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Published on: March 3, 2023
High prevalence of multidrug resistance in bacterial uropathogens from Kathmandu, Nepal
Pankaj Baral1, Sanjiv Neupane, Bishnu Prasad Marasini
1Central Department of Microbiology, Tribhuvan University, Kirtipur, Kathmandu, Nepal. pankaj.baral@gmail.com.
Background:
Urinary Tract Infection (UTI) is one of the most common infectious diseases and people of all age-groups and geographical locations are affected. The impact of disease is even worst in low-resource developing countries due to unaware of the UTIs caused by multidrug-resistant (MDR) pathogens and the possibility of transfer of MDR traits between them. The present study aimed to determine the prevalence of MDR bacterial isolates from UTI patients, the antibiotic resistance pattern and the conjugational transfer of multidrug resistance phenotypes in Escherichia coli (E. coli).
Results:
Two hundred and nineteen bacterial isolates were recovered from 710 urine samples at Kathmandu Model hospital during the study period. All samples and isolates were investigated by standard laboratory procedures. Among the significant bacterial growth (30.8%, 219 isolates), 41.1% isolates were MDR. The most prevailing organism, E. coli (81.3%, 178 isolates) was 38.2% MDR, whereas second most common organism, Citrobacter spp. (5%, 11 isolates) was found 72.7% MDR. Extended-spectrum β-lactamase (ESBL) production was detected in 55.2% of a subset of MDR E. coli isolates. Among the 29 MDR E. coli isolates, plasmids of size ranging 2-51 kb were obtained with different 15 profiles. The most common plasmid of size 32 kb was detected in all of the plasmid-harbored E. coli strains. The majority of E. coli isolates investigated for the multidrug resistance transfer were able to transfer plasmid-mediated MDR phenotypes along with ESBL pattern with a frequency ranging from 0.3 × 10-7 to 1.5 × 10-7 to an E. coli HB101 recipient strain by conjugation. Most of the donor and recipient strain showed high levels of minimum inhibitory concentration (MIC) values for commonly-used antibiotics.
Conclusions:
The high prevalence of multidrug resistance in bacterial uropathogens was observed. Particularly, resistance patterns were alarmingly higher for amoxycillin, co-trimoxazole, flouroquinolones and third-generation cephalosporins, which necessitate the re-evaluation of first and second line therapies for UTI. In addition, conjugational co-transfer of MDR phenotypes with ESBL-positive phenotypes was observed in MDR E. coli.
Insights
Multidrug-resistant (MDR) bacterial uropathogens are prevalent in urinary tract infections (UTIs), with high resistance to common antibiotics. MDR Escherichia coli strains can transfer resistance, including extended-spectrum β-lactamase (ESBL) production, to other bacteria.
Area of Science:
- Microbiology
- Infectious Diseases
- Genetics
Background:
- Urinary Tract Infections (UTIs) are common globally, posing greater challenges in low-resource settings due to multidrug-resistant (MDR) pathogens.
- Understanding the prevalence and resistance patterns of MDR bacteria in UTIs is crucial for effective treatment.
Purpose of the Study:
- To determine the prevalence of MDR bacterial isolates from UTI patients.
- To analyze antibiotic resistance patterns and investigate the conjugational transfer of MDR phenotypes in Escherichia coli (E. coli).
Main Methods:
- Standard laboratory procedures were used to analyze 710 urine samples.
- Bacterial isolates were identified, and their antimicrobial susceptibility was tested.
- Conjugational transfer experiments were performed to assess MDR phenotype transmission in E. coli.
Main Results:
- Out of 219 bacterial isolates, 41.1% were MDR. E. coli (81.3%) and Citrobacter spp. (5%) were the most common uropathogens.
- Extended-spectrum β-lactamase (ESBL) production was found in 55.2% of MDR E. coli.
- MDR E. coli strains transferred plasmid-mediated resistance, including ESBL production, to recipient strains via conjugation.
Conclusions:
- A high prevalence of MDR bacterial uropathogens was observed, with significant resistance to amoxycillin, co-trimoxazole, fluoroquinolones, and third-generation cephalosporins.
- These findings necessitate a re-evaluation of first and second-line UTI therapies.
- Conjugational co-transfer of MDR and ESBL-positive phenotypes in E. coli highlights the potential for rapid resistance spread.
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