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Synapse
September 10, 2025Stresses0 citationsOpen Access

Timing Is Everything: The Fungal Circadian Clock as a Master Regulator of Stress Response and Pathogenesis

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VCVíctor Coca-RuizDBDaniel Boy‐Ruiz

Key Points

  • The fungal circadian clock significantly impacts the ability of fungi to manage stress and pathogenicity.
  • Key evidence shows various fungi use the transcription-translation feedback loop to optimize their stress responses.
  • Analysis indicates how fungal pathogens align their virulence with host vulnerability based on circadian rhythms.
  • Gaps in knowledge persist, especially regarding the circadian systems in less-studied fungal phyla like Basidiomycota.

Abstract

Fungi, from saprophytes to pathogens, face predictable daily fluctuations in light, temperature, humidity, and nutrient availability. To cope, they have evolved an internal circadian clock that confers a major adaptive advantage. This review critically synthesizes current knowledge on the molecular architecture and physiological relevance of fungal circadian systems, moving beyond the canonical Neurospora crassa model to explore the broader phylogenetic diversity of timekeeping mechanisms. We examine the core transcription-translation feedback loop (TTFL) centered on the FREQUENCY/WHITE COLLAR (FRQ/WCC) system and contrast it with divergent and non-canonical oscillators, including the metabolic rhythms of yeasts and the universally conserved peroxiredoxin (PRX) oxidation cycles. A central theme is the clock’s role in gating cellular defenses against oxidative, osmotic, and nutritional stress, enabling fungi to anticipate and withstand environmental insults through proactive regulation. We provide a detailed analysis of chrono-pathogenesis, where the circadian control of virulence factors aligns fungal attacks with windows of host vulnerability, with a focus on experimental evidence from pathogens like Botrytis cinerea, Fusarium oxysporum, and Magnaporthe oryzae. The review explores the downstream pathways—including transcriptional cascades, post-translational modifications, and epigenetic regulation—that translate temporal signals into physiological outputs such as developmental rhythms in conidiation and hyphal branching. Finally, we highlight critical knowledge gaps, particularly in understudied phyla like Basidiomycota, and discuss future research directions. This includes the exploration of novel clock architectures and the emerging, though speculative, hypothesis of “chrono-therapeutics”—interventions designed to disrupt fungal clocks—as a forward-looking concept for managing fungal infections.

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Cite This Study

Coca-Ruiz et al. (2025) studied this question.

synapsesocial.com/papers/68c1b19354b1d3bfb60e8b26https://doi.org/10.3390/stresses5030047
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Also Consider

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