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Evolutionarily diverse fungal zoospores show contrasting swimming patterns specific to ultrastructure
Luis Javier Galindo1, Thomas A Richards1, Jasmine A Nirody2
1Department of Biology, University of Oxford, Oxford OX1 3SZ, UK.
Abstract:
Zoosporic fungi, also called chytrids, produce single-celled motile spores with flagellar swimming tails (zoospores).1,2 These fungi are key components of aquatic food webs, acting as pathogens, saprotrophs, and prey.3,4,5,6,7,8 Little is known about the swimming behavior of fungal zoospores, a crucial factor governing dispersal, biogeographical range, ecological function, and infection dynamics.6,9 Here, we track the swimming patterns of zoospores from 12 evolutionarily divergent species of zoosporic fungi from across seven orders of the Chytridiomycota and the Blastocladiomycota. We report two major swimming patterns that correlate with the cytoskeletal ultrastructure of these zoospores. Specifically, we show that species without major cytoplasmic tubulin components swim in a circular fashion, while species with prominent cytoplasmic tubulin structures swim in a pattern akin to a random walk (move-stop-redirect-move). We confirm cytoskeletal architecture by performing fluorescence confocal microscopy across all 12 species. We then treat representative species with variant swimming behaviors and cytoplasmic-cytoskeletal arrangements with tubulin-stabilizing (Taxol) and depolymerizing (nocodazole) pharmacological compounds. We observed that when treating the "random walk" species with nocodazole, their swimming behavior changed to a circular-swimming pattern. Confocal imaging of the nocodazole-treated zoospores demonstrates that these cells maintain flagellum tubulin structures but lack their characteristic cytoplasmic tubulin structures. Our data demonstrate that the capability of zoospores to perform "complex" random-walk movement is linked to the presence of prominent cytoplasmic tubulin structures and suggest a link between cytology, sensory systems, and swimming behavior in a diversity of zoosporic fungi.
Insights
Zoosporic fungi (chytrids) exhibit two main swimming patterns, circular or random walk, linked to their internal tubulin structures. This discovery impacts understanding fungal dispersal and infection dynamics.
Area of Science:
- * Mycology
- * Cell Biology
- * Aquatic Ecology
Background:
- * Zoosporic fungi, or chytrids, are vital aquatic microorganisms.
- * Their motile spores (zoospores) are crucial for dispersal and ecological roles.
- * Little is known about the swimming behavior of these fungal zoospores.
Purpose of the Study:
- * To investigate the swimming patterns of fungal zoospores.
- * To correlate swimming behavior with cytoskeletal ultrastructure.
- * To understand the role of tubulin in zoospore motility.
Main Methods:
- * Tracking swimming patterns of zoospores from 12 fungal species.
- * Fluorescence confocal microscopy to confirm cytoskeletal architecture.
- * Pharmacological treatment with tubulin-stabilizing and depolymerizing agents.
Main Results:
- * Two distinct swimming patterns identified: circular and random walk.
- * Circular swimming correlates with absence of major cytoplasmic tubulin.
- * Random walk swimming correlates with prominent cytoplasmic tubulin structures.
- * Depolymerizing cytoplasmic tubulin in random-walking species induced circular swimming.
Conclusions:
- * Cytoplasmic tubulin structures are essential for complex random-walk swimming in zoosporic fungi.
- * Zoospore swimming behavior is linked to cellular structure and potentially sensory systems.
- * Findings advance understanding of fungal dispersal, ecology, and pathogenesis.

