Enteropathogenic Escherichia coli manipulates the host exocyst complex to enhance pedestal formation
Herath, T. U. B.; Dahanayake, P.; Mortuza, R.; Gianfelice, A.; Rehman, A.; Bostina, M.; Deng, W.; Santos, A. S.; Finlay, B. B.; Ireton, K.
Show abstract
Enteropathogenic Escherichia coli (EPEC), a major cause of diarrheal disease, produces plasma membrane pedestals that promote colonization of host cells. Critical for pedestal formation is EPECs type III secretion system, which injects [~] 20 effector proteins into human cells. One of these effectors is Tir, which inserts into the host plasma membrane and stimulates the assembly of actin filaments essential for pedestal generation. To date, actin polymerization is the only host process known to contribute to pedestal formation. Here we report that EPEC co-opts the membrane trafficking pathway of polarized exocytosis, which acts together with actin polymerization to allow the efficient production of pedestals. Polarized exocytosis is mediated by the exocyst -- a human octameric complex that uses intracellular vesicles to expand the plasma membrane. We found that EPEC stimulated exocytosis at sites of pedestal formation in a manner dependent on the exocyst. The bacterial effector EspH recruited the exocyst and promoted exocytosis. Genetic inactivation of espH or RNA interference (RNAi)-induced depletion of exocyst components reduced both the frequency and size of pedestals. Additional RNAi experiments indicated that the exocyst is dispensable for actin filament assembly in pedestals. Co-depletion of components of the exocyst and the Arp2/3 complex showed that exocytosis and actin polymerization make additive contributions to pedestal formation. Collectively, these results indicate that exocyst-mediated expansion of the plasma membrane acts together with actin polymerization to optimize the generation of pedestals. IMPORTANCEEnteropathogenic E. coli (EPEC) induces the formation of host cell plasma membrane protrusions called "pedestals" that mediate tight adherence to intestinal epithelial cells. Substantial evidence indicates that the generation of pedestals requires bacterial-induced polymerization of the host cell actin cytoskeleton. However, it remains unknown if EPEC manipulates other human processes to augment the efficiency of pedestal generation. The significance of this research is to demonstrate that EPEC co-opts a second host process called polarized exocytosis to increase the frequency of pedestals and the size of these structures. EPEC induces exocytosis by using its effector protein EspH to recruit the human exocyst complex, which mediates the insertion of membrane at sites of bacterial attachment. Our results demonstrate EPECs ability to coordinate host membrane trafficking with cytoskeletal changes to enhance infection. Remarkably, EPEC shares this strategy with the intracellular bacterial pathogens Listeria monocytogenes and Shigella flexneri.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Enzymatic Specificity of Conserved Rho GTPase Deamidases Promotes Invasion of Vibrio parahaemolyticus at the Expense of Infection 96%
- PopB-PcrV Interactions are Essential for Pore Formation in the Pseudomonas aeruginosa Type III Secretion System Translocon 95%
- The antagonistic transcription factors, EspM and EspN, regulate the ESX-1 secretion system in M. marinum 95%
Similar papers in this journal
- Effect of tryptophan starvation on inclusion membrane composition and chlamydial-host interactions 95%
- Chlamydia trachomatis Encodes a Dynamic, Ring-Forming Bactofilin Critical for Maintaining Cell Size and Shape 95%
- The SapM phosphatase arrests phagosome maturation in an ESX-1 independent manner in Mycobacterium tuberculosis and BCG 94%
Similar papers in this journal
- Single cell analyses reveal distinct adaptation of typhoidal and non-typhoidal Salmonella enterica serovars to intracellular lifestyle 95%
- Neisseria gonorrhoeae subverts formin-dependent actin polymerization to colonize human macrophages 95%
- 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%
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 94%
- A role for the Gram-negative outer membrane in bacterial shape determination 94%
- A cell cycle-dependent GARP-like transcriptional repressor regulates the initiation of differentiation in Giardia lamblia 94%
Similar papers in this journal
- The ankyrin repeat protein RARP-1 is a periplasmic factor that supports Rickettsia parkeri growth and host cell invasion 95%
- The regulatory functions of ESX-1 substrates, EspE and EspF, are separable from secretion. 94%
- Enterococcus faecium sagA mutants have cell envelope defects influencing antibiotic resistance and bacteriophage susceptibility 94%
"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.