Cargando…

PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level

The two-component system (TCS) PhoPQ has been demonstrated to be crucial for the formation of resistance to quinolones and cephalosporins in Salmonella Enteritidis (S. Enteritidis). However, the mechanism underlying PhoPQ-mediated antibiotic resistance formation remains poorly understood. Here, it w...

Descripción completa

Detalles Bibliográficos
Autores principales: Hu, Mengjun, Zhang, Yuyan, Huang, Xiaozhen, He, Mu, Zhu, Jinyu, Zhang, Zengfeng, Cui, Yan, He, Shoukui, Shi, Xianming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10294627/
https://www.ncbi.nlm.nih.gov/pubmed/37184399
http://dx.doi.org/10.1128/mbio.03395-22
_version_ 1785063232135757824
author Hu, Mengjun
Zhang, Yuyan
Huang, Xiaozhen
He, Mu
Zhu, Jinyu
Zhang, Zengfeng
Cui, Yan
He, Shoukui
Shi, Xianming
author_facet Hu, Mengjun
Zhang, Yuyan
Huang, Xiaozhen
He, Mu
Zhu, Jinyu
Zhang, Zengfeng
Cui, Yan
He, Shoukui
Shi, Xianming
author_sort Hu, Mengjun
collection PubMed
description The two-component system (TCS) PhoPQ has been demonstrated to be crucial for the formation of resistance to quinolones and cephalosporins in Salmonella Enteritidis (S. Enteritidis). However, the mechanism underlying PhoPQ-mediated antibiotic resistance formation remains poorly understood. Here, it was shown that PhoP transcriptionally regulated an assortment of genes associated with envelope homeostasis, the osmotic stress response, and the redox balance to confer resistance to quinolones and cephalosporins in S. Enteritidis. Specifically, cells lacking the PhoP regulator, under nalidixic acid and ceftazidime stress, bore a severely compromised membrane on the aspects of integrity, fluidity, and permeability, with deficiency to withstand osmolarity stress, an increased accumulation of intracellular reactive oxygen species, and dysregulated redox homeostasis, which are unfavorable for bacterial survival. The phosphorylated PhoP elicited transcriptional alterations of resistance-associated genes, including the outer membrane porin ompF and the aconitate hydratase acnA, by directly binding to their promoters, leading to a limited influx of antibiotics and a well-maintained intracellular metabolism. Importantly, it was demonstrated that the cavity of the PhoQ sensor domain bound to and sensed quinolones/cephalosporins via the crucial surrounding residues, as their mutations abrogated the binding and PhoQ autophosphorylation. This recognition mode promoted signal transduction that activated PhoP, thereby modulating the transcription of downstream genes to accommodate cells to antibiotic stress. These findings have revealed how bacteria employ a specific TCS to sense antibiotics and combat them, suggesting PhoPQ as a potential drug target with which to surmount S. Enteritidis.
format Online
Article
Text
id pubmed-10294627
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-102946272023-06-28 PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level Hu, Mengjun Zhang, Yuyan Huang, Xiaozhen He, Mu Zhu, Jinyu Zhang, Zengfeng Cui, Yan He, Shoukui Shi, Xianming mBio Research Article The two-component system (TCS) PhoPQ has been demonstrated to be crucial for the formation of resistance to quinolones and cephalosporins in Salmonella Enteritidis (S. Enteritidis). However, the mechanism underlying PhoPQ-mediated antibiotic resistance formation remains poorly understood. Here, it was shown that PhoP transcriptionally regulated an assortment of genes associated with envelope homeostasis, the osmotic stress response, and the redox balance to confer resistance to quinolones and cephalosporins in S. Enteritidis. Specifically, cells lacking the PhoP regulator, under nalidixic acid and ceftazidime stress, bore a severely compromised membrane on the aspects of integrity, fluidity, and permeability, with deficiency to withstand osmolarity stress, an increased accumulation of intracellular reactive oxygen species, and dysregulated redox homeostasis, which are unfavorable for bacterial survival. The phosphorylated PhoP elicited transcriptional alterations of resistance-associated genes, including the outer membrane porin ompF and the aconitate hydratase acnA, by directly binding to their promoters, leading to a limited influx of antibiotics and a well-maintained intracellular metabolism. Importantly, it was demonstrated that the cavity of the PhoQ sensor domain bound to and sensed quinolones/cephalosporins via the crucial surrounding residues, as their mutations abrogated the binding and PhoQ autophosphorylation. This recognition mode promoted signal transduction that activated PhoP, thereby modulating the transcription of downstream genes to accommodate cells to antibiotic stress. These findings have revealed how bacteria employ a specific TCS to sense antibiotics and combat them, suggesting PhoPQ as a potential drug target with which to surmount S. Enteritidis. American Society for Microbiology 2023-05-15 /pmc/articles/PMC10294627/ /pubmed/37184399 http://dx.doi.org/10.1128/mbio.03395-22 Text en Copyright © 2023 Hu 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
Hu, Mengjun
Zhang, Yuyan
Huang, Xiaozhen
He, Mu
Zhu, Jinyu
Zhang, Zengfeng
Cui, Yan
He, Shoukui
Shi, Xianming
PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level
title PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level
title_full PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level
title_fullStr PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level
title_full_unstemmed PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level
title_short PhoPQ Regulates Quinolone and Cephalosporin Resistance Formation in Salmonella Enteritidis at the Transcriptional Level
title_sort phopq regulates quinolone and cephalosporin resistance formation in salmonella enteritidis at the transcriptional level
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10294627/
https://www.ncbi.nlm.nih.gov/pubmed/37184399
http://dx.doi.org/10.1128/mbio.03395-22
work_keys_str_mv AT humengjun phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT zhangyuyan phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT huangxiaozhen phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT hemu phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT zhujinyu phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT zhangzengfeng phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT cuiyan phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT heshoukui phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel
AT shixianming phopqregulatesquinoloneandcephalosporinresistanceformationinsalmonellaenteritidisatthetranscriptionallevel