Related Experiment Video
Updated: Aug 19, 2026

Replication of the Ordered, Nonredundant Library of Pseudomonas aeruginosa strain PA14 Transposon Insertion Mutants
Published on: May 4, 2018
Clinical Features, Genome Epidemiology, and Antimicrobial Resistance Profiles of Aeromonas spp. Causing Human
Aki Sakurai1,2, Masahiro Suzuki2, Daisuke Ohkushi3
1Department of Infectious Diseases, Fujita Health University School of Medicine, Aichi, Japan.
Background:
The genus Aeromonas is increasingly implicated in human infections, but knowledge of its clinical characteristics and antimicrobial resistance profiles has been limited owing to its complex taxonomy.
Methods:
We conducted a multicenter prospective cohort study of patients with Aeromonas infections at hospitals across Japan. Patients were eligible for inclusion if they had an Aeromonas spp. strain in a clinical culture and were considered infected at the culture site. Clinical data were collected, and isolates underwent susceptibility testing and whole-genome sequencing.
Results:
A total of 144 patients were included. Hepatobiliary infection accounted for a majority of infections (73% [105 of 144]), which mostly occurred in elderly patients with comorbid conditions, including hepatobiliary complications. The all-cause 30-day mortality rate was 10.0% (95% confidence interval, 4.9%-14.8%). By whole-genome sequencing, 141 strains (98%) belonged to 4 Aeromonas species-A caviae, A hydrophila, A veronii, and A dhakensis-with significant intraspecies diversity. A caviae was predominant in all infection sites except skin and soft tissue, for which A hydrophila was the prevailing species. The genes encoding chromosomally mediated class B, C, and D β-lactamases were harbored by 92%-100% of the isolates in a species-specific manner, but they often lacked association with resistance phenotypes. The activity of cefepime was reliable. All isolates of A hydrophila and A dhakensis carried an mcr-3-like colistin resistance gene and showed reduced susceptibility to colistin.
Conclusions:
Hepatobiliary tract was the most common infection site of Aeromonas spp., with A caviae being the dominant causative species. The resistance genotype and phenotype were often incongruent for β-lactam agents.
Insights
Aeromonas infections commonly affect the hepatobiliary tract, primarily caused by Aeromonas caviae. Antimicrobial resistance profiles show complex genotype-phenotype correlations for beta-lactams, with cefepime remaining reliable.
Area of Science:
- Clinical Microbiology
- Infectious Diseases
- Genomics
Background:
- The genus Aeromonas is increasingly recognized for causing human infections.
- Limited understanding of Aeromonas clinical characteristics and antimicrobial resistance due to complex taxonomy.
Purpose of the Study:
- To investigate the clinical features and antimicrobial resistance profiles of Aeromonas infections in Japan.
- To characterize Aeromonas species distribution and genetic resistance determinants.
Main Methods:
- Multicenter prospective cohort study of 144 patients with Aeromonas infections.
- Clinical data collection, antimicrobial susceptibility testing, and whole-genome sequencing of isolates.
Main Results:
- Hepatobiliary infections were most common (73%), predominantly in elderly patients with comorbidities.
- Aeromonas caviae was the dominant species overall, while Aeromonas hydrophila predominated in skin/soft tissue infections.
- High prevalence of beta-lactamase genes but incongruent resistance phenotypes; cefepime showed reliable activity.
- All Aeromonas hydrophila and Aeromonas dhakensis isolates harbored mcr-3-like colistin resistance genes, exhibiting reduced colistin susceptibility.
Conclusions:
- The hepatobiliary tract is the most frequent site for Aeromonas spp. infections, with Aeromonas caviae as the primary pathogen.
- Discordance between genotypic and phenotypic resistance was observed for beta-lactam agents.
- Cefepime remains a reliable treatment option, while colistin susceptibility is compromised in certain Aeromonas species.
More Related Videos
06:15Evaluating Virulence and Pathogenesis of Aeromonas Infection in a Caenorhabditis elegans Model
Published on: December 20, 2018
08:58Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Related Concept Videos
Antibiotic Selection
Atypical Pneumonia
Mechanism of Antibiotic Resistance in MRSA
Clinical Significance of Antibiotic Resistance