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Sakalyte, G.

Publications and source records attributed to Sakalyte, G..

2 recordsLinked to original sources

Resistance variation and bacterial interactions shape the adaptation of a genetically diverse bacterial population to antimicrobial treatment

Bacterial infections are often polymicrobial and subject to the evolution of antimicrobial resistance (AMR). Existing knowledge on AMR in such polymicrobial infections usually relies on observational patient data, for which cause-effect relationships are difficult to infer, or on studying interactions between different bacterial species, ignoring the commonly encountered variation within species. Here, we therefore asked how mixed populations with strains from the same species evolve under antibiotic treatment. We used a genetically diverse population of the high-risk human pathogen Pseudomonas aeruginosa, and first identified strain variation in both AMR and pairwise bacteria-bacteria interactions, the latter ranging from beneficial, neutral, to competitive. Using experimental evolution, we subsequently demonstrate that the response to selection by different antibiotic treatments is significantly influenced by AMR strain variation, bacterial interactions, and also spatial population structure. Moreover, de novo AMR evolution was additionally impacted by variation in resistance rates towards the two considered antibiotics. A second evolution experiment emphasized the central role of strain variation and bacterial interactions in determining the evolutionary outcome. We conclude that ecological dynamics in genetically diverse pathogen populations are key for our general understanding of infection characteristics and AMR evolution, and, therefore, deserve particular attention during treatment of polymicrobial infections.

evolutionary biology↗

Closely related Bacteroides of the murine intestinal microbiota affect each other's growth positively or negatively

The mammalian intestine is a unique ecosystem for thousands of bacterial species and strains. How naturally coexisting bacteria of the microbiota interact with each other is not yet fully understood. Here, we isolated formerly coexisting, closely related strains of the genus Bacteroides from the intestines of healthy, wild-derived mice. The effect of one strain on another strains growth was tested in 169 pairs in vitro. We find a vast diversity of growth promoting and growth inhibiting activities. A strong positive effect was observed between two strains with differing metabolisms. Growth inhibition among a subset of strains was associated with the known bacterial toxin bacteroidetocin B. Across all strains, we observed growth promotion more often than growth inhibition. The effects were independent of two strains belonging to the same or different species. In some cases, one species differed in its effect on another according to host origin. These findings on obligate host-associated bacteria demonstrate that closely related and naturally coexisting strains have the potential to affect each others growth positively or negatively. These results have implications for our basic understanding of host-associated microbes and the design of synthetic microbial communities.

microbiology↗