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Automated Separation of C. elegans Variably Colonized by a Bacterial Pathogen
Published on: March 21, 2014
Burkholderia pseudomallei kills Caenorhabditis elegans through virulence mechanisms distinct from intestinal lumen
Soon-Keat Ooi1, Tian-Yeh Lim, Song-Hua Lee
1School of Biosciences and Biotechnology, Universiti Kebangsaan Malaysia, Bangi, Selangor, Malaysia.
Abstract:
The nematode Caenorhabditis elegans is hypersusceptible to Burkholderia pseudomallei infection. However, the virulence mechanisms underlying rapid lethality of C. elegans upon B. pseudomallei infection remain poorly defined. To probe the host-pathogen interaction, we constructed GFP-tagged B. pseudomallei and followed bacterial accumulation within the C. elegans intestinal lumen. Contrary to slow-killing by most bacterial pathogens, B. pseudomallei caused fairly limited intestinal lumen colonization throughout the period of observation. Using grinder-defective mutant worms that allow the entry of intact bacteria also did not result in full intestinal lumen colonization. In addition, we observed a significant decline in C. elegans defecation and pharyngeal pumping rates upon B. pseudomallei infection. The decline in defecation rates ruled out the contribution of defecation to the limited B. pseudomallei colonization. We also demonstrated that the limited intestinal lumen colonization was not attributed to slowed host feeding as bacterial loads did not change significantly when feeding was stimulated by exogenous serotonin. Both these observations confirm that B. pseudomallei is a poor colonizer of the C. elegans intestine. To explore the possibility of toxin-mediated killing, we examined the transcription of the C. elegans ABC transporter gene, pgp-5, upon B. pseudomallei infection of the ppgp-5::gfp reporter strain. Expression of pgp-5 was highly induced, notably in the pharynx and intestine, compared with Escherichia coli-fed worms, suggesting that the host actively thwarted the pathogenic assaults during infection. Collectively, our findings propose that B. pseudomallei specifically and continuously secretes toxins to overcome C. elegans immune responses.
Insights
Burkholderia pseudomallei infection in Caenorhabditis elegans leads to rapid death, but the bacteria poorly colonize the worm intestine. This suggests toxins, not colonization, are key to B. pseudomallei virulence.
Area of Science:
- Microbiology
- Infectious Diseases
- Host-Pathogen Interactions
Background:
- Caenorhabditis elegans is a model organism for studying infectious diseases.
- Burkholderia pseudomallei is a highly virulent bacterium causing melioidosis.
- The mechanisms of B. pseudomallei virulence in C. elegans are not well understood.
Purpose of the Study:
- To investigate the virulence mechanisms of Burkholderia pseudomallei in Caenorhabditis elegans.
- To understand the host-pathogen interactions during B. pseudomallei infection in C. elegans.
- To determine the extent of bacterial colonization and host responses.
Main Methods:
- GFP-tagged B. pseudomallei was used to track bacterial accumulation in C. elegans.
- Grinder-defective mutant worms were used to assess bacterial entry.
- Defecation and pharyngeal pumping rates were measured.
- pgp-5::gfp reporter strain was used to examine host immune response (ABC transporter gene expression).
Main Results:
- B. pseudomallei exhibited limited intestinal lumen colonization in C. elegans.
- Bacterial entry into worms did not lead to full intestinal colonization.
- Infection caused significant declines in C. elegans defecation and pharyngeal pumping rates.
- Host pgp-5 gene expression was highly induced, indicating an active immune response.
- B. pseudomallei was confirmed as a poor colonizer of the C. elegans intestine.
Conclusions:
- B. pseudomallei employs toxin secretion as a primary virulence mechanism against C. elegans.
- C. elegans mounts an active immune response against B. pseudomallei infection.
- Limited colonization suggests toxins are continuously secreted to overcome host defenses.
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