Abstract / Summary
Pseudomonas aeruginosa is a ubiquitous environmental bacterium and an opportunistic pathogen. Rather than existing as single clonal lineages, environmental and clinical populations often consist of a mixture of distinct strains that directly compete to dominate the niche. To eliminate rivals, P. aeruginosa deploys a form of interference competition termed contact-dependent growth inhibition (CDI). CDI is mediated by CdiA, where, upon cell contact, the CdiA C-terminal toxin domain is delivered to prey cells. Toxin-producing cells encode for a cognate CdiI immunity protein to prevent self-intoxication. Different strains of P. aeruginosa encode for CdiA proteins with different C-terminal toxin domains and cognate CdiI immunity proteins. Most studies have relied on engineered strains to investigate the mechanism of CDI. While extremely useful for studying CdiA-mediated intoxication, such work masks the true diversity of wild-type CdiA variants and their impact on competitive interactions between strains. In this study, we systematically investigated CDI-mediated competition using unique conspecific strains of P. aeruginosa. We identified several novel CdiA toxin domains and mapped the competitive outcomes they govern. Furthermore, using a mouse model of acute pneumonia, we demonstrate that CDI-mediated interference competition actively occurs during mixed-strain infections in vivo. Together, our findings reveal that P. aeruginosa leverages CDI as a potent, strain-dependent kin discrimination mechanism that directly shapes population dynamics and strain dominance within host and natural environments.