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Updated: Jul 1, 2025

Determination of Biofilm Initiation on Virus-infected Cells by Bacteria and Fungi
Published on: July 6, 2016
Candida auris undergoes adhesin-dependent and -independent cellular aggregation
Chloe Pelletier1,2, Sophie Shaw3, Sakinah Alsayegh1
1Institute of Medical Sciences (IMS), University of Aberdeen, Aberdeen, United Kingdom.
Abstract:
Candida auris is a fungal pathogen of humans responsible for nosocomial infections with high mortality rates. High levels of resistance to antifungal drugs and environmental persistence mean these infections are difficult to treat and eradicate from a healthcare setting. Understanding the life cycle and the genetics of this fungus underpinning clinically relevant traits, such as antifungal resistance and virulence, is of the utmost importance to develop novel treatments and therapies. Epidemiological and genomic studies have identified five geographical clades (I-V), which display phenotypic and genomic differences. Aggregation of cells, a phenotype primarily of clade III strains, has been linked to reduced virulence in some infection models. The aggregation phenotype has thus been associated with conferring an advantage for (skin) colonisation rather than for systemic infection. However, strains with different clade affiliations were compared to infer the effects of different morphologies on virulence. This makes it difficult to distinguish morphology-dependent causes from clade-specific or even strain-specific genetic factors. Here, we identify two different types of aggregation: one induced by antifungal treatment which is a result of a cell separation defect; and a second which is controlled by growth conditions and only occurs in strains with the ability to aggregate. The latter aggregation type depends on an ALS-family adhesin which is differentially expressed during aggregation in an aggregative C. auris strain. Finally, we demonstrate that macrophages cannot clear aggregates, suggesting that aggregation might after all provide a benefit during systemic infection and could facilitate long-term persistence in the host.
Insights
Candida auris cell aggregation, previously linked to lower virulence, may actually aid systemic infection and host persistence. This study differentiates aggregation types, revealing a new role for this fungal trait.
Area of Science:
- Medical Mycology
- Infectious Diseases
- Antimicrobial Resistance
Background:
- Candida auris is a multidrug-resistant fungal pathogen causing severe nosocomial infections.
- Its environmental persistence and resistance complicate treatment and eradication.
- Understanding C. auris genetics and life cycle is crucial for developing new therapies.
Purpose of the Study:
- To investigate the role of cell aggregation in Candida auris virulence and infection.
- To differentiate between various aggregation mechanisms and their impact.
- To determine if aggregation influences host immune response and persistence.
Main Methods:
- Comparative analysis of aggregation phenotypes across different Candida auris clades and growth conditions.
- Identification of genetic factors, including adhesins, involved in aggregation.
- Macrophage-based assays to assess the clearance of aggregated fungal cells.
Main Results:
- Two distinct aggregation types were identified: one linked to antifungal-induced cell separation defects and another controlled by growth conditions.
- Aggregation controlled by growth conditions involves an ALS-family adhesin.
- Macrophages were unable to effectively clear aggregated C. auris cells.
Conclusions:
- Cell aggregation in Candida auris is not solely linked to reduced virulence and may be advantageous for systemic infection.
- Aggregation could facilitate long-term host persistence.
- Further research into aggregation mechanisms is needed for targeted therapeutic strategies.
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