Active Infection & Immunity Genetics & Molecular Biology

Mechanisms of Gene Flow in Pathogenic Fungi allowing Fungal Adaptation

In plain English

AI plain-English summary

Fungi swap genes through sex, but the molecular machinery controlling this exchange remains largely unknown. This international collaboration aims to uncover the mechanisms that govern fungal mating—including male and female sexuality, fertility, mate choice, and the barriers that split pathogen populations into distinct clades. Without this knowledge, scientists cannot predict how disease-causing fungi will adapt to new hosts or environmental pressures. The researchers will use animal and plant pathogens—both filamentous fungi and yeasts—as models, applying genomic analysis, QTL mapping, CRISPR-Cas9, and barcoding to track gene flow in real time. A second goal examines whether mating-driven gene exchange helps fungi evolve heat resistance, a question with direct relevance to climate change and the potential emergence of new fungal diseases. This is fundamental science. It does not produce a drug or diagnostic tomorrow. But understanding the rules of fungal genetic exchange is a prerequisite for predicting—and potentially disrupting—how pathogens evolve resistance to treatments or jump to new hosts. Past work on fungal mating systems, for example, underpinned the development of antifungal drugs that target reproduction pathways.

View original technical description
Gene flow between individual fungi both within and between populations is a key factor allowing fungi to respond and adapt to hosts and environmental change, because individuals and groups with more favourable combinations of genes are then selected for. However, many of the mechanisms controlling genetic exchange between fungi remain poorly understood. In this international multi-partner collaborative project a key goal is to investigate and determine the underlying molecular mechanisms controlling processes such as fungal male and female sexuality, high crossing fertility, mate choice, and pathogen clade delineation due to incompatibility barriers. All of these impact on the possibility for gene flow and are a fundamental part of the biology of fungal adaptation. For these studies we plan to use selected cross-kingdom animal and plant pathogens, including both filamentous fungi and yeasts as models. Work will draw on recent developments in genomic, QTL/X-QTL, BSA, CRISPR-Cas9 and barcoding analyses which offer breakthrough possibilities to study these topics. In addition, a second goal is to examine how gene flow through mating might impact on fungal adaptation regarding resistance to heat, with implications for the threat of emergence of fungal disease linked to climate change. Key words: Sexual Reproduction, Parasexuality, Gene Flow, Adaptation

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Researchers

Brenda Wingfield (EPMC Awardee)Jasmine Ono (EPMC Awardee)Michael Bottery (EPMC Awardee)Paul Dyer (EPMC Awardee)

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Original classification

Biology of Fungal Adaptation

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