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Updated: Nov 18, 2025

Author Spotlight: Advancements in Understanding and Combatting Shigella Infections
Published on: February 9, 2024
Host PIK3C3 promotes Shigella flexneri spread from cell to cell through vacuole formation
Steven J Rolland1, Zachary J Lifschin1, Erin A Weddle1
1Department of Microbiology, Immunology, and Cancer Biology, University of Virginia School of Medicine, Charlottesville, Virginia, United States of America.
Abstract:
Shigella flexneri is a human intracellular pathogen responsible for bacillary dysentery (bloody diarrhea). S. flexneri invades colonic epithelial cells and spreads from cell to cell, leading to massive epithelial cell fenestration, a critical determinant of pathogenesis. Cell-to-cell spread relies on actin-based motility, which leads to formation of membrane protrusions, as bacteria project into adjacent cells. Membrane protrusions resolve into intermediate structures termed vacuole-like protrusions (VLPs), which remain attached to the primary infected cell by a membranous tether. The resolution of the membranous tether leads to formation of double-membrane vacuoles (DMVs), from which S. flexneri escapes to gain access to the cytosol of adjacent cells. Here, we identify the class III PI3K family member PIK3C3 as a critical determinant of S. flexneri cell-to-cell spread. Inhibition of PIK3C3 decreased the size of infection foci formed by S. flexneri in HT-29 cells. Tracking experiments using live-fluorescence confocal microscopy showed that PIK3C3 is required for efficient resolution of VLPs into DMVs. PIK3C3-dependent accumulation of PtdIns(3)P at the VLP membrane in adjacent cells correlated with the transient recruitment of the membrane scission machinery component Dynamin 2 at the neck of VLPs at the time of DMV formation. By contrast, Listeria monocytogenes did not form VLPs and protrusions resolved directly into DMVs. However, PIK3C3 was also required for L. monocytogenes dissemination, but at the stage of vacuole escape. Finally, we showed that PIK3C3 inhibition decreased S. flexneri dissemination in the infant rabbit model of shigellosis. We propose a model of Shigella dissemination in which vacuole formation relies on the PIK3C3-dependent accumulation of PtdIns(3)P at the VLP stage of cell-to-cell spread, thereby supporting the resolution of VLPs into DMVs through recruitment of the membrane scission machinery component, DNM2.
Insights
PIK3C3 is crucial for Shigella flexneri's cell-to-cell spread, enabling vacuole-like protrusions to mature into double-membrane vacuoles. Inhibiting PIK3C3 reduces infection spread in cells and infant rabbits.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Shigella flexneri causes bacillary dysentery by invading colonic epithelial cells and spreading between them.
- This cell-to-cell spread involves actin-based motility, forming membrane protrusions that resolve into vacuole-like protrusions (VLPs) and eventually double-membrane vacuoles (DMVs).
Purpose of the Study:
- To identify host factors critical for Shigella flexneri cell-to-cell dissemination.
- To elucidate the role of PIK3C3 in the vacuole-like protrusion to double-membrane vacuole transition.
Main Methods:
- Utilized HT-29 cells and an infant rabbit model of shigellosis.
- Employed live-fluorescence confocal microscopy to track bacterial spread and vacuole dynamics.
- Investigated the role of PIK3C3 inhibition on infection foci size and bacterial dissemination.
Main Results:
- PIK3C3 was identified as essential for Shigella flexneri cell-to-cell spread, decreasing infection foci size upon inhibition.
- PIK3C3 is required for the efficient resolution of VLPs into DMVs, involving PtdIns(3)P accumulation and Dynamin 2 recruitment.
- PIK3C3 inhibition also impacted Listeria monocytogenes dissemination, specifically at the vacuole escape stage.
Conclusions:
- PIK3C3 plays a critical role in Shigella flexneri dissemination by facilitating VLP maturation into DMVs via PtdIns(3)P and Dynamin 2.
- PIK3C3 inhibition effectively reduces Shigella flexneri spread in both cellular and animal models.
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