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Propulsion Contribution from Individual Filament in Flagellar Bundle

Flagellated microorganisms overcome the low-Reynolds-number time reversibility by rotating helical flagella. For peritrichous bacteria, such as Escherichia coli, the randomly distributed flagellar filaments align along the same direction to form a bundle, facilitating complex locomotive strategies....

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Published in:arXiv.org 2024-07
Main Authors: Zhu, Jin, Qiao, Yateng, Lingchun Yan, Zeng, Yan, Wu, Yibo, Bian, Hongyi, Huang, Yidi, Ye, Yuxin, Huang, Yingyue, Russell Hii Ching Wei, Teng, Yinuo, Guo, Yunlong, Li, Gaojin, Qu, Zijie
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container_title arXiv.org
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creator Zhu, Jin
Qiao, Yateng
Lingchun Yan
Zeng, Yan
Wu, Yibo
Bian, Hongyi
Huang, Yidi
Ye, Yuxin
Huang, Yingyue
Russell Hii Ching Wei
Teng, Yinuo
Guo, Yunlong
Li, Gaojin
Qu, Zijie
description Flagellated microorganisms overcome the low-Reynolds-number time reversibility by rotating helical flagella. For peritrichous bacteria, such as Escherichia coli, the randomly distributed flagellar filaments align along the same direction to form a bundle, facilitating complex locomotive strategies. To understand the process of flagella bundling, especially the propulsion force, we develop a multi-functional macroscopic experimental system and employ advanced numerical simulations for verification. Flagella arrangements and phase differences between helices are investigated, revealing the variation in propulsion contribution from the individual helix. Numerically, we build a time-dependent model to match the bundling process and study the influence of hydrodynamic interactions. Surprisingly, it is found that the total propulsion generated by a bundle of two filaments is constant at various phase differences between the helices. However, the difference between the propulsion from each helix is significantly affected by the phase difference, and only one of the helices is responsible for the total propulsion at a phase difference equals to pi. Through our experimental and computational results, we provide a new model considering the propulsion contribution of each filament to better understand microbial locomotion mechanisms, especially on the wobbling behavior of the cell. Our work also sheds light on the design and control of artificial microswimmers.
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subjects Bundling
Coliforms
E coli
Filaments
Helices
Locomotion
Microorganisms
Phase shift
Propulsion
Time dependence
title Propulsion Contribution from Individual Filament in Flagellar Bundle
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