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Analysis of the Oxidative Stress Regulon Identifies soxS as a Genetic Target for Resistance Reversal in Multidrug-Resistant Klebsiella pneumoniae

Authors :
Sathesh K. Sivasankaran
Sandra Sakalauskaitė
Séamus Fanning
Shabarinath Srikumar
Athmanya K. Eshwar
Yu Cao
Stéphanie Devineau
Angelika Lehner
Scott V. Nguyen
Rimantas Daugelavičius
Katherine Dever
Roger Stephan
João Anes
UCD School of public health
University College Dublin [Dublin] (UCD)
Institute for Food Safety and Hygiene
Universität Zürich [Zürich] = University of Zurich (UZH)
Iowa State University (ISU)
Vytautas Magnus University - Vytauto Didziojo Universitetas (VDU)
Unité de Biologie Fonctionnelle et Adaptative (BFA (UMR_8251 / U1133))
Institut National de la Santé et de la Recherche Médicale (INSERM)-Centre National de la Recherche Scientifique (CNRS)-Université Paris Cité (UPCité)
ORANGE, Colette
University of Zurich
Brown, Eric
Bush, Karen
Fanning, Séamus
Srikumar, Shabarinath
Source :
Anes, J, Dever, K, Eshwar, A, Nguyen, S, Cao, Y, Sivasankaran, S K, Sakalauskaitė, S, Lehner, A, Devineau, S, Daugelavičius, R, Stephan, R, Fanning, S & Srikumar, S 2021, ' Analysis of the Oxidative Stress Regulon Identifies soxS as a Genetic Target for Resistance Reversal in Multidrug-Resistant Klebsiella pneumoniae ', mBio, vol. 12, no. 3, e00867-21 . https://doi.org/10.1128/mBio.00867-21, mBio, Vol 12, Iss 3 (2021), mBio, mBio, 2021, 12 (3), ⟨10.1128/mBio.00867-21⟩
Publication Year :
2021

Abstract

International audience; In bacteria, the defense system deployed to counter oxidative stress is orchestrated by three transcriptional factors, SoxS, SoxR, and OxyR. Although the regulon that these factors control is known in many bacteria, similar data are not available for Klebsiella pneumoniae. To address this data gap, oxidative stress was artificially induced in K. pneumoniae MGH78578 using paraquat and the corresponding oxidative stress regulon recorded using transcriptome sequencing (RNA-seq). The soxS gene was significantly induced during oxidative stress, and a knockout mutant was constructed to explore its functionality. The wild type and mutant were grown in the presence of paraquat and subjected to RNA-seq to elucidate the soxS regulon in K. pneumoniae MGH78578. Genes that are commonly regulated both in the oxidative stress and soxS regulons were identified and denoted as the oxidative SoxS regulon; these included a group of genes specifically regulated by SoxS. Efflux pump-encoding genes and global regulators were identified as part of this regulon. Consequently, the isogenic soxS mutant was found to exhibit a reduction in the minimum bactericidal concentration against tetracycline compared to that of the wild type. Impaired efflux activity, allowing tetracycline to be accumulated in the cytoplasm to bactericidal levels, was further evaluated using a tetraphenylphosphonium (TPP1) accumulation assay. The soxS mutant was also susceptible to tetracycline in vivo in a zebrafish embryo model. We conclude that the soxS gene could be considered a genetic target against which an inhibitor could be developed and used in combinatorial therapy to combat infections associated with multidrug-resistant K. pneumoniae. IMPORTANCE Antimicrobial resistance is a global health challenge. Few new antibiotics have been developed for use over the years, and preserving the efficacy of existing compounds is an important step to protect public health. This paper describes a study that examines the effects of exogenously induced oxidative stress on K. pneumoniae and uncovers a target that could be useful to harness as a strategy to mitigate resistance.

Details

Language :
English
ISSN :
21612129 and 21507511
Database :
OpenAIRE
Journal :
Anes, J, Dever, K, Eshwar, A, Nguyen, S, Cao, Y, Sivasankaran, S K, Sakalauskaitė, S, Lehner, A, Devineau, S, Daugelavičius, R, Stephan, R, Fanning, S & Srikumar, S 2021, ' Analysis of the Oxidative Stress Regulon Identifies soxS as a Genetic Target for Resistance Reversal in Multidrug-Resistant Klebsiella pneumoniae ', mBio, vol. 12, no. 3, e00867-21 . https://doi.org/10.1128/mBio.00867-21, mBio, Vol 12, Iss 3 (2021), mBio, mBio, 2021, 12 (3), ⟨10.1128/mBio.00867-21⟩
Accession number :
edsair.doi.dedup.....112c845cd312e279fde20341146a9942
Full Text :
https://doi.org/10.1128/mBio.00867-21