De novo mutations mediate phenotypic switching in an opportunistic human lung pathogen
Abstract
Abstract Bacteria evolving within human hosts encounter selective tradeoffs that render mutations adaptive in one context and deleterious in another. Here, we report that the cystic fibrosis-associated pathogen Burkholderia dolosa overcomes in-human selective tradeoffs by acquiring successive point mutations that alternate phenotypes. We sequenced the whole genomes of 931 respiratory isolates from two recently infected cystic fibrosis patients and an epidemiologically-linked, chronically-infected patient. These isolates are contextualized using 112 historical genomes from the same outbreak strain. Within both newly infected patients, convergent mutations that disrupt O-antigen expression quickly arose, comprising 29% and 63% of their B. dolosa communities by 3 years. The selection for loss of O-antigen starkly contrasts with our previous observation of parallel O-antigen-restoring mutations after many years of chronic infection in the historical outbreak. Experimental characterization reveals that O-antigen loss increases uptake in immune cells while decreasing competitiveness in the mouse lung. We propose that the balance of these pressures, and thus whether O-antigen expression is advantageous, depends on tissue localization and infection duration. These results suggest that mutation-driven phenotypic alternation may be underestimated without dense temporal sampling, particularly for microbes with prolonged infection or colonization.
Article Details
Authors (16)
Alexandra J. Poret
Matthew Schaefers
Christina Merakou
Kathryn E. Mansour
Connor D. Ahern
Georgia K. Lagoudas
Alyssa Haynes
Ashley R. Cross
Joanna B. Goldberg
Roy Kishony
Ahmet Z. Uluer
Alexander J. McAdam
Paul C. Blainey
Department of Biological Engineering, Massachusetts Institute of Technology
Sara O. Vargas
Tami D. Lieberman
Institute for Medical Engineering and Sciences, Massachusetts Institute of Technology
Gregory P. Priebe