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Spiral-Sensing and Fold-Change Detection Direct Ascidian Sperm to the Egg

Iima, M.; Shiba, K.; Yoshida, M.; Inaba, K.; Nakagaki, T.

2025-09-17 cell biology
10.1101/2025.09.16.676465 bioRxiv
Show abstract

From microorganisms to marine sperm, successful navigation toward chemical cues relies on the integration of sensory inputs with locomotion. Ascidian sperms exhibit a robust chemotactic strategy by swimming along circular paths whose centres form large-scale spirals, guiding them toward attractant-releasing eggs. Although their intracellular Ca2+ dynamics exhibit rhythmic bursts aligned with flagellar modulation, the underlying computational principles remain unclear. Here, we propose a minimal model that captures ascidian sperm chemotaxis through a combination of swimming trajectory control and an internal signalling model with fold-change detection (FCD). This model responds to relative rather than absolute changes in the stimulus concentration, achieving scale-invariant signal processing. Concurrently, the spiral swimming path enables spatial sampling of the concentration field, allowing the cell to infer gradient direction. Our findings demonstrate that the integration of a resilient signalling module and physically structured sampling trajectory enables effective chemotaxis in complex environments.

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