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Thery, A.

Publications and source records attributed to Thery, A..

2 recordsLinked to original sources

Emergent particle collection by cyanobacteria through gliding motility and filament buckling

Cyanobacterial macrostructures such as mats, aggregates, and stromatolites are observed in diverse habitats. These structures incorporate organic and inorganic matter and form microenvironments enabling biochemical transformations. Macrostructures are found to be associated with motile, filamentous cyanobacteria, but to what extent, and how filament motility can drive macrostructure formation is unclear. To address this question, we study macrostructure formation in a well-characterised freshwater cyanobacterial community dominated by the filamentous cyanobacterium Fluctiforma draycotensis. We discover an emergent particle collection behaviour that results in aggregate macrostructures composed of a solid core surrounded by an outer layer dominated by entangled cyanobacterial filaments. We show that the particle collection and subsequent aggregate formation result from the gliding motility of the cyanobacteria. Developing a novel 3D model of active filament movement, we analyse how filament morphology and mechanical properties affect movement dynamics, particle collection, and filament entanglement. We predict that particle collection requires filaments above a certain length and flexibility. We confirm the resulting prediction of length dependence of particle collection behavior with shortened filaments of F. draycotensis and naturally short Pseudanabaena sp. filaments. Together, our results show that filamentous cyanobacteria can use gliding motility to actively engineer their environments through particle collection and macrostructure formation, and that this ability is confined to a part of the filament phase space in terms of length and flexibility. These insights will allow better prediction of macrostructure formation in natural habitats and specific cyanobacterial species, and the engineering of cyanobacterial macrostructures for biotechnological applications.

biophysics↗

Controlling confined collective organisation with taxis

Biased locomotion is a common feature of microorganisms, but little is known about its impact on self-organisation. Inspired by recent experiments showing a transition to large-scale flows, we study theoretically the dynamics of magnetotactic bacteria confined to a drop. We reveal two symmetry-breaking mechanisms (one local chiral and one global achiral) leading to self-organisation into global vortices and a net torque exerted on the drop. The collective behaviour is ultimately controlled by the swimmers microscopic chirality and, strikingly, the system can exhibit oscillations and memory-like features.

biophysics↗