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February 28, 2026Proceedings of the National Academy of Sciences0 citationsOpen Access

Chiral gliding: Right-handed navigation of filamentous cyanobacteria

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AVAndrej VilfanLALeila AbbaspourSVStefano Villa

Key Points

  • To investigate the gliding motility and navigation of filamentous cyanobacteria in different environments.
  • Studied Lyngbya lagerheimii's gliding behavior on dry surfaces.
  • Analyzed the curvature and direction of filament movement during navigation.
  • Developed a model explaining the mechanism of chiral motility and navigation.
  • Filaments adopt a curved shape that turns right while gliding on dry surfaces.
  • Filaments can turn left by backtracking along a slime trace, preserving initial curvature.
  • Proposed a model of chiral motility based on right-handed rotation and velocity differences.

Abstract

Cyanobacteria are the earliest known organisms that produced oxygen through photosynthesis, leading to the oxygen atmosphere that allowed the evolution of more complex life forms. Many species of cyanobacteria exhibit gliding motility along surfaces to navigate complex environments and adapt to fluctuating conditions. Here, we studied the gliding motility of filamentous cyanobacteria Lyngbya lagerheimii at the transition between different physical environments. We show that on a dry surface, a filament adopts a curved shape that turns right while gliding. When a filament switches the gliding direction, the curvature is initially preserved and a filament can turn left as long as it backtracks along a slime trace. We propose a model of chiral motility that explains the bending based on the right-handed rotation of gliding filaments and a velocity mismatch between the leading and the trailing end of the filament. The mechanism involves a unique way of transferring the structural chirality to the macroscale and also a unique physical navigation mechanism.

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Cite This Study

Vilfan et al. (2026) studied this question.

synapsesocial.com/papers/69a2877b0a974eb0d3c03340https://doi.org/10.1073/pnas.2534547123
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