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Updated: Mar 23, 2026

Author Spotlight: Advancements in Understanding and Combatting Shigella Infections
Published on: February 9, 2024
Molecular and Cellular Mechanisms of Shigella flexneri Dissemination
1Department of Microbiology, Immunology, and Cancer Biology, University of Virginia School of Medicine Charlottesville, VA, USA.
Abstract:
The intracellular pathogen Shigella flexneri is the causative agent of bacillary dysentery in humans. The disease is characterized by bacterial invasion of intestinal cells, dissemination within the colonic epithelium through direct spread from cell to cell, and massive inflammation of the intestinal mucosa. Here, we review the mechanisms supporting S. flexneri dissemination. The dissemination process primarily relies on actin assembly at the bacterial pole, which propels the pathogen throughout the cytosol of primary infected cells. Polar actin assembly is supported by polar expression of the bacterial autotransporter family member IcsA, which recruits the N-WASP/ARP2/3 actin assembly machinery. As motile bacteria encounter cell-cell contacts, they form plasma membrane protrusions that project into adjacent cells. In addition to the ARP2/3-dependent actin assembly machinery, protrusion formation relies on formins and myosins. The resolution of protrusions into vacuoles occurs through the collapse of the protrusion neck, leading to the formation of an intermediate membrane-bound compartment termed vacuole-like protrusions (VLPs). VLP formation requires tyrosine kinase and phosphoinositide signaling in protrusions, which relies on the integrity of the bacterial type 3 secretion system (T3SS). The T3SS is also required for escaping double membrane vacuoles through the activity of the T3SS translocases IpaB and IpaC, and the effector proteins VirA and IcsB. Numerous factors supporting envelope biogenesis contribute to IcsA exposure and maintenance at the bacterial pole, including LPS synthesis, membrane proteases, and periplasmic chaperones. Although less characterized, the assembly and function of the T3SS in the context of bacterial dissemination also relies on factors supporting envelope biogenesis. Finally, the dissemination process requires the adaptation of the pathogen to various cellular compartments through transcriptional and post-transcriptional mechanisms.
Insights
Shigella flexneri spreads between intestinal cells using actin-based motility, driven by bacterial protein IcsA and host cell machinery. This review details the molecular mechanisms of pathogen dissemination and host cell invasion.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Shigella flexneri causes bacillary dysentery through intestinal cell invasion and spread.
- Pathogen dissemination involves intracellular motility and cell-to-cell transmission.
Purpose of the Study:
- To review the molecular mechanisms of Shigella flexneri dissemination within the host.
- To elucidate the roles of bacterial factors and host cell processes in pathogen spread.
Main Methods:
- Review of existing literature on Shigella flexneri pathogenesis.
- Analysis of bacterial factors (IcsA, T3SS) and host cell components (actin, N-WASP/ARP2/3, formins, myosins).
Main Results:
- Shigella flexneri utilizes polar actin assembly, mediated by IcsA and host factors, for intracellular propulsion.
- Cell-to-cell spread involves plasma membrane protrusions, vacuole-like protrusions (VLPs), and requires the type 3 secretion system (T3SS).
- Envelope biogenesis factors and transcriptional regulation are crucial for bacterial dissemination.
Conclusions:
- Shigella flexneri employs sophisticated mechanisms for efficient dissemination within the intestinal epithelium.
- Understanding these mechanisms is key to developing strategies against Shigella infections.
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