A qnr-plasmid allows aminoglycosides to induce SOS in Escherichia coli

Author:

Babosan Anamaria1,Skurnik David2,Muggeo Anaëlle3,Pier Gerald B4ORCID,Baharoglu Zeynep5ORCID,Jové Thomas6,Ploy Marie-Cécile6,Griveau Sophie7,Bedioui Fethi7,Vergnolle Sébastien8,Moussalih Sophie1,de Champs Christophe3,Mazel Didier5ORCID,Guillard Thomas3ORCID

Affiliation:

1. Inserm UMR-S 1250 P3Cell, SFR CAP-Santé, Université de Reims-Champagne-Ardenne

2. Assistance Publique-Hôpitaux de Paris, Department of Clinical Microbiology, Necker-Enfants Malades University Hospital, Université de Paris, 75015 Paris, France. INSERM U1151-Equipe 1, Institut Necker-Enfants Malades, Université de Paris, 75015 Paris, France. Division of Infectious Diseases, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA 02115, USA.

3. Inserm UMR-S 1250 P3Cell, SFR CAP-Santé, Université de Reims-Champagne-Ardenne, Reims, France. Laboratoire de Bactériologie-Virologie-Hygiène Hospitalière-Parasitologie- Mycologie, CHU Reims, Hôpital Robert Debré

4. Division of Infectious Diseases, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School

5. Institut Pasteur, Unité Plasticité du Génome Bactérien, CNRS UMR3525

6. Université de Limoges, Inserm, CHU Limoges, RESINFIT, UMR 1092

7. Chimie ParisTech, PSL Research University, CNRS, Institute of Chemistry for Life and Health Sciences

8. Laboratoire d’Hématologie, CH de Troyes

Abstract

The plasmid-mediated quinolone resistance (PMQR) genes have been shown to promote high-level bacterial resistance to fluoroquinolone antibiotics, potentially leading to clinical treatment failures. In Escherichia coli, sub-minimum inhibitory concentrations (sub-MICs) of the widely used fluoroquinolones are known to induce the SOS response. Interestingly, the expression of several PMQR qnr genes is controlled by the SOS master regulator, LexA. During the characterization of a small qnrD-plasmid carried in E. coli, we observed that the aminoglycosides become able to induce the SOS response in this species, thus leading to the elevated transcription of qnrD. Our findings show that the induction of the SOS response is due to nitric oxide (NO) accumulation in the presence of sub-MIC of aminoglycosides. We demonstrated that the NO accumulation is driven by two plasmid genes, ORF3 and ORF4, whose products act at two levels. ORF3 encodes a putative flavin adenine dinucleotide (FAD)-binding oxidoreductase which helps NO synthesis, while ORF4 codes for a putative fumarate and nitrate reductase (FNR)-type transcription factor, related to an O2-responsive regulator of hmp expression, able to repress the Hmp-mediated NO detoxification pathway of E. coli. Thus, this discovery, that other major classes of antibiotics may induce the SOS response could have worthwhile implications for antibiotic stewardship efforts in preventing the emergence of resistance.

Funder

Université de Reims Champagne-Ardenne

Conseil Régional de Champagne-Ardenne

Association pour le Developpement de la Microbiologie et de l'Immunologie Rémoises

International Union of Biochemistry and Molecular Biology

Agence Nationale de la Recherche

Centre National de la Recherche Scientifique

Institut Pasteur

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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