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Updated: Nov 28, 2025

Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Antimicrobial resistance of Escherichia coli, isolated from children's intestinal microbiota
1Saint-Petersburg Pasteur Institute.
Insights
Childhood gut bacteria show significant antibiotic resistance, with over a third of E. coli strains resistant to multiple drugs. Bacteriophage therapy offers a promising alternative for combating antibiotic-resistant E. coli.
Area of Science:
- Microbiology
- Genetics
- Public Health
Background:
- Antibiotic resistance predates clinical antimicrobial use, with non-pathogenic bacteria also exhibiting resistance.
- The intestinal microbiota serves as a reservoir for antibiotic-resistant bacteria, including E. coli.
Purpose of the Study:
- To investigate the prevalence of antibiotic resistance in E. coli strains isolated from children's intestinal microbiota.
- To determine the susceptibility of these E. coli strains to commercial bacteriophages.
- To identify the genetic basis of beta-lactam resistance.
Main Methods:
- Disk diffusion method for antibiotic susceptibility testing against 15 antibiotics.
- Susceptibility testing against 6 commercial bacteriophages.
- Multiplex PCR to detect beta-lactamase genes (TEM, SHV, OXA, CTX-M).
Main Results:
- 39.3% of E. coli isolates showed resistance to one or more antibiotic classes; 16.6% were multidrug-resistant.
- Resistance to specific classes included aminopenicillins (29.5%), extended-spectrum cephalosporins (11.2%), fluoroquinolones (13.3%), and tetracycline (20.0%).
- 43.5% of multidrug-resistant E. coli were susceptible to at least one commercial bacteriophage.
Conclusions:
- The intestinal microbiota of children is a significant reservoir for antibiotic-resistant E. coli, including multidrug-resistant strains.
- Bacteriophage therapy presents a viable alternative strategy for eradicating antibiotic-resistant E. coli infections.
- Understanding resistance mechanisms, like beta-lactamase production, is crucial for developing effective treatments.
Abstract:
Recent studies have shown that bacterial resistance existed long before antimicrobials were used in medicine, and not only pathogens are resistant to antibiotics. 511 strains of E. coli isolated from the intestinal microbiota of children aged 1 month to 17 years living in St. Petersburg were studied: the susceptibility to 15 antibiotics was determined by the disk diffusion method, as well as the susceptibility to 6 commercial bacteriophages produced by «Microgen» (Russia). The b-lactamase genes of molecular families TEM, SHV, OXA, and CTX-M were detected by multiplex PCR. 39,3% E. coli isolates were resistant to one or more antimicrobial classes. The proportion of multidrug resistant isolates (resistant to 3 or more classes) was 16,6%. Multidrug resistance to clinically significant antimicrobial classes (extended-spectrum cephalosporins (ESC) + fluoroquinolones + aminoglycosides) was detected in 0,8% isolates. Resistance to aminopenicillins was detected in 29,5%, ESC - 11,2%, fluoroquinolones - 13,3%, tetracycline - 20,0%, chloramphenicol - 9,8%, aminoglycosides - 2,5% isolates. b-lactam resistance was due to the beta-lactamase production: to ampicillin - the molecular family TEM (81,9%), ESC - the CTX-M molecular family (87,7%) CTX-M1 - (66%) and CTX-M9 groups (34%). 43,5% multidrug resistant E. coli isolates were susceptible to at least one of the six commercial bacteriophages produced by «Microgen». The study showed that the intestinal microbiota of children is an important reservoir of E. coli resistant (including multidrug resistance) to various classes of antibiotics, and bacteriophage therapy is an alternative method for eradication of antibiotic-resistant E. coli.
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