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MacLean, R. C.

Publications and source records attributed to MacLean, R. C..

4 recordsLinked to original sources

Adaptation of Pseudomonas aeruginosa to repeated invasion into a commensal competitor

The host-associated microbiome is an important barrier to bacterial pathogen colonization and can mediate protection through a variety of mechanisms. We wanted to investigate the potential consequences of selection imposed by commensal bacterial competitors on an invading bacterial pathogen. To do this, we tested the ability of the opportunistic pathogen Pseudomonas aeruginosa to invade pre-established communities of an abundant commensal bacterium in the human microbiome, Staphylococcus epidermidis. We passaged ten independent lines of P. aeruginosa through daily invasion into a pre-established S. epidermidis population (coculture evolved lines), alongside daily passage through monoculture conditions (monoculture evolved lines). The monoculture evolved lines showed strong parallel evolution in the Wsp (Wrinkly spreader phenotype) signal transducing system involved in biofilm formation, and significantly elevated biofilm formation. On the other hand, adaptation to S. epidermidis occurred via mutations in a diverse set of genes, and the coculture evolved lines showed much weaker evidence for parallel evolution, suggesting that the selective pressure imposed by competition with S. epidermidis is more complex than the pressure imposed by culture conditions. Interestingly, the elevated biofilm formation phenotype seen in the monoculture evolved lines was not observed in the lines evolved in the presence of S. epidermidis, raising the question of whether enhanced biofilm formation did not evolve with S. epidermidis present because it was not beneficial, or because S. epidermidis may be able to restrict this evolutionary path by inhibiting biofilm formation.

microbiology↗

Antibiotic resistance alters the ability of Pseudomonas aeruginosa to invade the respiratory microbiome

The emergence and spread of antibiotic resistance in bacterial pathogens is a global health threat. One important unanswered question is how antibiotic resistance influences the ability of a pathogen to invade the host-associated microbiome. Here we investigate how antibiotic resistance impacts the ability of the opportunistic bacterial pathogen Pseudomonas aeruginosa to invade the respiratory microbiome, by measuring the ability of P. aeruginosa spontaneous antibiotic resistant mutants to invade pre-established cultures of commensal respiratory microbes. We find that commensal respiratory microbes tend to inhibit the growth of P. aeruginosa, and antibiotic resistance is a double-edged sword that can either help or hinder the ability of P. aeruginosa to overcome this inhibition. The directionality of this help or hinderance depends on both P. aeruginosa genotype and respiratory microbe identity. Antibiotic resistance facilitates the invasion of P. aeruginosa into Staphylococcus lugdunensis, yet impairs invasion into Rothia mucilaginosa and Staphylococcus epidermidis. Streptococcus species provide the strongest inhibition to P. aeruginosa invasion, and this is maintained regardless of antibiotic resistance genotype. Our study demonstrates how antibiotic resistance can alter the ability of a bacterial pathogen to invade the respiratory microbiome and suggests that attempts to manipulate the microbiome should focus on promoting the growth of commensals that can provide robust inhibition of both wildtype and antibiotic resistant pathogen strains.

microbiology↗

Restriction-modification systems have shaped the evolution and distribution of plasmids across bacteria

Many novel traits such as antibiotic resistance are spread by plasmids between species. Yet plasmids have different host ranges. Restriction-modification systems (R-M systems) are by far the most abundant bacterial defense system and therefore represent one of the key barriers to plasmid spread. However, their effect on plasmid evolution and host range has been neglected. Here we analyse the avoidance of targets of the most abundant R-M systems (Type II) for complete genomes and plasmids across bacterial diversity. For the most common target length (6 bp) we show that target avoidance is strongly correlated with the taxonomic distribution of R-M systems and is greater in plasmid genes than core genes. We find stronger avoidance of R-M targets in plasmids which are smaller and have a broader host range. Our results suggest two different evolutionary strategies for plasmids: small plasmids primarily adapt to R-M systems by tuning their sequence composition, and large plasmids primarily adapt through the carriage of additional genes protecting from restriction. Our work provides systematic evidence that R-M systems are important barriers to plasmid transfer and have left their mark on plasmids over long evolutionary time.

microbiology↗

Polyclonal pathogen populations accelerate the evolution of antibiotic resistance in patients

Antibiotic resistance poses a global health threat, but the within-host drivers of resistance remain poorly understood. Pathogen populations are often assumed to be clonal within hosts, and resistance is thought to emerge due to selection for de novo variants. Here we show that pulmonary populations of the opportunistic pathogen P. aeruginosa are often polyclonal. Crucially, resistance evolves rapidly in patients colonized by polyclonal populations through selection for pre-existing resistant strains. In contrast, resistance evolves sporadically in patients colonized by monoclonal populations due to selection for novel resistance mutations. However, strong trade-offs between resistance and fitness occur in polyclonal populations that can drive the loss of resistant strains. In summary, we show that the within-host diversity of pathogen populations plays a key role in shaping the emergence of resistance in response to treatment. One sentence summaryAntibiotic resistance evolves quickly in patients colonized by polyclonal pathogen populations.

evolutionary biology↗