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Plasmid-Mediated AmpC (pAmpC) Genotypes Among Uropathogenic Escherichia coli: A Hospital-Based Study From Western
Ismat Rehana1, Anita Pandey1, Peetam Singh1
1Microbiology, Subharti Medical College, Meerut, IND.
Abstract:
Introduction Resistance due to AmpC and extended-spectrum beta (β)-lactamases (ESBLs) in Escherichia coli is an emerging problem worldwide. AmpC enzymes are a subclass of β-lactamases that have a capacity to hydrolyze and deactivate a large range of β-lactam antibiotics, particularly cephalosporins, penicillins, and monobactams, although frequently being susceptible to carbapenems and fourth-generation cephalosporins. The prevalence of plasmid-mediated AmpC (pAmpC) genotypes in uropathogenic E. coli isolates were looked at a tertiary care teaching hospital of Western Uttar Pradesh. Materials and methods A total of 312 non-repeat clinical E. coli isolates among patients presented with urinary tract infections (UTIs) were investigated by standard microbiological methods. Isolates were screened for the presence of ampC using a cefoxitin (30 µg) disc and confirmed using an inhibitor-based assay. Using multiplex polymerase chain reaction (PCR), six AmpC genotypes, namely, CIT, DHA, EBC, ACC, FOX, and MOX, were genotypically identified. Results A total of 152 (48.72%) uropathogenic E. coli isolates tested positive on the cefoxitin screening. Out of which, AmpC production was confirmed in 118/152 (77.63%) using a phenotypic method. In particular, the pAmpC gene was found in 56/152 (36.84%) isolates. CIT was the most common gene detected in this geographical area (57.14 %). Multiple genes, i.e., CIT and FOX, were also detected in 14.29% of the isolates. Conclusion Identifying AmpC producers is important in routine microbiology laboratory as they are a nosocomial threat requiring strict adherence to infection control protocols. A confirmatory phenotypic test followed by genotypic tests will help in the correct and accurate identification of this resistance.
Insights
AmpC and extended-spectrum beta-lactamase (ESBL) resistance in Escherichia coli is a growing global concern. This study identified common AmpC genotypes in uropathogenic E. coli from Western Uttar Pradesh, highlighting the need for accurate detection methods.
Area of Science:
- Clinical Microbiology
- Molecular Biology
- Infectious Diseases
Background:
- AmpC and extended-spectrum beta-lactamases (ESBLs) confer resistance to crucial antibiotics in *Escherichia coli*.
- Plasmid-mediated AmpC (pAmpC) is a significant contributor to antimicrobial resistance, particularly in uropathogenic strains.
- Understanding the prevalence of specific AmpC genotypes is vital for effective treatment and infection control.
Purpose of the Study:
- To investigate the prevalence of plasmid-mediated AmpC (pAmpC) genotypes in uropathogenic *E. coli* isolates.
- To identify common AmpC genotypes in a tertiary care hospital in Western Uttar Pradesh.
- To evaluate the utility of phenotypic and genotypic methods for AmpC detection.
Main Methods:
- Clinical *E. coli* isolates from urinary tract infections (UTIs) were collected.
- Isolates were screened for AmpC production using cefoxitin discs and confirmed with an inhibitor-based assay.
- Multiplex polymerase chain reaction (PCR) was employed to identify six specific AmpC genotypes (CIT, DHA, EBC, ACC, FOX, MOX).
Main Results:
- Out of 312 *E. coli* isolates, 152 (48.72%) were positive for cefoxitin screening.
- Phenotypic confirmation revealed AmpC production in 118/152 (77.63%) isolates.
- The pAmpC gene was detected in 56/152 (36.84%) isolates, with CIT being the most prevalent genotype (57.14%). Multiple genes (CIT and FOX) were found in 14.29% of isolates.
Conclusions:
- Accurate identification of AmpC producers is crucial due to their role in nosocomial infections.
- The high prevalence of pAmpC, particularly the CIT genotype, in Western Uttar Pradesh warrants attention.
- Combining phenotypic and genotypic testing ensures accurate identification of AmpC resistance mechanisms.

