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Katende, G.

Publications and source records attributed to Katende, G..

2 recordsLinked to original sources

Comparative analyses of Gram-negative bacteria isolated from cancer patients with bacteraemia at the Uganda Cancer Institute

Antimicrobial resistance (AMR) exacerbates bacteraemia in cancer patients, particularly in low-resource settings. At the Uganda Cancer Institute, high rates of Enterobacterales producing extended-spectrum {beta}-lactamases (ESBLs) have been reported, with DNA-based detection of bla genes limited to PCR. This study aimed to determine whether bacterial genomic DNA shipped at ambient temperature from Uganda to the UK retained sufficient quality for whole-genome sequencing (WGS), to allow in-depth genomic analyses of isolates. Genomic DNA was extracted from Gram-negative bloodstream isolates (n=77) in Uganda and shipped to the UK at ambient temperature. rpoB gene (77/77, 100%) and WGS data (72/77, 93.5%) were generated for isolates, with 66/72 (91.7%) genomes of high-quality (Escherichia coli n=34; Klebsiella spp. n=32). Bioinformatic analyses included species identification, sequence typing, SNP analysis, AMR and virulence gene profiling, and comparison with publicly available genomes of Ugandan isolates. Phenotypic-genotypic concordance was generally high: 7/77 (9.1%) isolates were misidentified by phenotypic testing, and two showed unexplained carbapenem resistance. E. coli isolates showed diverse sequence types, with high prevalence of blaCTX-M (91.2%) and blaOXA-1 (47.1%); carbapenemase genes were rare. Klebsiella isolates lacked hypermucoidy loci and displayed diverse capsule types, with a high prevalence of ESBLs. Genomic clustering suggested limited within-hospital transmission of strains. Genomic data can provide important insights into the dissemination of bacterial subclades of global concern. The widespread AMR genotypes reported here highlight the need for improved diagnostics and updated treatment guidelines for bacteraemia in Ugandan cancer patients. IMPACT STATEMENTBloodstream infections are a major threat to cancer patients, particularly in low-resource settings where access to advanced diagnostics is limited and infection prevention may be challenging. This study shows that it is feasible to transport bacterial DNA at room temperature from Uganda to the UK for high-quality whole-genome sequencing, helping to overcome a logistical barrier to genomic surveillance. By applying genomic analysis to bacteria that had caused bloodstream infections at the Uganda Cancer Institute, we found that traditional laboratory methods can misidentify some bacteria, and that genomic analyses can provide more accurate and detailed insights into the bacteria causing these serious infections. Our work also highlights gaps in current treatment guidelines and demonstrates how genomic data could help inform updates to these, facilitating more effective antibiotic use in situations where urgent treatment is needed and there is no time to wait for laboratory test results. While there was limited evidence of direct transmission of bacteria between patients in our dataset, the genetic diversity and resistance patterns we observed are concerning and emphasise the need for ongoing monitoring and more extensive future studies.

microbiology↗

One Health in Eastern Africa: No barriers for ESBL producing E. coli transmission or independent antimicrobial resistance gene flow across ecological compartments

The One Health paradigm considers the interdependence of human, animal and environmental health. In high-income countries, limited evidence has been found from recent studies to support the importance of a One Health approach to addressing spread of antimicrobial resistance (AMR). Given AMR is a global threat, and we are all interconnected it would be important to know if closer interaction of humans with animals and the environment in low-income present a contrasting picture. We used whole genome sequencing to investigate the genomic diversity and to infer transmission of extended spectrum beta-lactamase producing Escherichia coli (ESBL-Ec) between different ecological niches (humans, animals and the environment). We found high diversity of ESBL-Ec with 172 genomic clusters and 167 sequence types identified from 2,344 genomes. Common ESBL genes, blaCTX-M-15 (67.6%) and blaCTX-M-27 (14.2%) were carried on a complex network of different plasmids, presenting multiple pathways for dissemination and revealing the high force of selection. Using fine-scale genomic clustering across multiple thresholds ranging from 0 to 20 single nucleotide polymorphisms, we found that genomes isolated from humans, animals and the environment formed overlapping clusters, indicating recent ESBL-Ec transmission and co-circulation both within and between ecological compartments. These findings demonstrate that the One Health approach is highly relevant to tackling AMR in low-income settings, and therefore critical to consider if we are to address the rise of AMR globally.

genomics↗