Completed Genetics & Molecular Biology Infection & Immunity

Dynamic regulation of mRNA processing in adapting fungi

In plain English

AI plain-English summary

Fungi rewire their messenger RNA to survive stressful changes in their environment, and this project will decode the molecular rules behind that process. Understanding how fungi adapt is critical because fungal pathogens pose a growing global threat to human health, yet the basic mechanisms that allow them to sense stress and reorganise their gene expression remain poorly understood. The researcher will combine mechanistic studies, high-throughput biology, and machine learning to tackle three linked questions: which sequences in an mRNA’s regulatory tail control its localisation, translation, and decay under stress; how the conserved RNA-binding protein Ssd1 enables stress tolerance and virulence; and how the pathogen *Cryptococcus neoformans* begins infecting a human lung. This is fundamental science. If successful, it will reveal the regulatory logic fungi use to survive hostile environments, potentially identifying new molecular targets for antifungal drugs. Deeper knowledge of mRNA processing in adapting cells could also inform broader understanding of how organisms—including humans—respond to stress, though no immediate practical application is expected.

View original technical description
Fungi detect and adapt to stressful environmental changes by reorganizing their messenger RNA (mRNA) and protein. Better understanding of how this works is essential to counter the global human health threat from fungal pathogens. I propose three interlinked aims that bring together mechanistic insight, high-throughput biology, and machine learning to investigate this: 1. Which sequences in the terminal/3’ regulatory region (3’UTR) of an mRNA encode its stress-responsive localization, translation, and decay? I will synthesize a large library of chimeric mRNAs, measure their mRNA processing in Saccharomyces cerevisiae by RNA sequencing, and use modelling to find out which combinations of sequence and stress inputs drive which outputs. 2. How does the conserved RNA-binding protein Ssd1 enable fungal stress tolerance and virulence? Ssd1 is essential for fungi to survive stress, regulating specific mRNAs through their 3’UTRs, but its exact RNA-binding sites are unknown. I will measure these sites, before and after stress, to discover Ssd1’s mechanism of action. 3. How does the fungal pathogen Cryptococcus neoformans begin infecting a human lung? I will use RNA sequencing and other high-throughput approaches to characterize the transcriptional and post-transcriptional processes enabling C. neoformans to adapt and grow in a lung-like environment.

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Researchers

Edward Wallace (EPMC Awardee)

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Original classification

Sir Henry Dale Fellowship

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