Suicidal chemotaxis in bacteria
Oliveira, N. M.; Wheeler, J. H. R.; Deroy, C.; Booth, S. C.; Walsh, E. J.; Durham, W. M.; Foster, K. R.
Show abstract
Bacteria commonly live in communities on surfaces where steep gradients of antibiotics and other chemical compounds routinely occur. While many species of bacteria can move on surfaces, we know surprisingly little about how such antibiotic gradients affect cell motility. Here we study the behaviour of the opportunistic pathogen Pseudomonas aeruginosa in stable spatial gradients of a range of antibiotics by tracking thousands of cells in microfluidic devices as they form biofilms. Unexpectedly, these experiments reveal that individual bacteria use pili-based ( twitching) motility to actively navigate towards regions with higher antibiotic concentrations. Our analyses suggest that this biased migration is driven, at least in part, by a direct response to the antibiotics. Migrating cells can reach antibiotic concentrations hundreds of times higher than their minimum inhibitory concentration in a few hours and remain highly motile. However, isolating these cells - using fluid-walled microfluidic devices that can be reconfigured in situ - suggests that these bacteria are terminal and not able to reproduce. In spite of moving towards their death, we show that migrating cells are capable of entering a suicidal program to release bacteriocins that are used to kill other bacteria. Our work suggests that bacteria respond to antibiotics as if they come from a competing colony growing in the neighbourhood, inducing them to invade and attack. As a result, clinical antibiotics have the potential to serve as a bait that lures bacteria to their death.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Functional imaging and quantification of multi-neuronal olfactory responses in C. elegans 94%
- A balance between matrix deformation and the coordination of turning events governs directed neutrophil migration in 3-D matrices 94%
- Membraneless organelles formed by liquid-liquid phase separation increase bacterial fitness 94%
Similar papers in this journal
Similar papers in this journal
- Bacterial swarming reduces Proteus mirabilis and Vibrio parahaemolyticus cell stiffness and increases β-lactam susceptibility 97%
- How individual P. aeruginosa cells with diverse stator distributions collectively form a heterogeneous macroscopic swarming population 96%
- Bacterial filamentation drives colony chirality 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.