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Establishment and Characterization of UTI and CAUTI in a Mouse Model
Published on: June 23, 2015
Cyclomodulins in urosepsis strains of Escherichia coli
Damien Dubois1, Julien Delmas, Anne Cady
1CHU Clermont-Ferrand, Centre de Biologie, Laboratoire de Bactériologie, Clermont-Ferrand F-63003, France.
Abstract:
Determinants of urosepsis in Escherichia coli remain incompletely defined. Cyclomodulins (CMs) are a growing functional family of toxins that hijack the eukaryotic cell cycle. Four cyclomodulin types are actually known in E. coli: cytotoxic necrotizing factors (CNFs), cycle-inhibiting factor (Cif), cytolethal distending toxins (CDTs), and the pks-encoded toxin. In the present study, the distribution of CM-encoding genes and the functionality of these toxins were investigated in 197 E. coli strains isolated from patients with community-acquired urosepsis (n = 146) and from uninfected subjects (n = 51). This distribution was analyzed in relation to the phylogenetic background, clinical origin, and antibiotic resistance of the strains. It emerged from this study that strains harboring the pks island and the cnf1 gene (i) were strongly associated with the B2 phylogroup (P, <0.001), (ii) frequently harbored both toxin-encoded genes in phylogroup B2 (33%), and (iii) were predictive of a urosepsis origin (P, <0.001 to 0.005). However, the prevalences of the pks island among phylogroup B2 strains, in contrast to those of the cnf1 gene, were not significantly different between fecal and urosepsis groups, suggesting that the pks island is more important for the colonization process and the cnf1 gene for virulence. pks- or cnf1-harboring strains were significantly associated with susceptibility to antibiotics (amoxicillin, cotrimoxazole, and quinolones [P, <0.001 to 0.043]). Otherwise, only 6% and 1% of all strains harbored the cdtB and cif genes, respectively, with no particular distribution by phylogenetic background, antimicrobial susceptibility, or clinical origin.
Insights
Certain Escherichia coli toxins, specifically the pks island and cnf1 gene, are linked to urosepsis development and antibiotic susceptibility. The pks island aids colonization, while cnf1 promotes virulence in E. coli infections.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Urosepsis pathogenesis by Escherichia coli is not fully understood.
- Cyclomodulins (CMs) are E. coli toxins affecting the eukaryotic cell cycle.
- Known CMs include cytotoxic necrotizing factors (CNFs), cycle-inhibiting factor (Cif), cytolethal distending toxins (CDTs), and pks-encoded toxins.
Purpose of the Study:
- To investigate the distribution and functionality of CM-encoding genes in E. coli.
- To correlate CM gene presence with phylogenetic background, clinical origin, and antibiotic resistance.
- To determine the specific roles of the pks island and cnf1 gene in urosepsis.
Main Methods:
- Analysis of 197 E. coli strains from urosepsis patients and healthy individuals.
- Genotyping for pks island, cnf1, cdtB, and cif genes.
- Phylogenetic analysis and assessment of antibiotic resistance patterns.
Main Results:
- Strains with the pks island and cnf1 gene were strongly associated with the B2 phylogroup and urosepsis.
- The pks island was linked to colonization, while cnf1 was linked to virulence.
- Strains harboring pks or cnf1 showed increased susceptibility to certain antibiotics.
Conclusions:
- The pks island and cnf1 gene are key determinants in E. coli urosepsis.
- These toxins influence bacterial colonization, virulence, and antibiotic susceptibility.
- Understanding CM distribution aids in predicting and managing urosepsis.
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