bioRxiv · 10.1101/2025.10.19.683311
Hydrodynamic coupling drives bacterial flagellar synchrony
Abstract
Synchronization is a fundamental phenomenon observed across a wide range of physical, chemical, and biological systems. Even under the low-Reynolds-number conditions that govern microbial motility, synchronization of rhythmic processes is considered essential for diverse activities ranging from single cells to populations, yet experimental evidence remains scarce. Here, we performed rotation measurements of microbeads attached to two truncated bacterial flagella and observed the emergence of phase synchronization between these nanoscale active motors. The resulting intermittent in-phase synchronization was analyzed using a hydrodynamic model incorporating elastic deformation of the flagella, showing that stronger hydrodynamic coupling promotes more stable phase-locking. This study experimentally demonstrates fluid-mediated biological synchronization using bacterial rotary machinery, deepening our understanding of the physical principles underlying rhythmic phenomena and self-organization in living systems.
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Ishihara, T., Uchida, N., Nakamura, S.. 2025-10-19. Hydrodynamic coupling drives bacterial flagellar synchrony. https://doi.org/10.1101/2025.10.19.683311
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