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Main Authors: Feng, Wei, Dang, Fanglong, Luo, Hao, Tsang, Alan C. H., Liu, Yanan, Jing, Guangyin
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2601.16721
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author Feng, Wei
Dang, Fanglong
Luo, Hao
Tsang, Alan C. H.
Liu, Yanan
Jing, Guangyin
author_facet Feng, Wei
Dang, Fanglong
Luo, Hao
Tsang, Alan C. H.
Liu, Yanan
Jing, Guangyin
contents The intricate wobbling motion of flagellated bacteria, characterized by the periodic precession of the cell body, is a determinant factor in their motility and navigation within complex fluid environments. While well-studied in quiescent fluids, bacterial wobbling under ubiquitous flow conditions remains unexplored. In this work, we investigate the wobbling dynamics of \textit{Escherichia coli} swimming near surfaces under steady shear flow. Our experiments reveal that the wobbling amplitude intensifies with flow strength before reaching a plateau, with this amplification exhibiting a strong dependence on the swimming orientation relative to the flow direction. It turns out that the enhanced wobbling remains governed by the misalignment between the cell body and the flagellar bundle. Furthermore, we observe that the wobbling frequency increases monotonically with flow strength, and that shorter bacteria exhibit more pronounced variations in both amplitude and frequency. By linking the wobbling motion to the intrinsic body-flagella misalignment, we attribute the flow-enhanced precession to a combination of shear- and chirality-induced torques acting on the flexible flagellar hook. This mechanical coupling ultimately suppresses the net migration velocity as the flow rate increases. These findings elucidate the elastohydrodynamic mechanisms by which shear flow modifies bacterial locomotion near surfaces, with implications for microbial transport in physiological and ecological environments.
format Preprint
id arxiv_https___arxiv_org_abs_2601_16721
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Shear-Induced Wobbling and Motility Suppression in Swimming Bacteria
Feng, Wei
Dang, Fanglong
Luo, Hao
Tsang, Alan C. H.
Liu, Yanan
Jing, Guangyin
Soft Condensed Matter
The intricate wobbling motion of flagellated bacteria, characterized by the periodic precession of the cell body, is a determinant factor in their motility and navigation within complex fluid environments. While well-studied in quiescent fluids, bacterial wobbling under ubiquitous flow conditions remains unexplored. In this work, we investigate the wobbling dynamics of \textit{Escherichia coli} swimming near surfaces under steady shear flow. Our experiments reveal that the wobbling amplitude intensifies with flow strength before reaching a plateau, with this amplification exhibiting a strong dependence on the swimming orientation relative to the flow direction. It turns out that the enhanced wobbling remains governed by the misalignment between the cell body and the flagellar bundle. Furthermore, we observe that the wobbling frequency increases monotonically with flow strength, and that shorter bacteria exhibit more pronounced variations in both amplitude and frequency. By linking the wobbling motion to the intrinsic body-flagella misalignment, we attribute the flow-enhanced precession to a combination of shear- and chirality-induced torques acting on the flexible flagellar hook. This mechanical coupling ultimately suppresses the net migration velocity as the flow rate increases. These findings elucidate the elastohydrodynamic mechanisms by which shear flow modifies bacterial locomotion near surfaces, with implications for microbial transport in physiological and ecological environments.
title Shear-Induced Wobbling and Motility Suppression in Swimming Bacteria
topic Soft Condensed Matter
url https://arxiv.org/abs/2601.16721