Salmonella multimutants enable efficient identification of SPI-2 effector protein function in gut inflammation and systemic colonization
Newson, J. P. M.; Gurtler, F.; Piffaretti, P.; Meyer, A.; Sintsova, A.; Barthel, M.; Steiger, Y.; McHugh, S. C.; Enz, U.; Alto, N. M.; Sunagawa, S.; Hardt, W.-D.
Show abstract
Salmonella enterica spp. rely on translocation of effector proteins through the SPI-2 encoded type III secretion system (T3SS) to achieve pathogenesis. More than 30 effectors contribute to manipulation of host cells through diverse mechanisms, but interdependency or redundancy between effectors complicates the discovery of effector phenotypes using single mutant strains. Here, we engineer six mutant strains to be deficient in cohorts of SPI-2 effector proteins, as defined by their reported function. Using various animal models of infection, we show that three principle phenotypes define the functional contribution of the SPI-2 T3SS to infection. Multimutant strains deficient for intracellular replication, for manipulation of host cell defences, or for expression of virulence plasmid effectors all showed strong attenuation in vivo, while mutants representing approximately half of the known effector complement showed phenotypes similar to the wild-type parent strain. By additionally removing the SPI-1 T3SS, we find cohorts of effector proteins that contribute to SPI-2 T3SS-driven enhancement of gut inflammation. Further, we provide an example of how iterative mutation can be used to find a minimal number of effector deletions required for attenuation, and thus establish that the SPI-2 effectors SopD2 and GtgE are critical for the promotion of gut inflammation and mucosal pathology. This strategy provides a powerful toolset for simultaneous parallel screening of all known SPI-2 effectors in a single experimental context, and further facilitates the identification of the responsible effectors, and thereby provides an efficient approach to study how individual effectors contribute to disease.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- ARHGEF26 enhances Salmonella invasion and inflammation in cells and mice 96%
- Intracellular Salmonella Paratyphi A is motile and differs in the expression of flagella-chemotaxis, SPI-1 and carbon utilization pathways in comparison to Intracellular S. Typhimurium 95%
- Neisseria gonorrhoeae subverts formin-dependent actin polymerization to colonize human macrophages 95%
Similar papers in this journal
- The C terminus of the mycobacterium ESX-1 secretion system substrate ESAT-6 is required for phagosomal membrane damage and virulence 95%
- Hundreds of antimicrobial peptides create a selective barrier for insect gut symbionts 95%
- Transposon mobilization in the human fungal pathogen Cryptococcus deneoformans is mutagenic during infection and promotes drug resistance in vitro 95%
Similar papers in this journal
- An Animal Model to Study Klebsiella pneumoniae Gastro-Intestinal Colonization and Host-to-Host Transmission 96%
- Differential requirement for IRGM proteins during tuberculosis infection in mice 96%
- Klebsiella pneumoniae L-Fucose metabolism promotes gastrointestinal colonization and modulates its virulence determinants 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.