Phenotypic and Genotypic Characterization of Acinetobacter spp. Panel Strains: A Cornerstone to Facilitate
Roshan D'Souza1,2, Naina A Pinto1,3, Nguyen Le Phuong1,3
1Department of Laboratory Medicine, Research Institute of Bacterial Resistance, Yonsei University College of Medicine, Seoul, South Korea.
Abstract:
Acinetobacter spp. have emerged as significant pathogens causing nosocomial infections. Treatment of these pathogens has become a major challenge to clinicians worldwide, due to their increasing tendency to antibiotic resistance. To address this, much revenue and technology are currently being dedicated toward developing novel drugs and antibiotic combinations to combat antimicrobial resistance. To address this issue, we have constructed a panel of Acinetobacter spp. strains expressing different antimicrobial resistance determinants such as narrow spectrum β-lactamases, extended-spectrum β-lactamases, OXA-type-carbapenemase, metallo-beta-lactamase, and over-expressed AmpC β-lactamase. Bacterial strains exhibiting different resistance phenotypes were collected between 2008 and 2013 from Severance Hospital, Seoul. Antimicrobial susceptibility was determined according to the CLSI guidelines using agar dilution method. Selected strains were sequenced using Ion Torrent PGM system, annotated using RAST server and analyzed using Geneious pro 8.0. Genotypic determinants, such as acquired resistance genes, changes in the expression of efflux pumps, mutations, and porin alternations, contributing to the relevant expressed phenotype were characterized. Isolates expressing ESBL phenotype consisted of bla PER-1 gene, the overproduction of intrinsic AmpC beta-lactamase associated with ISAba1 insertion, and carbapenem resistance associated with production of carbapenem-hydrolyzing Ambler class D β-lactamases, such as OXA-23, OXA-66, OXA-120, OXA-500, and metallo-β-lactamase, SIM-1. We have analyzed the relative expression of Ade efflux systems, and determined the sequences of their regulators to correlate with phenotypic resistance. Quinolone resistance-determining regions were analyzed to understand fluoroquinolone-resistance. Virulence factors responsible for pathogenesis were also identified. Due to several mutations, acquisition of multiple resistance genes and transposon insertion, phenotypic resistance decision scheme for for evaluating the resistance proved inaccurate, which highlights the urgent need for modification to this scheme. This complete illustration of mechanism contributing to specific resistance phenotypes can be used as a target for novel drug development. It can also be used as a reference strain in the clinical laboratory and for the evaluation of antibiotic efficacy for specific resistance mechanisms.
Insights
Acinetobacter strains exhibit significant antibiotic resistance due to multiple genetic factors. Understanding these resistance mechanisms is crucial for developing new treatments against these nosocomial pathogens.
Area of Science:
- Microbiology
- Infectious Diseases
- Genetics
Background:
- Acinetobacter spp. are major causes of hospital-acquired infections.
- Increasing antibiotic resistance in Acinetobacter poses a significant clinical challenge.
- Novel therapeutic strategies are needed to combat antimicrobial resistance.
Purpose of the Study:
- To characterize the genetic determinants of antimicrobial resistance in Acinetobacter spp.
- To correlate genotypic findings with observed resistance phenotypes.
- To identify potential targets for new antimicrobial drug development.
Main Methods:
- Collected and phenotypically characterized Acinetobacter strains based on antimicrobial susceptibility testing (CLSI guidelines, agar dilution).
- Sequenced selected strains (Ion Torrent PGM), annotated genomes (RAST server), and analyzed genetic data (Geneious pro 8.0).
- Investigated genotypic resistance mechanisms including beta-lactamase genes (blaPER-1, OXA, SIM-1), AmpC overproduction, efflux pumps (Ade systems), porin alterations, and quinolone resistance-determining regions.
Main Results:
- Identified diverse resistance determinants including extended-spectrum beta-lactamases (ESBLs), carbapenemases (OXA-type, metallo-beta-lactamase SIM-1), and overexpressed AmpC beta-lactamase.
- Correlated specific genes (e.g., blaPER-1, OXA-23, OXA-66, OXA-120, OXA-500, SIM-1) with observed resistance phenotypes.
- Found that complex genetic factors (mutations, multiple resistance genes, transposon insertions) challenge current phenotypic resistance evaluation schemes.
Conclusions:
- Comprehensive genotypic and phenotypic characterization of Acinetobacter resistance mechanisms is essential.
- The identified resistance mechanisms provide targets for novel antimicrobial drug development.
- These characterized strains can serve as valuable references for clinical laboratories and antibiotic efficacy testing.
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