Shigella generates distinct IAM subpopulations during epithelial cell invasion to promote efficient intracellular niche formation
Sanchez, L.; Connor, M. G.; Hamon, M. A.; Valenzuela, C.; Enninga, J.
Show abstract
The facultative intracellular pathogen Shigella flexneri invades non-phagocytic epithelial gut cells. Through a syringe-like apparatus called type 3 secretion system, it injects effector proteins into the host cell triggering actin rearrangements leading to its uptake within a tight vacuole, termed the bacterial-containing vacuole (BCV). Simultaneously, Shigella induces the formation of large vesicles around the entry site, which we refer to as infection- associated macropinosomes (IAMs). After entry, Shigella ruptures the BCV and escapes into the host cytosol by disassembling the BCV remnants. Previously, IAM formation has been shown to be required for efficient BCV escape, but the molecular events associated with BCV disassembly have remained unclear. To identify host components required for BCV disassembly, we performed a microscopy-based screen to monitor the recruitment of BAR domain-containing proteins, which are a family of host proteins involved in membrane shaping and sensing (e.g. endocytosis and recycling) during Shigella epithelial cell invasion. We identified endosomal recycling BAR protein Sorting Nexin-8 (SNX8) localized to IAMs in a PI(3)P-dependent manner before BCV disassembly. At least two distinct IAM subpopulations around the BCV were found, either being recycled back to cellular compartments such as the plasma membrane or transitioning to become RAB11A positive "contact-IAMs" involved in promoting BCV rupture. The IAM subpopulation duality was marked by the exclusive recruitment of either SNX8 or RAB11A. Finally, hindering PI(3)P production at the IAMs led to an inhibition of SNX8 recruitment at these compartments and delayed both, the step of BCV rupture time and successive BCV disassembly. Overall, our work sheds light on how Shigella establishes its intracellular niche through the subversion of a specific set of IAMs.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The large GTPase Sey1/atlastin mediates lipid droplet- and FadL-dependent intracellular fatty acid metabolism of Legionella pneumophila 95%
- A TRAF-like E3 ubiquitin ligase TrafE coordinates endolysosomal damage response and cell-autonomous immunity to Mycobacterium marinum. 95%
- Apical annuli are specialised sites of post-invasion secretion of dense granules in Toxoplasma 95%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Comprehensive single cell analyses of the nutritional environment of intracellular Salmonella enterica 94%
- Composition and Biophysical Properties of the Sorting Platform Pods in the Shigella Type III Secretion System 93%
- Phthiocerol dimycocerosates from Mycobacterium tuberculosis increase the membrane activity of bacterial effectors and host receptors 93%
Similar papers in this journal
- The Chlamydia protein CpoS modulates the inclusion microenvironment and restricts the interferon response by acting on Rab35 96%
- Toxoplasma effector TgWIP hijacks dendritic cell actin and motility via Nck1/Grb2 and the WAVE complex 94%
- Conidial melanin of the human pathogenic fungus Aspergillus fumigatus disrupts cell autonomous defenses in amoebae 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.