4.8 Article

Evolution of Pseudomonas aeruginosa toward higher fitness under standard laboratory conditions

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ISME JOURNAL
卷 15, 期 4, 页码 1165-1177

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SPRINGERNATURE
DOI: 10.1038/s41396-020-00841-6

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  1. EU (ERC Consolidator Grant COMBAT) [724290]
  2. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy [EXC 2155, 39087428]
  3. European Research Council (ERC) [724290] Funding Source: European Research Council (ERC)

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This study showed that hypermutator strains of Pseudomonas aeruginosa evolved towards higher fitness under planktonic conditions and perturbed the genetic context of membrane and cell wall biosynthesis genes. The complex regulatory circuits involving di-guanylate modulating enzymes played a key role in the transition between different lifestyles, allowing for increased growth performance across clonal lineages.
Identifying genetic factors that contribute to the evolution of adaptive phenotypes in pathogenic bacteria is key to understanding the establishment of infectious diseases. In this study, we performed mutation accumulation experiments to record the frequency of mutations and their effect on fitness in hypermutator strains of the environmental bacterium Pseudomonas aeruginosa in comparison to the host-niche-adapted Salmonella enterica. We demonstrate that P. aeruginosa, but not S. enterica, hypermutators evolve toward higher fitness under planktonic conditions. Adaptation to increased growth performance was accompanied by a reversible perturbing of the local genetic context of membrane and cell wall biosynthesis genes. Furthermore, we observed a fine-tuning of complex regulatory circuits involving multiple di-guanylate modulating enzymes that regulate the transition between fast growing planktonic and sessile biofilm-associated lifestyles. The redundancy and local specificity of the di-guanylate signaling pathways seem to allow a convergent shift toward increased growth performance across niche-adapted clonal P. aeruginosa lineages, which is accompanied by a pronounced heterogeneity of their motility, virulence, and biofilm phenotypes.

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