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Raymann, K.

Publications and source records attributed to Raymann, K..

4 recordsLinked to original sources

Parallel and Divergent Evolution in Pseudomonas aeruginosa Under Constant and Fluctuating Predator-Mediated Selection

Environmental predation is a major driver of bacterial evolution and may indirectly influence virulence through coincidental selection. However, how sustained versus fluctuating predator pressure shapes long-term evolutionary trajectories remains poorly understood. Here, we used experimental evolution to investigate the genetic and phenotypic responses of Pseudomonas aeruginosa to continuous, absent, or fluctuating exposure to the protozoan predator Tetrahymena thermophila over 180 days. Whole-population and isolate-level shotgun metagenomic sequencing revealed fewer mutations over time but increasing frequencies of surviving mutations, consistent with selection, extensive gene-level parallel evolution, and signatures of both positive and purifying selection. Recurrently mutated genes encompassed diverse functional pathways, reflecting both shared and treatment-specific adaptive responses. Despite this parallelism, historical contingency was evident, with starting conditions influencing subsequent evolutionary trajectories. We also observed the emergence of hypermutator lineages, which are frequently recovered from chronic lung infections, suggesting that repeatedly evolving elevated mutation rates may represent a common adaptive strategy of P. aeruginosa across environmental and host-associated settings. Fluctuating predation repeatedly reshaped the adaptive landscape, leading to greater temporal turnover of mutations and a higher accumulation of mutations that ultimately reached fixation than in constant environments. Phenotypic assays revealed widespread divergence in fitness, motility, biofilm formation, siderophore production, protease activity, hemolysis, and cell size, whereas virulence in an invertebrate host model varied among treatments but did not differ significantly. Together, these findings demonstrate that variation in predator-mediated selection reshapes the dynamics and genetic targets of bacterial adaptation, highlighting the roles of ecological context, historical contingency, and hypermutability in driving the evolutionary trajectories of opportunistic pathogens. Significance StatementEnvironmental predators are drivers of bacterial evolution, yet their effects on adaptation remain poorly understood. We used experimental evolution to show that constant and fluctuating protozoan predation produce evolutionary trajectories in Pseudomonas aeruginosa, altering tempo, predictability, and targets of adaptation. Adaptation to predator-present or predator-absent environments shaped evolutionary trajectories, demonstrating importance of historical contingency. Fluctuating predation promoted turnover of mutations as populations adapted to selective pressures. We also observed repeated emergence of hypermutator lineages, a hallmark of chronic infections, suggesting that elevated mutation rates represent a favored adaptive strategy across environmental and host-associated settings. These findings provide insight into the environmental origins of genetic changes commonly associated with opportunistic pathogens, while showing that these changes do not necessarily increase virulence.

evolutionary biology↗

Genomic and phenotypic diversification of Pseudomonas aeruginosa during sustained exposure to a ciliate predator

Predator-mediated selection is an important ecological force shaping bacterial evolution, but its effects on genomic adaptation and virulence in opportunistic pathogens are not fully understood. Here, we used experimental evolution to study how exposure to the ciliate predator Tetrahymena thermophila affects Pseudomonas aeruginosa. Replicate populations were evolved for 60 days with or without the predator, followed by whole-genome shotgun metagenomic sequencing and phenotypic analyses. Both treatments showed strong selection and evidence of parallel evolution at gene and nucleotide levels, indicating constrained adaptation. However, predator exposure altered evolutionary dynamics. Predator-evolved populations showed a wider distribution of mutation frequencies, with many mutations persisting at intermediate frequencies, consistent with increased clonal interference and ongoing competition among lineages. In contrast, populations evolved without predators showed more high-frequency mutations, consistent with selective sweeps, though some low-frequency variants remained. Despite substantial genomic change, phenotypic outcomes were variable. Virulence in an invertebrate host model did not consistently increase; instead, evolved isolates showed context-dependent changes, including modest decreases or occasional increases. Competition assays also showed no consistent fitness advantage for predator-evolved isolates, suggesting trade-offs between predator resistance and growth in other environments. Overall, predator-mediated selection reshaped evolutionary dynamics by maintaining diversity and altering the balance of lineages rather than producing uniform increases in virulence. These results highlight how ecological complexity influences adaptive evolution and the context-dependent nature of pathogen traits. ImportanceOpportunistic pathogens like Pseudomonas aeruginosa often evolve in environmental settings before infecting hosts, raising questions about how ecological interactions influence virulence. Predator-mediated selection has been suggested to increase virulence via coincidental evolution, but evidence is inconsistent. Here, we show that exposure to a eukaryotic predator does not consistently elevate virulence but does reshape evolutionary dynamics by altering how mutations spread in populations. Predator-exposed populations retained more intermediate-frequency mutations, consistent with increased clonal interference and ongoing competition among lineages, whereas non-predator populations were dominated by selective sweeps. These differences were also reflected in functional targets of adaptation, with predator exposure favoring mutations in genes involved in environmental sensing and interaction. Together, these findings suggest that ecological complexity shapes the dynamics of adaptation rather than driving a single evolutionary outcome, highlighting that virulence is an emergent property influenced by underlying evolutionary processes.

