Self-propulsion in an active nematic model produces a non-monotonic ordering effect, with order, defect anti-hyperuniformity, and long-range vorticity correlations all peaking at an intermediate self-propulsion speed.
Local polar order controls mechanical stress and triggers layer formation in developing Myxococcus xanthus colonies
1 Pith paper cite this work, alongside 4 external citations. Polarity classification is still indexing.
abstract
Colonies of the social bacterium Myxococcus xanthus go through a morphological transition from a thin colony of cells to three-dimensional droplet-like fruiting bodies as a strategy to survive starvation. The biological pathways that control the decision to form a fruiting body have been studied extensively. However, the mechanical events that trigger the creation of multiple cell layers and give rise to droplet formation remain poorly understood. By measuring cell orientation, velocity, polarity, and force with cell-scale resolution, we reveal a stochastic local polar order in addition to the more obvious nematic order. Average cell velocity and active force at topological defects agree with predictions from active nematic theory, but their fluctuations are anomalously large due to polar active forces generated by the self-propelled rod-shaped cells. We find that M. xanthus cells adjust their reversal frequency to tune the magnitude of this local polar order, which in turn controls the mechanical stresses and triggers layer formation in the colonies.
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fields
cond-mat.soft 1years
2025 1verdicts
CONDITIONAL 1roles
background 1polarities
unclear 1representative citing papers
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Self-propulsive active nematics
Self-propulsion in an active nematic model produces a non-monotonic ordering effect, with order, defect anti-hyperuniformity, and long-range vorticity correlations all peaking at an intermediate self-propulsion speed.