A broad-spectrum phage-encoded mechanism to disarm bacterial type IV filaments
Roberge, N.; Dave, P.; Taylor, V.; Ellison, T. J.; Myers, C.; Ellison, C. K.; Maxwell, K. L.; Burrows, L. L.
Show abstract
Phages can modify host cell physiology to thwart competitors. The Pseudomonas aeruginosa-specific phage DMS3 encodes Aqs1, a protein inhibitor of type IV pilus (T4P) function to prevent host cell recognition by other phages that leverage these filaments for infection. Aqs1 disrupts T4P by binding to the hexameric ATPase PilB, required to power pilus filament extension, though several mechanistic details remain unclear. We show that Aqs1 has broad-spectrum activity and can disrupt T4P function in a variety of Gram negative bacteria. This protein inhibits PilB by binding to a solvent-exposed hydrophobic patch on the N2-domain, distal to the active site. Binding destabilizes the hexamer, preventing PilB accumulation at T4P machines. Aqs1 likely disrupts PilB oligomerization by displacing a flexible linker segment between the PilB N1- and N2-domains required for inter-subunit contact. Together, the Aqs1 mode of action provides a design template for broad-spectrum inhibitors of diverse bacterial virulence factors. SignificanceThe phage-encoded protein Aqs1 disables type IV pilus (T4P) production in Pseudomonas aeruginosa by targeting the hexameric ATPase responsible for assembling pilus fibers. We show that despite originating from a P. aeruginosa-specific phage, Aqs1 can also disable T4 ATPase-dependent phenotypes across other pathogenic bacteria and homologous systems. Mechanistically, Aqs1 binds to a conserved patch on the PilB N2-domain away from the active site. Binding here breaks apart the PilB oligomer, preventing it from acting on T4P machines. Aqs1 binding at the N2-domain patch likely displaces a flexible PilB linker segment that binds to this site to stabilize the hexamer. Our work highlights a novel and conserved PilB allosteric site which is exploited by the phage-encoded protein Aqs1 to disrupt diverse T4 systems in multiple bacteria.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Antibiotic hypersensitivity signatures identify targets for attack in the Acinetobacter baumannii cell envelope 97%
- The mycobacterial glycoside hydrolase LamH enables capsular arabinomannan release and stimulates growth 97%
- Dormant spores sense amino acids through the B subunits of their germination receptors 97%
Similar papers in this journal
- Amoxicillin-resistant Streptococcus pneumoniae can be resensitized by targeting the mevalonate pathway as indicated by sCRilecs-seq 97%
- PomX, a ParA/MinD ATPase activating protein, is a triple regulator of cell division in Myxococcus xanthus 97%
- Structural foundation for the role of enterococcal PrgB in conjugation, biofilm formation and virulence 96%
Similar papers in this journal
Similar papers in this journal
- A new role for lipoproteins LpqZ and FecB in orchestrating mycobacterial cell envelope biogenesis 97%
- AcrIF11 is a potent CRISPR-specific ADP-ribosyltransferase encoded by phage and plasmid 96%
- Identification of polyphosphate-binding proteins in E. coli uncovers targets involved in translation control and ribosome biogenesis 96%
Similar papers in this journal
- Structural modeling reveals the allosteric switch controlling the chitin utilization program of Vibrio cholerae 97%
- Oxygen depletion and nitric oxide stimulate type IV MSHA pilus retraction in Vibrio cholerae via activation of the phosphodiesterase CdpA 96%
- DprA recruits ComM to facilitate recombination during natural transformation in Gram-negative bacteria 96%
"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.