Expression of AraC/XylS stress response regulators in two distinct carbapenem-resistant Enterobacter cloacae ST89 biotypes

Author:

Majewski Piotr1ORCID,Gutowska Anna1,Sacha Pawel1,Schneiders Thamarai2,Talalaj Mariola3,Majewska Paulina4,Zebrowska Agnieszka4,Ojdana Dominika1,Wieczorek Piotr1,Hauschild Tomasz5,Kowalczuk Oksana6,Niklinski Jacek6,Radziwon Piotr47,Tryniszewska Elzbieta1

Affiliation:

1. Department of Microbiological Diagnostics and Infectious Immunology, Medical University of Bialystok, Bialystok, Poland

2. Infection Medicine, University of Edinburgh, Edinburgh, UK

3. Department of Anaesthesiology and Intensive Care with Postoperative Unit, University Children’s Clinical Hospital, Bialystok, Poland

4. Regional Centre for Transfusion Medicine, Bialystok, Poland

5. Department of Microbiology, Institute of Biology, University of Bialystok, Bialystok, Poland

6. Department of Clinical Molecular Biology, Medical University of Bialystok, Bialystok, Poland

7. Department of Hematology, Medical University of Bialystok, Bialystok, Poland

Abstract

Abstract Background The growing incidence of MDR Gram-negative bacteria is a rapidly emerging challenge in modern medicine. Objectives We sought to establish the role of intrinsic drug-resistance regulators in combination with specific genetic mutations in 11 Enterobacter cloacae isolates obtained from a single patient within a 7 week period. Methods The molecular characterization of eight carbapenem-resistant and three carbapenem-susceptible E. cloacae ST89 isolates included expression-level analysis and WGS. Quantitative PCR included: (i) chromosomal cephalosporinase gene (ampC); (ii) membrane permeability factor genes, e.g. ompF, ompC, acrA, acrB and tolC; and (iii) intrinsic regulatory genes, e.g. ramA, ampR, rob, marA and soxS, which confer reductions in antibiotic susceptibility. Results In this study we describe the influence of the alterations in membrane permeability (ompF and ompC levels), intrinsic regulatory genes (ramA, marA, soxS) and intrinsic chromosomal cephalosporinase AmpC on reductions in carbapenem susceptibility of E. cloacae clinical isolates. Interestingly, only the first isolate possessed the acquired VIM-4 carbapenemase, which has been lost in subsequent isolates. The remaining XDR E. cloacae ST89 isolates presented complex carbapenem-resistance pathways, which included perturbations in permeability of bacterial membranes mediated by overexpression of ramA, encoding an AraC/XylS global regulator. Moreover, susceptible isolates differed significantly from other isolates in terms of marA down-regulation and soxS up-regulation. Conclusions Molecular mechanisms of resistance among carbapenem-resistant E. cloacae included production of acquired VIM-4 carbapenemase, significant alterations in membrane permeability due to increased expression of ramA, encoding an AraC/XylS global regulator, and the overproduction of chromosomal AmpC cephalosporinase.

Funder

Medical University of Bialystok

Publisher

Oxford University Press (OUP)

Subject

Infectious Diseases,Pharmacology (medical),Pharmacology,Microbiology (medical)

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