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Live-cell Video Microscopy of Fungal Pathogen Phagocytosis
Published on: January 9, 2013
Candida auris-macrophage cellular interactions and transcriptional response
Pedro Miramón1, Andrew W Pountain2, Michael C Lorenz1
1Department of Microbiology and Molecular Genetics, McGovern Medical School, The University of Texas Health Science Center at Houston , Houston, USA.
Abstract:
The pathogenic yeast Candida auris represents a global threat of the utmost clinical relevance. This emerging fungal species is remarkable in its resistance to commonly used antifungal agents and its persistence in the nosocomial settings. The innate immune system is one the first lines of defense preventing the dissemination of pathogens in the host. C. auris is susceptible to circulating phagocytes, and understanding the molecular details of these interactions may suggest routes to improved therapies. In this work, we examined the interactions of this yeast with macrophages. We found that macrophages avidly phagocytose C. auris; however, intracellular replication is not inhibited, indicating that C. auris resists the killing mechanisms imposed by the phagocyte. Unlike Candida albicans, phagocytosis of C. auris does not induce macrophage lysis. The transcriptional response of C. auris to macrophage phagocytosis is very similar to other members of the CUG clade (C. albicans, C. tropicalis, C. parapsilosis, C. lusitaniae), i.e., downregulation of transcription/translation and upregulation of alternative carbon metabolism pathways, transporters, and induction of oxidative stress response and proteolysis. Gene family expansions are common in this yeast, and we found that many of these genes are induced in response to macrophage co-incubation. Among these, amino acid and oligopeptide transporters, as well as lipases and proteases, are upregulated. Thus, C. auris shares key transcriptional signatures shared with other fungal pathogens and capitalizes on the expansion of gene families coding for potential virulence attributes that allow its survival, persistence, and evasion of the innate immune system.
Insights
Candida auris evades immune cells by resisting macrophage killing mechanisms. This pathogenic yeast upregulates specific genes, aiding its survival and persistence in the host.
Area of Science:
- Medical Mycology
- Immunology
- Molecular Biology
Background:
- Candida auris is a globally significant pathogenic yeast known for antifungal resistance and hospital persistence.
- The innate immune system, particularly macrophages, is crucial for controlling pathogen dissemination.
- Understanding C. auris interactions with macrophages is vital for developing new therapeutic strategies.
Purpose of the Study:
- To investigate the interaction between Candida auris and macrophages.
- To elucidate the molecular mechanisms underlying C. auris survival within macrophages.
- To compare C. auris transcriptional responses to macrophage phagocytosis with other Candida species.
Main Methods:
- Macrophage phagocytosis assays with C. auris.
- Analysis of intracellular C. auris replication and survival.
- Transcriptional profiling of C. auris during macrophage co-incubation.
Main Results:
- Macrophages efficiently phagocytose C. auris, but fail to inhibit its intracellular replication.
- C. auris does not induce macrophage lysis, unlike Candida albicans.
- C. auris exhibits transcriptional changes similar to other CUG clade yeasts, including suppressed transcription/translation and activated metabolism and stress responses.
- Gene family expansions in C. auris, particularly for transporters, lipases, and proteases, are upregulated during macrophage interaction.
Conclusions:
- Candida auris evades innate immune killing mechanisms by resisting macrophage-mediated destruction.
- The yeast utilizes expanded gene families and specific transcriptional programs to survive and persist within macrophages.
- These findings highlight C. auris's adaptations for immune evasion and underscore its potential as a persistent nosocomial pathogen.

