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Functional morphology of gliding motility in benthic diatoms

2025/03/18 by Karen Grace V. Bondoc, Emanuele Crosato, Kirsty Y. Wan · 2 voices · 4 citations
Materials Science · Earth and Planetary Sciences · Biochemistry, Genetics and Molecular Biology · #Diatoms and Algae Research #Marine and coastal ecosystems #Protist diversity and phylogeny

paper · pdf · doi:10.1073/pnas.2426910122

Abstract

Diatoms, a highly successful group of photosynthetic algae, contribute to a quarter of global primary production. Many species are motile, despite having no appendages and a completely rigid cell body. Cells move to seek out nutrients, locate mating partners, and undergo vertical migration. To explore the natural diversity of diatom motility, we perform a comparative study across five common biofilm-forming species. Combining morphological measurements with high-resolution cell tracking, we establish how gliding movements relate to the morphology of the raphe-a specialized slit in the cell wall responsible for motility generation. Our detailed analyses reveal that cells exhibit a rich but species-dependent phenotype, switching stochastically between four stereotyped motility states. We model this behavior and use stochastic simulations to predict how heterogeneity in microscale navigation patterns leads to differences in long-time diffusivity and dispersal. In a representative species, we extend these findings to quantify diatom gliding in complex, naturalistic 3D environments, suggesting that cells may exploit these distinct motility signatures to achieve niche segregation in nature.

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