Active Infection & Immunity

RNAi in Candida albicans: adaptation, commensalism and pathogenesis

In plain English

AI plain-English summary

A fungus that lives harmlessly in most human guts can turn deadly, and a newly discovered molecular pathway may explain how it makes that switch. The yeast *Candida albicans* is carried by most people without causing trouble, but in hospitalised or immunocompromised patients it can cause life-threatening bloodstream infections. Until recently, researchers assumed this fungus lacked the RNA interference (RNAi) pathway — a system cells use to silence genes. The team has now found that RNAi is active in *C. albicans* and appears to keep the fungus in its harmless state by helping the immune system recognise it and by maintaining balance with other gut microbes. Understanding exactly how RNAi controls this adaptation could reveal why the fungus sometimes turns pathogenic. This is fundamental science. It will not produce a drug or diagnostic test tomorrow. But it fills a critical gap: we do not know what keeps a common gut fungus peaceful, or what flips it to dangerous. If the team can map the RNAi mechanism, future work might target that pathway to prevent infections without killing beneficial bacteria — a strategy that could reduce reliance on broad-spectrum antifungals. Similar fundamental discoveries about gene silencing in other organisms have already spawned entire classes of therapeutics.

View original technical description
Fungi living in the human gut must adapt to constantly fluctuating environments, which determine whether they remain harmless commensals or become dangerous pathogens. Understanding the mechanisms behind this adaptation is crucial to combating emerging fungal infections. This proposal focuses on Candida albicans, a common gut commensal capable of transitioning into a life-threatening pathogen. Its ability to adapt to the dynamic gut environment is central to this transition, yet much of the underlying mechanistic basis remains poorly understood. We have recently identified a functional RNA interference (RNAi) pathway in C. albicans, overturning the assumption that this pathway is non-functional in this pathogen. Our unpublished data suggest that RNAi is critical for gut adaptation, reducing its pathogenic potential by enabling immune recognition and maintaining fungal-microbiome balance. By integrating expertise in RNAi and epigenetics (Buscaino – Kent Fungal Group, University of Kent), fungal metabolism and immune interactions (Traven – Monash University), and gut microbial ecology (Foster – University of Oxford), we aim to uncover how RNAi regulates fungal adaptation and shapes interactions between the fungus, host, and microbiome. These findings will provide ground-breaking insights into fungal biology and inform innovative strategies to combat infections and promote gut health.

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Researchers

Alessia Buscaino (EPMC Awardee)Ana Traven (EPMC Awardee)Kevin Foster (EPMC Awardee)

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Original classification

Biology of Fungal Adaptation

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