evolutionary biology↗

A Need for Stronger Regulation: Commercially Sold Probiotics for Honey Bees Do Not Live Up to Their Claims

Antibiotic use in apiculture is often necessary to ensure the survival of honey bee colonies. However, beekeepers are faced with the dilemma of needing to combat bacterial brood infections while also knowing that antibiotics kill beneficial bacteria important for bee health. In recent years, bee probiotics have become increasingly purchased by beekeepers because of product claims like being able to "replenish the microbes lost due to agricultural modifications of honey bees environment" or "promote optimal gut health." Unfortunately, these products have little scientific evidence to support their efficacy, and previous lab experiments have refuted some of their claims. Here, we performed hive-level field experiments to test the effectiveness of SuperDFM-HoneyBee -the most commonly purchased honey bee probiotic in the United States- on restoring the honey bee gut microbiota after antibiotic treatment. We found slight but significant changes in the microbiota composition of bees following oxytetracycline (TerraPro) treatment and no difference between the microbiota of antibiotic treated bees with or without subsequent probiotic supplementation. Moreover, the microorganisms in the probiotic supplement were never found in the guts of the worker bee samples. These results highlight that more research is needed to test the efficacy and outcomes of currently available commercial honey bee probiotic supplements.

microbiology↗

Opportunistic pathogen virulence is maintained by the presence of predators

Opportunistic pathogens are environmental microbes that are generally harmless and only occasionally cause disease. Unlike obligate pathogens, the growth and survival of opportunistic pathogens does not rely on host infection or transmission. Their versatile lifestyles make it challenging to decipher how and why virulence has evolved in opportunistic pathogens. The Coincidental Evolution Hypothesis (CEH) postulates that virulence results from exaptation or pleiotropy, i.e., traits evolved for adaptation to living in one environment that have a different function in another. In particular, adaptation to avoid or survive protist predation has been suggested to contribute to the evolution of bacterial virulence (the training grounds hypothesis). Here we used experimental evolution to determine how the selective pressure imposed by a protist predator impacts the virulence and fitness of a ubiquitous environmental opportunistic bacterial pathogen that has acquired multi-drug resistance: Serratia marcescens. To this aim, we evolved S. marcescens in the presence or absence of generalist protist predator, Tetrahymena thermophila. After 60 days of evolution, we evaluated genotypic and phenotypic changes by comparing evolved S. marcescens to the ancestral strain. Whole genome shotgun (WGS) sequencing of the entire evolved populations and individual isolates revealed numerous cases of parallel evolution, many more than statistically expected by chance, in genes associated with virulence. Our phenotypic assays suggested that evolution in the presence of a predator maintained virulence, whereas evolution in the absence of a predator resulted in attenuated virulence. We also found a significant correlation between virulence, biofilm formation, and grazing resistance. Overall, our results provide evidence that bacterial virulence and virulence related traits are maintained by selective pressures imposed by protist predation.

evolutionary biology↗