Rapid fluoroquinolone resistance detection in Pseudomonas aeruginosa using mismatch amplification mutation assay-based real-time PCR

Author:

Madden Danielle E.123ORCID,McCarthy Kate L.45,Bell Scott C.678ORCID,Olagoke Olusola312ORCID,Baird Timothy139ORCID,Neill Jane9,Ramsay Kay A.7ORCID,Kidd Timothy J.1011ORCID,Stewart Adam G.124ORCID,Subedi Shradha122ORCID,Choong Keat122ORCID,Fraser Tamieka A.31,Sarovich Derek S.231ORCID,Price Erin P.123ORCID

Affiliation:

1. Centre for Bioinnovation, University of the Sunshine Coast, Sippy Downs, Queensland, Australia

2. Infection Research Network Sunshine Coast, Birtinya, Queensland, Australia

3. Sunshine Coast Health Institute, Birtinya, Queensland, Australia

4. University of Queensland Centre for Clinical Research, Herston, Queensland, Australia

5. Infectious Diseases Unit, Royal Brisbane and Women’s Hospital, Herston, Queensland, Australia

6. Adult Cystic Fibrosis Centre, The Prince Charles Hospital, Chermside, Queensland, Australia

7. Child Health Research Centre, The University of Queensland, South Brisbane, Queensland, Australia

8. Translational Research Institute, Woolloongabba, Queensland, Australia

9. Respiratory Department, Sunshine Coast University Hospital, Birtinya, Queensland, Australia

10. Central Microbiology, Pathology Queensland, Royal Brisbane and Women’s Hospital, Herston, Queensland, Australia

11. School of Chemistry and Molecular Biosciences, University of Queensland, St Lucia, Queensland, Australia

12. Infectious Diseases Unit, Sunshine Coast University Hospital, Birtinya, Queensland, Australia

Abstract

Background. Antimicrobial resistance (AMR) is an ever-increasing global health concern. One crucial facet in tackling the AMR epidemic is earlier and more accurate AMR diagnosis, particularly in the dangerous and highly multi-drug-resistant ESKAPE pathogen, Pseudomonas aeruginosa . Objectives. We aimed to develop two SYBR Green-based mismatch amplification mutation assays (SYBR-MAMAs) targeting GyrA T83I (gyrA248) and GyrA D87N, D87Y and D87H (gyrA259). Together, these variants cause the majority of fluoroquinolone (FQ) AMR in P. aeruginosa . Methods. Following assay validation, the gyrA248 and gyrA259 SYBR-MAMAs were tested on 84 Australian clinical P. aeruginosa isolates, 46 of which demonstrated intermediate/full ciprofloxacin resistance according to antimicrobial susceptibility testing. Results. Our two SYBR-MAMAs correctly predicted an AMR phenotype in the majority (83%) of isolates with intermediate/full FQ resistance. All FQ-sensitive strains were predicted to have a sensitive phenotype. Whole-genome sequencing confirmed 100 % concordance with SYBR-MAMA genotypes. Conclusions. Our GyrA SYBR-MAMAs provide a rapid and cost-effective method for same-day identification of FQ AMR in P. aeruginosa . An additional SYBR-MAMA targeting the GyrB S466Y/S466F variants would increase FQ AMR prediction to 91 %. Clinical implementation of our assays will permit more timely treatment alterations in cases where decreased FQ susceptibility is identified, leading to improved patient outcomes and antimicrobial stewardship.

Funder

Advance Queensland

Wishlist

University of the Sunshine Coast

Publisher

Microbiology Society

Subject

Microbiology (medical),General Medicine,Microbiology

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