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Suttenfield, L. C.

Publications and source records attributed to Suttenfield, L. C..

2 recordsLinked to original sources

Provirus induction diversifies adaptive variation in Pseudomonas aeruginosa lysogen populations

Pseudomonas aeruginosa is a Gram-negative opportunistic pathogen that forms chronic infections in people with cystic fibrosis. Often P. aeruginosa strains are lysogens, infected with proviruses, that are induced by cellular stressors which include challenge with antibiotics such as ciprofloxacin. We asked how infection of P. aeruginosa with Mu-like provirus DMS3 would alter the evolution of antibiotic resistance through serial transfer of six replicates of four strain backgrounds, with and without sublethal doses of ciprofloxacin over 20 days. Through population metagenome sequencing we found that inducing lysogen populations had significantly higher diversity in adaptive mutations than non-lysogens after 20 days. Lysogen populations have more co-existing mutations within the population and a higher number of mutations in adaptive genes, including antibiotic efflux pump and gyrase alleles, and CRISPR-Cas loci. These data suggest that viral induction shifts the adaptive regime of a clonal population from one of stepwise periodic selective sweeps to recurrent competing mutations. Our results demonstrate the way that provirus infection can shape the evolutionary trajectory of their hosts in an environment-dependent manner. SignificanceMost long-term chronic infections of Pseudomonas aeruginosa in cystic fibrosis patients trace their origin to a single ancestor. During long-term chronic infection the evolution of each unique ancestor strain, defined by its starting genotype, can dramatically impact the success of future treatment efforts. Often the common ancestral Pseudomonas aeruginosa genotype is infected by a virus; this in turn shapes the evolution of bacterial cells within the human island of the lung. This work shows that when the nested virus infecting Pseudomonas aeruginosa is the very common transposable Mu-like virus, it can cause the bacterial population to diversify in response to antibiotic treatment in ways that may complicate future antibiotic treatment and phage therapy.

microbiology↗

Phage-mediated resolution of genetic conflict alters the evolutionary trajectory of Pseudomonas aeruginosa lysogens

The opportunistic human pathogen Pseudomonas aeruginosa is naturally infected by a large class of temperate, transposable, Mu-like phages. We examined the genotypic and phenotypic diversity of P. aeruginosa PA14 populations as they resolve CRISPR autoimmunity, mediated by an imperfect CRISPR match to the Mu-like DMS3 prophage, and show that lysogen evolution is profoundly impacted by CRISPR autoimmunity and phage transposition around the chromosome. After 12 days of evolution, we measured a decrease in spontaneous induction in both exponential and stationary phase growth. Co-existing variation in spontaneous induction rates in exponential phase corresponded to a difference in the type of CRISPR self-targeting resolution, mediated either by host mutation or phage transposition. Multiple mutational modes to resolve genetic conflict between host and phage resulted in coexistence in evolved populations of single lysogens that maintained CRISPR immunity to other phages and polylysogens that have lost immunity completely. This work highlights a new dimension of the role of lysogenic phages in the evolution of their hosts. ImportanceThe chronic opportunistic multi-drug resistant pathogen Pseudomonas aeruginosa is persistently infected by temperate phages. We assess the contribution of temperate phage infection to the evolution of the clinically relevant strain UCBPP-PA14. We found that a low level of CRISPR-mediated self-targeting resulted in polylysogeny evolution and large genome rearrangements in lysogens; we also found extensive diversification in CRISPR spacers and cas genes. These genomic modifications resulted in decreased spontaneous induction in both exponential and stationary phase growth, increasing lysogen fitness. This work shows the importance of considering latent phage infection in characterizing the evolution of bacterial populations.

microbiology↗