Journal
MICROORGANISMS
Volume 10, Issue 6, Pages -Publisher
MDPI
DOI: 10.3390/microorganisms10061084
Keywords
ExPEC; bacterial pathogenicity; eye infection; virulence genes; antibiotic resistance
Categories
Funding
- National Council for Science and Technological Development (CNPq) [311283/2020-9]
- Fundacao de Amparo a Pesquisa do Estado de Sao Paulo (FAPESP) [2017/14821-7]
- CNPq
- FAPESP [2017/21947-7]
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This study aimed to understand the pathogenic potential and virulence mechanisms of E. coli strains isolated from eye infections. The results showed significant genetic and virulence variation among ocular strains and pointed to an ocular pathogenic potential related to multiple virulence mechanisms.
While primarily Gram-positive bacteria cause bacterial eye infections, several Gram-negative species also pose eye health risks. Currently, few studies have tried to understand the pathogenic mechanisms involved in E. coli eye infections. Therefore, this study aimed to establish the pathogenic potential of E. coli strains isolated from eye infections. Twenty-two strains isolated between 2005 and 2019 from patients with keratitis or conjunctivitis were included and submitted to traditional polymerase chain reactions (PCR) to define their virulence profile, phylogeny, clonal relationship, and sequence type (ST). Phenotypic assays were employed to determine hemolytic activity, antimicrobial susceptibility, and adhesion to human primary corneal epithelial cells (PCS-700-010). The phylogenetic results indicated that groups B2 and ST131 were the most frequent. Twenty-five virulence genes were found among our strains, with ecp, sitA, fimA, and fyuA being the most prevalent. Two strains presented a hemolytic phenotype, and resistance to ciprofloxacin and ertapenem was found in six strains and one strain, respectively. Regarding adherence, all but one strains adhered in vitro to corneal cells. Our results indicate significant genetic and virulence variation among ocular strains and point to an ocular pathogenic potential related to multiple virulence mechanisms.
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