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Updated: May 29, 2026

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Published on: February 8, 2012
Non-lytic, actin-based exit of intracellular parasites from C. elegans intestinal cells
Kathleen A Estes1, Suzannah C Szumowski, Emily R Troemel
1Division of Biological Sciences, University of California, San Diego, La Jolla, California, United States of America.
Abstract:
The intestine is a common site for invasion by intracellular pathogens, but little is known about how pathogens restructure and exit intestinal cells in vivo. The natural microsporidian parasite N. parisii invades intestinal cells of the nematode C. elegans, progresses through its life cycle, and then exits cells in a transmissible spore form. Here we show that N. parisii causes rearrangements of host actin inside intestinal cells as part of a novel parasite exit strategy. First, we show that N. parisii infection causes ectopic localization of the normally apical-restricted actin to the basolateral side of intestinal cells, where it often forms network-like structures. Soon after this actin relocalization, we find that gaps appear in the terminal web, a conserved cytoskeletal structure that could present a barrier to exit. Reducing actin expression creates terminal web gaps in the absence of infection, suggesting that infection-induced actin relocalization triggers gap formation. We show that terminal web gaps form at a distinct stage of infection, precisely timed to precede spore exit, and that all contagious animals exhibit gaps. Interestingly, we find that while perturbations in actin can create these gaps, actin is not required for infection progression or spore formation, but actin is required for spore exit. Finally, we show that despite large numbers of spores exiting intestinal cells, this exit does not cause cell lysis. These results provide insight into parasite manipulation of the host cytoskeleton and non-lytic escape from intestinal cells in vivo.
Insights
Microsporidian parasites manipulate host actin to exit intestinal cells without causing lysis. This novel exit strategy involves actin rearrangement and terminal web gap formation in the nematode C. elegans.
Area of Science:
- Cell Biology
- Parasitology
- Microbiology
Background:
- Intracellular pathogens frequently invade intestinal cells, yet their exit mechanisms in vivo remain poorly understood.
- The microsporidian parasite N. parisii infects the nematode C. elegans, completing its life cycle and exiting intestinal cells as spores.
Purpose of the Study:
- To elucidate the mechanisms by which N. parisii exits intestinal cells in vivo.
- To investigate the role of host actin cytoskeleton in parasite egress and host cell integrity.
Main Methods:
- Live imaging of N. parisii infection in C. elegans intestinal cells.
- Analysis of host actin localization and terminal web structure.
- Genetic manipulation of actin expression levels.
Main Results:
- N. parisii infection induces relocalization of host actin to the basolateral side, forming network-like structures.
- Actin relocalization precedes the formation of gaps in the terminal web, a structure potentially blocking exit.
- Actin is essential for spore exit but not for parasite infection progression or spore formation.
- Spore exit occurs without causing host cell lysis.
Conclusions:
- N. parisii employs a novel strategy to exit host cells by manipulating the actin cytoskeleton.
- The parasite induces terminal web gaps, facilitating non-lytic spore egress.
- This study provides insights into host-pathogen interactions and cytoskeletal dynamics during parasitic infection.
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