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Multicenter Surveillance of Antimicrobial Resistance among Gram-Negative Bacteria Isolated from Bloodstream
Eric S Donkor1, Khitam Muhsen2,3, Sherry A M Johnson4
1Department of Medical Microbiology, University of Ghana Medical School, Accra 00233, Ghana.
Background:
Antimicrobial resistance (AMR) in Gram-negative bacteria-causing bloodstream infections (BSIs), such as Klebsiella pneumoniae and non-typhoidal Salmonella (NTS), is a major public health concern. Nonetheless, AMR surveillance remains scarce in sub-Saharan Africa, where BSI treatment is largely empirical. The aim of the study was to determine the distribution and AMR patterns of BSI-causing NTS, K. pneumoniae, and other Gram-negative bacteria in Ghana.
Methods:
A cross-sectional study was conducted between April and December 2021 at eleven sentinel health facilities across Ghana as part of a pilot study on the feasibility and implementation of the human sector AMR surveillance harmonized protocol in sub-Saharan Africa. Gram-negative bacteria recovered from blood specimens of febrile patients were identified using MALDI-TOF and evaluated for antimicrobial resistance using the BD Phoenix M50 analyzer and Kirby-Bauer disc diffusion. The Department of Medical Microbiology at the University of Ghana served as the reference laboratory.
Results:
Out of 334 Gram-negative blood isolates, there were 18 (5.4%) NTS, 85 (25.5%) K. pneumoniae, 88 (26.4%) Escherichia coli, 40 (12.0%) Acinetobacter baumannii, 25 (7.5%) Pseudomonas aeruginosa, and 77 (23.1%) other Gram-negative bacteria. As a composite, the isolates displayed high resistance to the antibiotics tested-amoxicillin (89.3%), tetracycline (76.1%), trimethoprim-sulfamethoxazole (71.5%), and chloramphenicol (59.7%). Resistance to third-generation cephalosporins [ceftriaxone (73.7%), cefotaxime (77.8%), and ceftazidime (56.3%)] and fluoroquinolones [ciprofloxacin (55.3%)] was also high; 88% of the isolates were multidrug resistant, and the rate of extended-spectrum beta-lactamase (ESBL) production was 44.6%. Antibiotic resistance in K. pneumoniae followed the pattern of all Gram-negative isolates. Antibiotic resistance was lower in NTS blood isolates, ranging between 16.7-38.9% resistance to the tested antibiotics. Resistance rates of 38.9%, 22.2%, and 27.8% were found for cefotaxime, ceftriaxone, and ceftazidime, respectively, and 27.8% and 23.8% for ciprofloxacin and azithromycin, respectively, which are used in the treatment of invasive NTS. The prevalence of multidrug resistance in NTS isolates was 38.9%.
Conclusions:
Multicenter AMR surveillance of Gram-negative blood isolates from febrile patients was well-received in Ghana, and the implementation of a harmonized protocol was feasible. High resistance and multidrug resistance to first- or second-choice antibiotics, including penicillins, third-generation cephalosporins, and fluoroquinolones, were found, implying that these antibiotics might have limited effectiveness in BSI treatment in the country. Continuation of AMR surveillance in Gram-negative blood isolates is essential for a better understanding of the extent of AMR in these pathogens and to guide clinical practice and policymaking.
Insights
Antimicrobial resistance is high in Gram-negative bacteria causing bloodstream infections in Ghana, with many isolates showing multidrug resistance. This highlights the need for ongoing surveillance to guide treatment and policy.
Area of Science:
- Medical Microbiology
- Infectious Diseases
- Public Health Surveillance
Background:
- Antimicrobial resistance (AMR) in Gram-negative bacteria, including Klebsiella pneumoniae and non-typhoidal Salmonella (NTS), is a critical global health issue.
- Sub-Saharan Africa faces a scarcity of AMR surveillance data, leading to empirical treatment of bloodstream infections (BSIs).
- This study addresses the need for data on BSI-causing Gram-negative bacteria in Ghana.
Purpose of the Study:
- To determine the distribution of NTS, K. pneumoniae, and other Gram-negative bacteria causing BSIs in Ghana.
- To characterize the antimicrobial resistance patterns of these Gram-negative bacterial isolates.
Main Methods:
- A cross-sectional study was conducted from April to December 2021 across eleven sentinel health facilities in Ghana.
- Gram-negative bacteria from febrile patients' blood specimens were identified using MALDI-TOF.
- Antimicrobial resistance was assessed via BD Phoenix M50 analyzer and Kirby-Bauer disc diffusion, with the University of Ghana serving as the reference laboratory.
Main Results:
- Out of 334 Gram-negative isolates, K. pneumoniae (25.5%) and Escherichia coli (26.4%) were most common, followed by other Gram-negatives (23.1%).
- High resistance rates were observed for amoxicillin (89.3%), tetracycline (76.1%), trimethoprim-sulfamethoxazole (71.5%), third-generation cephalosporins (56.3-77.8%), and ciprofloxacin (55.3%).
- Overall, 88% of isolates were multidrug-resistant, with a 44.6% extended-spectrum beta-lactamase (ESBL) production rate. NTS isolates showed lower resistance (16.7-38.9%) but 38.9% were multidrug-resistant.
Conclusions:
- Multicenter AMR surveillance in Ghana is feasible and well-received, providing crucial data on Gram-negative BSI pathogens.
- High rates of resistance and multidrug resistance to common antibiotics suggest limited effectiveness for treating BSIs in Ghana.
- Continued AMR surveillance is essential for informing clinical practice, guiding antibiotic use, and developing effective public health policies.
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