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Khanijau, A.

Publications and source records attributed to Khanijau, A..

3 recordsLinked to original sources

Population bottlenecks shape laboratory evolution of piperacillin-tazobactam resistance in Klebsiella grimontii and reveal a shared within-patient evolutionary trajectory

Laboratory-based experimental evolution is widely used to investigate how antimicrobial resistance (AMR) emerges and to identify resistance-associated trade-offs that could inform treatment strategies. However, there is limited understanding of how in vitro AMR evolution reflects the complexity of resistance evolution within the human host, where selective pressures, and therefore evolutionary pathways, are more variable. Here, we investigated the effect of population bottleneck size and growth environment on the evolution of piperacillin-tazobactam (TZP) resistance in Klebsiella grimontii and compared this to resistance evolution observed during a recurrent bloodstream infection. Three clonal K. grimontii isolates cultured from one patient over four months included a TZP-susceptible ancestor and a within-patient evolved TZP-resistant isolate. The susceptible ancestor was evolved under TZP selection using either a small 0.1% bottleneck or a larger 5% bottleneck, and under a second environment, LB supplemented with 5% sheep blood, using a 0.1% bottleneck. Evolved isolates were assessed for TZP susceptibility, {beta}-lactamase activity, fitness, and genomic changes. A single nucleotide polymorphism (SNP) in the promoter region of the chromosomally located {beta}-lactamase gene blaOXY-6-4 was identified in the within-patient evolved isolate and was replicated in all 0.1% bottleneck lineages across both environments. In contrast, the larger 5% bottleneck lineages exhibited greater phenotypic variation and genetic diversity, including multiple blaOXY-6-4 promoter variants and variable TZP MICs. These findings show that laboratory evolution can reproduce key within-patient resistance mechanisms, but that bottleneck size strongly shapes the resistance phenotypes and mutational landscapes observed in vitro. ImportanceAdaptive laboratory evolution is increasingly used to predict how antimicrobial resistance emerges and to identify trade-offs associated with resistance acquisition that could inform future treatment strategies. Here, we directly compared piperacillin-tazobactam resistance evolution in the laboratory with resistance that emerged within a patient during a recurrent bloodstream infection. We show that a small population bottleneck reproducibly selected the same blaOXY-6-4 promoter mutation observed in the patient, whereas a larger bottleneck produced more diverse evolutionary outcomes. These findings build on previous work showing that experimental conditions shape laboratory evolution outcomes and highlight population bottleneck size as an important experimental parameter when designing laboratory evolution studies that intend to model clinically relevant resistance evolution.

evolutionary biology↗

From Colonisation to Invasion: Genomic and Phenotypic Comparison of Faecal and Bloodstream Isolates from the same patients

Gram-negative bloodstream infections (GNBSI) carry a significant global health burden. Escherichia coli and Klebsiella pneumoniae are the two most common causes of healthcare-associated GNBSI, which may arise from gastrointestinal tract (GIT) colonisation. Understanding genomic and phenotypic adaptations that underpin transition from GIT colonisation to invasive bloodstream infection could improve understanding of pathogenesis. This study identified linked faecal and blood isolates from children with healthcare-associated GNBSI caused by E. coli and K. pneumoniae. Linked pairs were compared for antimicrobial resistance, biofilm formation, and underwent comparative genomic analysis via whole-genome sequencing, comparative average nucleotide identity (ANI) and core genome single nucleotide polymorphism (SNP) analysis. Five isolate pairs (three E. coli, two K. pneumoniae) showed high relatedness, supporting GIT origin of bloodstream infection. Isolates within pairs had identical virulence genes whereas phenotypic assays revealed changes in antimicrobial susceptibility, with one pair undergoing changes in resistance gene profiles, and increased biofilm formation in 4/5 isolates. This study provides insight into within-host evolution from gastrointestinal colonisation to bloodstream invasion in Gram-negative pathogens. Convergence on metabolic adaptation and biofilm formation suggests these traits may be advantageous in healthcare-associated GNBSI. Further studies involving larger cohorts alongside functional validation of mutations are needed to better understand GNBSI pathogenesis.

microbiology↗

Genomic comparison of highly related pairs of E. coli and K. pneumoniae isolated from faeces and blood of the same neonatal patients hospitalized with fever in Dar es Salaam, Tanzania

Blood stream infections (BSIs) are a major cause of hospitalisation and death for children under the age of five in sub-Saharan Africa with members of the Gram-negative bacteria Enterobacterales such as Klebsiella pneumoniae and Escherichia coli among the most common causative agents. These bacteria usually colonise the human gastrointestinal (GI) tract which has been identified as a reservoir for invasive infections into extra-intestinal environments such as the urinary tract and bloodstream. In this study we used comparative genomics to compare hybrid genome assemblies of blood and faecal isolates taken from the same patients (all neonates under 19 days old) to determine if the BSI associated bacterial isolates originated in their GI tract. We show that both E. coli and K. pneumoniae likely translocated from the GI tract to the blood in multiple cases of BSI. We also highlight key virulence genes and acquired mutations that are indicative of pathogenic strains capable of BSI. These findings expand our understanding of BSI pathogenesis and could help guide targeted interventions to prevent future BSI infections in neonates.

genomics↗