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Updated: Jan 31, 2026

Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Population Structure, Antibiotic Resistance, and Uropathogenicity of Klebsiella variicola
Robert F Potter1, William Lainhart2, Joy Twentyman3
1The Edison Family Center for Genome Sciences and Systems Biology, Washington University in St. Louis School of Medicine, St. Louis, Missouri, USA.
Abstract:
Klebsiella variicola is a member of the Klebsiella genus and often misidentified as Klebsiella pneumoniae or Klebsiella quasipneumoniae The importance of K. pneumoniae human infections has been known; however, a dearth of relative knowledge exists for K. variicola Despite its growing clinical importance, comprehensive analyses of K. variicola population structure and mechanistic investigations of virulence factors and antibiotic resistance genes have not yet been performed. To address this, we utilized in silico, in vitro, and in vivo methods to study a cohort of K. variicola isolates and genomes. We found that the K. variicola population structure has two distant lineages composed of two and 143 genomes, respectively. Ten of 145 K. variicola genomes harbored carbapenem resistance genes, and 6/145 contained complete virulence operons. While the β-lactam blaLEN and quinolone oqxAB antibiotic resistance genes were generally conserved within our institutional cohort, unexpectedly 11 isolates were nonresistant to the β-lactam ampicillin and only one isolate was nonsusceptible to the quinolone ciprofloxacin. K. variicola isolates have variation in ability to cause urinary tract infections in a newly developed murine model, but importantly a strain had statistically significant higher bladder CFU than the model uropathogenic K. pneumoniae strain TOP52. Type 1 pilus and genomic identification of altered fim operon structure were associated with differences in bladder CFU for the tested strains. Nine newly reported types of pilus genes were discovered in the K. variicola pan-genome, including the first identified P-pilus in Klebsiella spp.IMPORTANCE Infections caused by antibiotic-resistant bacterial pathogens are a growing public health threat. Understanding of pathogen relatedness and biology is imperative for tracking outbreaks and developing therapeutics. Here, we detail the phylogenetic structure of 145 K. variicola genomes from different continents. Our results have important clinical ramifications as high-risk antibiotic resistance genes are present in K. variicola genomes from a variety of geographic locations and as we demonstrate that K. variicola clinical isolates can establish higher bladder titers than K. pneumoniae Differential presence of these pilus genes inK. variicola isolates may indicate adaption for specific environmental niches. Therefore, due to the potential of multidrug resistance and pathogenic efficacy, identification of K. variicola and K. pneumoniae to a species level should be performed to optimally improve patient outcomes during infection. This work provides a foundation for our improved understanding of K. variicola biology and pathogenesis.
Insights
Klebsiella variicola infections are a growing concern, with this pathogen exhibiting antibiotic resistance and causing urinary tract infections potentially more severe than Klebsiella pneumoniae. Accurate species identification is crucial for patient outcomes.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Klebsiella variicola is often misidentified and less understood than Klebsiella pneumoniae.
- Knowledge gaps exist regarding K. variicola's population structure, virulence, and antibiotic resistance.
- Urinary tract infections caused by antibiotic-resistant bacteria are a significant public health threat.
Purpose of the Study:
- To comprehensively analyze the population structure, virulence factors, and antibiotic resistance of Klebsiella variicola.
- To investigate the pathogenic potential of K. variicola in a murine urinary tract infection model.
- To identify novel pilus genes and understand their role in K. variicola pathogenesis.
Main Methods:
- In silico, in vitro, and in vivo analyses of 145 K. variicola isolates and genomes.
- Phylogenetic analysis to determine population structure.
- Murine model of urinary tract infection to assess virulence.
- Genomic analysis of virulence operons and antibiotic resistance genes.
Main Results:
- K. variicola population structure revealed two distinct lineages.
- Carbapenem resistance genes were found in 10/145 genomes; 6/145 had complete virulence operons.
- K. variicola isolates showed variable UTI potential, with one strain achieving higher bladder CFU than K. pneumoniae.
- Novel pilus genes, including the first P-pilus in Klebsiella, were discovered.
Conclusions:
- K. variicola possesses high-risk antibiotic resistance genes and can cause severe UTIs, sometimes exceeding K. pneumoniae.
- Accurate species-level identification of K. variicola and K. pneumoniae is essential for effective patient management.
- Differential pilus gene presence suggests niche adaptation in K. variicola.
- This study provides a foundation for understanding K. variicola pathogenesis and developing targeted therapies.
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Development of Antibiotic Resistance
Antibiotic Selection
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Population Growth
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