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Updated: Sep 9, 2025

High-throughput Assay to Phenotype Salmonella enterica Typhimurium Association, Invasion, and Replication in Macrophages
Published on: August 11, 2014
Commensal yeast promotes Salmonella Typhimurium virulence
Kanchan Jaswal1, Olivia A Todd1, Roberto C Flores Audelo1
1Department of Microbiology and Immunology, University of Illinois Chicago, Chicago, IL, USA.
Abstract:
Enteric pathogens engage in complex interactions with the host and the resident microbiota to establish gut colonization1-3. Although mechanistic interactions between enteric pathogens and bacterial commensals have been extensively studied, whether and how commensal fungi affect enteric infections remain largely unknown1. Here we show that colonization with the common human gut commensal fungus Candida albicans worsened infections with the enteric pathogen Salmonella enterica subsp. enterica serovar Typhimurium. The presence of C. albicans in the mouse gut increased Salmonella caecal colonization and systemic dissemination. We investigated the underlying mechanism and found that Salmonella binds to C. albicans via type 1 fimbriae and uses its type 3 secretion system to deliver effector proteins into C. albicans. A specific effector, SopB, was sufficient to manipulate C. albicans metabolism and trigger the release of millimolar amounts of arginine into the extracellular environment. The released arginine, in turn, induced expression of the type 3 secretion system in Salmonella, increasing its invasion of epithelial cells. C. albicans deficient in arginine production was unable to increase Salmonella virulence. Arginine-producing C. albicans also dampened the inflammatory response during Salmonella infection. Arginine supplementation in the absence of C. albicans increased the systemic spread of Salmonella and decreased the inflammatory response, phenocopying the presence of C. albicans. In summary, we identified C. albicans colonization as a susceptibility factor for disseminated Salmonella infection and arginine as a central metabolite in the cross-kingdom interaction between fungi, bacteria and host.
Insights
The common gut fungus Candida albicans worsens Salmonella infections by releasing arginine, which boosts bacterial invasion and dampens inflammation. This study reveals a key cross-kingdom interaction influencing gut pathogen spread.
Area of Science:
- Microbiology
- Immunology
- Gastroenterology
Background:
- Enteric pathogens interact with the host and microbiota for colonization.
- Interactions between enteric pathogens and commensal bacteria are well-studied.
- The role of commensal fungi in enteric infections is largely unknown.
Purpose of the Study:
- To investigate the impact of Candida albicans (C. albicans) colonization on Salmonella enterica serovar Typhimurium (Salmonella) infection.
- To elucidate the mechanisms underlying the interaction between C. albicans and Salmonella.
Main Methods:
- Mouse models of Salmonella infection with and without C. albicans.
- Analysis of Salmonella binding and effector protein delivery into C. albicans.
- Metabolomic analysis to identify key molecules involved in the interaction.
- Assessment of inflammatory responses and bacterial dissemination.
Main Results:
- C. albicans colonization increased Salmonella colonization and systemic dissemination in mice.
- Salmonella uses type 1 fimbriae and its type 3 secretion system to interact with C. albicans.
- Salmonella effector SopB induced C. albicans to release arginine, enhancing Salmonella invasion and suppressing inflammation.
- Arginine supplementation mimicked the effects of C. albicans in Salmonella-infected mice.
Conclusions:
- C. albicans colonization is a susceptibility factor for disseminated Salmonella infection.
- Arginine is a central metabolite mediating cross-kingdom interactions between C. albicans, Salmonella, and the host.
- Understanding these interactions can inform therapeutic strategies for enteric infections.
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