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Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress

The agr quorum-sensing system links Staphylococcus aureus metabolism to virulence, in part by increasing bacterial survival during exposure to lethal concentrations of H(2)O(2), a crucial host defense against S. aureus. We now report that protection by agr surprisingly extends beyond post-exponentia...

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Autores principales: Podkowik, Magdalena, Perault, Andrew I., Putzel, Gregory, Pountain, Andrew, Kim, Jisun, Dumont, Ashley, Zwack, Erin, Ulrich, Robert J., Karagounis, Theodora K., Zhou, Chunyi, Haag, Andreas F., Shenderovich, Julia, Wasserman, Gregory A., Kwon, Junbeom, Chen, John, Richardson, Anthony R., Weiser, Jeffrey N., Nowosad, Carla R., Lun, Desmond S., Parker, Dane, Pironti, Alejandro, Zhao, Xilin, Drlica, Karl, Yanai, Itai, Torres, Victor J., Shopsin, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274873/
https://www.ncbi.nlm.nih.gov/pubmed/37333372
http://dx.doi.org/10.1101/2023.06.08.544038
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author Podkowik, Magdalena
Perault, Andrew I.
Putzel, Gregory
Pountain, Andrew
Kim, Jisun
Dumont, Ashley
Zwack, Erin
Ulrich, Robert J.
Karagounis, Theodora K.
Zhou, Chunyi
Haag, Andreas F.
Shenderovich, Julia
Wasserman, Gregory A.
Kwon, Junbeom
Chen, John
Richardson, Anthony R.
Weiser, Jeffrey N.
Nowosad, Carla R.
Lun, Desmond S.
Parker, Dane
Pironti, Alejandro
Zhao, Xilin
Drlica, Karl
Yanai, Itai
Torres, Victor J.
Shopsin, Bo
author_facet Podkowik, Magdalena
Perault, Andrew I.
Putzel, Gregory
Pountain, Andrew
Kim, Jisun
Dumont, Ashley
Zwack, Erin
Ulrich, Robert J.
Karagounis, Theodora K.
Zhou, Chunyi
Haag, Andreas F.
Shenderovich, Julia
Wasserman, Gregory A.
Kwon, Junbeom
Chen, John
Richardson, Anthony R.
Weiser, Jeffrey N.
Nowosad, Carla R.
Lun, Desmond S.
Parker, Dane
Pironti, Alejandro
Zhao, Xilin
Drlica, Karl
Yanai, Itai
Torres, Victor J.
Shopsin, Bo
author_sort Podkowik, Magdalena
collection PubMed
description The agr quorum-sensing system links Staphylococcus aureus metabolism to virulence, in part by increasing bacterial survival during exposure to lethal concentrations of H(2)O(2), a crucial host defense against S. aureus. We now report that protection by agr surprisingly extends beyond post-exponential growth to the exit from stationary phase when the agr system is no longer turned on. Thus, agr can be considered a constitutive protective factor. Deletion of agr increased both respiration and aerobic fermentation but decreased ATP levels and growth, suggesting that Δagr cells assume a hyperactive metabolic state in response to reduced metabolic efficiency. As expected from increased respiratory gene expression, reactive oxygen species (ROS) accumulated more in the agr mutant than in wild-type cells, thereby explaining elevated susceptibility of Δagr strains to lethal H(2)O(2) doses. Increased survival of wild-type agr cells during H(2)O(2) exposure required sodA, which detoxifies superoxide. Additionally, pretreatment of S. aureus with respiration-reducing menadione protected Δagr cells from killing by H(2)O(2). Thus, genetic deletion and pharmacologic experiments indicate that agr helps control endogenous ROS, thereby providing resilience against exogenous ROS. The long-lived “memory” of agr-mediated protection, which is uncoupled from agr activation kinetics, increased hematogenous dissemination to certain tissues during sepsis in ROS-producing, wild-type mice but not ROS-deficient (Nox2(−/−)) mice. These results demonstrate the importance of protection that anticipates impending ROS-mediated immune attack. The ubiquity of quorum sensing suggests that it protects many bacterial species from oxidative damage.
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spelling pubmed-102748732023-06-17 Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress Podkowik, Magdalena Perault, Andrew I. Putzel, Gregory Pountain, Andrew Kim, Jisun Dumont, Ashley Zwack, Erin Ulrich, Robert J. Karagounis, Theodora K. Zhou, Chunyi Haag, Andreas F. Shenderovich, Julia Wasserman, Gregory A. Kwon, Junbeom Chen, John Richardson, Anthony R. Weiser, Jeffrey N. Nowosad, Carla R. Lun, Desmond S. Parker, Dane Pironti, Alejandro Zhao, Xilin Drlica, Karl Yanai, Itai Torres, Victor J. Shopsin, Bo bioRxiv Article The agr quorum-sensing system links Staphylococcus aureus metabolism to virulence, in part by increasing bacterial survival during exposure to lethal concentrations of H(2)O(2), a crucial host defense against S. aureus. We now report that protection by agr surprisingly extends beyond post-exponential growth to the exit from stationary phase when the agr system is no longer turned on. Thus, agr can be considered a constitutive protective factor. Deletion of agr increased both respiration and aerobic fermentation but decreased ATP levels and growth, suggesting that Δagr cells assume a hyperactive metabolic state in response to reduced metabolic efficiency. As expected from increased respiratory gene expression, reactive oxygen species (ROS) accumulated more in the agr mutant than in wild-type cells, thereby explaining elevated susceptibility of Δagr strains to lethal H(2)O(2) doses. Increased survival of wild-type agr cells during H(2)O(2) exposure required sodA, which detoxifies superoxide. Additionally, pretreatment of S. aureus with respiration-reducing menadione protected Δagr cells from killing by H(2)O(2). Thus, genetic deletion and pharmacologic experiments indicate that agr helps control endogenous ROS, thereby providing resilience against exogenous ROS. The long-lived “memory” of agr-mediated protection, which is uncoupled from agr activation kinetics, increased hematogenous dissemination to certain tissues during sepsis in ROS-producing, wild-type mice but not ROS-deficient (Nox2(−/−)) mice. These results demonstrate the importance of protection that anticipates impending ROS-mediated immune attack. The ubiquity of quorum sensing suggests that it protects many bacterial species from oxidative damage. Cold Spring Harbor Laboratory 2023-06-08 /pmc/articles/PMC10274873/ /pubmed/37333372 http://dx.doi.org/10.1101/2023.06.08.544038 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Podkowik, Magdalena
Perault, Andrew I.
Putzel, Gregory
Pountain, Andrew
Kim, Jisun
Dumont, Ashley
Zwack, Erin
Ulrich, Robert J.
Karagounis, Theodora K.
Zhou, Chunyi
Haag, Andreas F.
Shenderovich, Julia
Wasserman, Gregory A.
Kwon, Junbeom
Chen, John
Richardson, Anthony R.
Weiser, Jeffrey N.
Nowosad, Carla R.
Lun, Desmond S.
Parker, Dane
Pironti, Alejandro
Zhao, Xilin
Drlica, Karl
Yanai, Itai
Torres, Victor J.
Shopsin, Bo
Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress
title Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress
title_full Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress
title_fullStr Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress
title_full_unstemmed Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress
title_short Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress
title_sort quorum-sensing agr system of staphylococcus aureus primes gene expression for protection from lethal oxidative stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274873/
https://www.ncbi.nlm.nih.gov/pubmed/37333372
http://dx.doi.org/10.1101/2023.06.08.544038
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