng, Yanling Xu, Ziying Fu, Tongtong Cui, Xiaohu Zhang, Rui Du, Shuheng Liu, Shiyu Zhou, Yao Zhang, Qun Cao, Ling Yuan, Jing Microbiol Spectr Research Article Pneumonia caused by multidrug-resistant (MDR) Klebsiella pneumoniae of sequence types ST11 and ST383 have highlighted the necessity for new therapies against these prevalent pathogens. Bacteriophages (phages) may be used as alternatives or complements to antibiotics for treating MDR bacteria because they show potential efficacy in mouse models and even individual clinical cases, and they also cause fewer side effects, such as microbiota-imbalance-induced diseases. In the present study, we screened two phages, pKp11 and pKp383, that targeted ST11 and ST383 MDR K. pneumoniae isolates collected from patients with pneumonia, and they exhibited a broad host range, high lytic activity, and high environmental adaptability. Both phages pKp11 and pKp383 provided an effective treatment for the early stage of pneumonia in a murine infection model without promoting obvious side effects, and cocktails consisting of the two phages were more effective for reducing bacterial loads, inflammation, and pathogenic injuries. Our findings support the application of phages as new medications for refractory ST11 and ST383 K. pneumoniae infections and emphasize the potential of enhancing phage therapy modalities through phage screening. These data provided important resources for assessing and optimizing phage therapies for MDR ST11 and ST383 infection treatment. However, substantial amounts of further work are needed before phage therapy can be translated to human therapeutics. IMPORTANCE K. pneumoniae is recognized as the most common pathogen of hospital- and community-acquired pneumonia across the world. The strains of ST11 and ST383 are frequently reported in patients with pneumonia. However, the efficacy of antibiotics toward K. pneumoniae is decreasing dramatically. As a new approach to combat MDR bacteria, phages have exhibited positive clinical effects and efficacy as synergetic or alternative strategies to antibiotics. Thus, we screened two phages that targeted ST11 and ST383 MDR K. pneumoniae, and they exhibited a broad host range, high lytic activity, and high environmental adaptability. Both phages provided an effective treatment for the early stage of pneumonia in mice, and cocktails consisting of the two phages were more effective in reducing bacterial loads, inflammation, and pathogenic injuries. Although these data suggest that phages are effective alternatives or complements to antibiotics, more research is needed before they can be translated into therapeutics for humans. American Society for Microbiology 2022-09-27 /pmc/articles/PMC9602770/ /pubmed/36165773 http://dx.doi.org/10.1128/spectrum.02358-22 Text en Copyright © 2022 Gan et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Gan, Lin
Fu, Hanyu
Tian, Ziyan
Cui, Jinghua
Yan, Chao
Xue, Guanhua
Fan, Zheng
Du, Bing
Feng, Junxia
Zhao, Hanqing
Feng, Yanling
Xu, Ziying
Fu, Tongtong
Cui, Xiaohu
Zhang, Rui
Du, Shuheng
Liu, Shiyu
Zhou, Yao
Zhang, Qun
Cao, Ling
Yuan, Jing
Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage
title Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage
title_full Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage
title_fullStr Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage
title_full_unstemmed Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage
title_short Bacteriophage Effectively Rescues Pneumonia Caused by Prevalent Multidrug-Resistant Klebsiella pneumoniae in the Early Stage
title_sort bacteriophage effectively rescues pneumonia caused by prevalent multidrug-resistant klebsiella pneumoniae in the early stage
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9602770/
https://www.ncbi.nlm.nih.gov/pubmed/36165773
http://dx.doi.org/10.1128/spectrum.02358-22
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