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Zaborskyte, G.

Publications and source records attributed to Zaborskyte, G..

2 recordsLinked to original sources

Rapid evolution of Klebsiella pneumoniae biofilms in vitro delineates adaptive changes selected during infection

Biofilm formation facilitates infection by the opportunistic pathogen Klebsiella pneumoniae, primarily through indwelling medical devices. Here, we address how K. pneumoniae can increase its biofilm capacity by experimental evolution of surface-attached biofilms to mimic catheter-associated infections. We observed rapid convergent evolution that altered or abolished capsule, modified the fimbrial adhesin MrkD, or increased production of fimbriae and cellulose via upregulated c-di-GMP-dependent pathways. However, evolutionary trajectories and resulting phenotypes showed strain differences, illustrating the importance of genetic background on biofilm adaptation. Multiple biofilm aspects, such as early attachment, biofilm topology, surface preference, and extracellular matrix composition, were affected in a mutation-specific manner. Acute virulence was linked to the underlying genetic change rather than the overall biofilm capacity. Single mutations conferring hypermucoidy and c-di-GMP-related changes extensively overlapped with previously identified adaptive changes in UTI and wound isolates, confirming biofilm as an important selective trait in vivo.

microbiology↗

Convergent within-host evolution alters key virulence factors in a Klebsiella pneumoniae clone during a large hospital outbreak

Bacterial pathogens adapt to host niches because of within-host selective pressures, and this evolutionary process provides valuable insights into host-pathogen interactions. However, genetic changes underlying adaptive phenotypes are difficult to identify from data generated by genome-wide association studies of unrelated bacterial clones. Here, we followed the evolution of a single Klebsiella pneumoniae clone in 110 patients during a 5-year nosocomial outbreak by combining comparative genomics with phenotypic characterization. Strong positive within-patient selection targeted key virulence factors in isolates from infection sites. The clone repeatedly lost acute virulence primarily via alterations in capsule and lipopolysaccharide, changed regulation of iron uptake, and increased biofilm formation. These phenotypes represent likely niche adaptations, mainly to the urinary tract, and some were associated with trade-offs during gastrointestinal colonization. The substantial convergent evolution reflects the trajectories undertaken by high-risk clones of K. pneumoniae and other pathogens adapting during acute and chronic infections.

microbiology↗