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Updated: Jul 13, 2026

The Nematode Caenorhabditis Elegans - A Versatile In Vivo Model to Study Host-microbe Interactions
Published on: October 18, 2017
Ce-Duox1/BLI-3 generated reactive oxygen species trigger protective SKN-1 activity via p38 MAPK signaling during
Ransome van der Hoeven1, Katie C McCallum, Melissa R Cruz
1Department of Microbiology and Molecular Genetics, The University of Texas Health Science Center at Houston, Houston, Texas, United States of America.
Abstract:
Infected animals will produce reactive oxygen species (ROS) and other inflammatory molecules that help fight pathogens, but can inadvertently damage host tissue. Therefore specific responses, which protect and repair against the collateral damage caused by the immune response, are critical for successfully surviving pathogen attack. We previously demonstrated that ROS are generated during infection in the model host Caenorhabditis elegans by the dual oxidase Ce-Duox1/BLI-3. Herein, an important connection between ROS generation by Ce-Duox1/BLI-3 and upregulation of a protective transcriptional response by SKN-1 is established in the context of infection. SKN-1 is an ortholog of the mammalian Nrf transcription factors and has previously been documented to promote survival, following oxidative stress, by upregulating genes involved in the detoxification of ROS and other reactive compounds. Using qRT-PCR, transcriptional reporter fusions, and a translational fusion, SKN-1 is shown to become highly active in the C. elegans intestine upon exposure to the human bacterial pathogens, Enterococcus faecalis and Pseudomonas aeruginosa. Activation is dependent on the overall pathogenicity of the bacterium, demonstrated by a weakened response observed in attenuated mutants of these pathogens. Previous work demonstrated a role for p38 MAPK signaling both in pathogen resistance and in activating SKN-1 upon exposure to chemically induced oxidative stress. We show that NSY-1, SEK-1 and PMK-1 are also required for SKN-1 activity during infection. Evidence is also presented that the ROS produced by Ce-Duox1/BLI-3 is the source of SKN-1 activation via p38 MAPK signaling during infection. Finally, for the first time, SKN-1 activity is shown to be protective during infection; loss of skn-1 decreases resistance, whereas increasing SKN-1 activity augments resistance to pathogen. Overall, a model is presented in which ROS generation by Ce-Duox1/BLI-3 activates a protective SKN-1 response via p38 MAPK signaling.
Insights
Host defense involves reactive oxygen species (ROS) that can damage tissue. This study shows ROS activate protective SKN-1 responses via p38 MAPK signaling in C. elegans during infection, enhancing pathogen resistance.
Area of Science:
- Immunology
- Molecular Biology
- Genetics
Background:
- Infection triggers reactive oxygen species (ROS) and inflammation, which can damage host tissues.
- Specific protective responses are crucial for survival against pathogen-induced damage.
- Dual oxidase Ce-Duox1/BLI-3 generates ROS during infection in C. elegans.
Purpose of the Study:
- To establish the connection between ROS generation by Ce-Duox1/BLI-3 and the protective transcriptional response mediated by SKN-1 during infection.
- To investigate the role of p38 MAPK signaling in this ROS-mediated activation of SKN-1.
- To demonstrate the protective function of SKN-1 during pathogen attack.
Main Methods:
- Quantitative reverse transcription PCR (qRT-PCR) to measure gene expression.
- Transcriptional and translational reporter fusions to assess SKN-1 activity.
- Utilized C. elegans infection models with bacterial pathogens (Enterococcus faecalis, Pseudomonas aeruginosa) and their mutants.
Main Results:
- SKN-1 activity was significantly upregulated in the C. elegans intestine upon exposure to bacterial pathogens.
- Activation of SKN-1 during infection was dependent on Ce-Duox1/BLI-3-produced ROS and required p38 MAPK signaling components (NSY-1, SEK-1, PMK-1).
- Loss of SKN-1 function decreased pathogen resistance, while increased SKN-1 activity enhanced resistance.
Conclusions:
- ROS generated by Ce-Duox1/BLI-3 activate a protective SKN-1 transcriptional response through the p38 MAPK pathway during infection.
- This ROS-induced SKN-1 pathway plays a critical role in host defense and pathogen resistance in C. elegans.
- The findings establish a novel mechanism of host-pathogen interaction involving ROS signaling and transcriptional regulation for survival.
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