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相关论文: Dynamic stiffening of the flagellar hook

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We combine experiments with simulations to investigate the fluid-structure interaction of a flexible helical rod rotating in a viscous fluid, under low Reynolds number conditions. Our analysis takes into account the coupling between the…

软凝聚态物质 · 物理学 2015-10-28 M. K. Jawed , N. K. Khouri , F. Da , E. Grinspun , P. M. Reis

Motivated by the intriguing motility of spirochetes (helically-shaped bacteria that screw through viscous fluids due to the action of internal periplasmic flagella), we examine the fundamental fluid dynamics of superhelices translating and…

流体动力学 · 物理学 2009-11-13 Sunghwan Jung , Kathleen Mareck , Lisa Fauci , Michael J. Shelley

To rotate continuously without jamming, the flagellar filaments of bacteria need to be locked in phase. While several models have been proposed for eukaryotic flagella, the synchronization of bacterial flagella is less well understood.…

软凝聚态物质 · 物理学 2022-05-27 Maria Tătulea-Codrean , Eric Lauga

Most motile bacteria swim in viscous fluids by rotating multiple helical flagellar filaments. These semi-rigid filaments repeatedly join ('bundle') and separate ('unbundle'), resulting in a two-gait random walk-like motion of the cell. In…

流体动力学 · 物理学 2020-11-18 Alexander Chamolly , Eric Lauga

We study a synthetic system of motile Escherichia coli bacteria encapsulated inside giant lipid vesicles. Forces exerted by the bacteria on the inner side of the membrane are sufficient to extrude membrane tubes filled with one or several…

The course of a peritrichous bacterium such as E. coli crucially depends on the level of synchronization and self-organization of several rotating flagella. However, the rotation of each flagellum generates counter body movements which in…

生物物理 · 物理学 2015-11-11 Tapan Chandra Adhyapak , Holger Stark

Many bacteria use rotating helical flagellar filaments to swim. The filaments undergo polymorphic transformations in which the helical pitch and radius change abruptly. These transformations arise in response to mechanical loading, changes…

软凝聚态物质 · 物理学 2010-05-26 Srikanth V. Srigiriraju , Thomas R. Powers

Motile bacteria are a wonder of nature's engineering: microscopic engines that transduce biochemical energy into the work they require to explore their environment. This added energy turns the surrounding fluid into a bath that departs from…

软凝聚态物质 · 物理学 2025-04-30 Daniel Grober , Tanumoy Dhar , David Saintillan , Jérémie Palacci

Motivated by bacterial transport through porous media, here we study the swimming of an actuated, flexible helical filament in both three-dimensional free space and within a cylindrical tube whose diameter is much smaller than the length of…

软凝聚态物质 · 物理学 2019-03-28 John LaGrone , Ricardo Cortez , Lisa Fauci

To initiate tumbling of an E. coli, one of the helical flagella reverses its sense of rotation. It then transforms from its normal form first to the transient semicoiled state and subsequently to the curly-I state. The dynamics of…

生物物理 · 物理学 2016-02-23 Tapan Chandra Adhyapak , Holger Stark

E. coli bacteria swim following a run and tumble pattern. In the run state all flagella join in a single helical bundle that propels the cell body along approximately straight paths. When one or more flagellar motors reverse direction the…

软凝聚态物质 · 物理学 2015-07-01 S. Bianchi , F. Saglimbeni , A. Lepore , R. Di Leonardo

A wide range of microorganisms, e.g. bacteria, propel themselves by rotation of soft helical tails, also known as flagella. Due to the small size of these organisms, viscous forces overwhelm inertial effects and the flow is at low Reynolds…

机器人学 · 计算机科学 2021-03-11 Yayun Du , Andrew Miller , Mohammad Khalid Jawed

Flexible filaments moving in viscous fluids are ubiquitous in the natural microscopic world. For example, the swimming of bacteria and spermatozoa as well as important physiological functions at organ-level, such as the cilia-induced motion…

软凝聚态物质 · 物理学 2019-06-05 Panayiota Katsamba , Eric Lauga

Peritrichous bacteria such as Escherichia coli swim in viscous fluids by forming a helical bundle of flagellar filaments. The filaments are spatially distributed around the cell body to which they are connected via a flexible hook. To…

生物物理 · 物理学 2019-06-19 Kenta Ishimoto , Eric Lauga

Recent experiments proposed to use confined bacteria in order to generate flows near surfaces. We develop a mathematical and a computational model of this fluid transport using a linear superposition of fundamental flow singularities. The…

生物物理 · 物理学 2018-02-27 Justas Dauparas , Debasish Das , Eric Lauga

In bacterial chemotaxis, E. coli cells drift up chemical gradients by a series of runs and tumbles. Runs are periods of directed swimming, and tumbles are abrupt changes in swimming direction. Near the beginning of each run, the rotating…

软凝聚态物质 · 物理学 2009-11-07 Thomas R. Powers

Marine bacterium Vibrio alginolyticus uses a single polar flagellum to navigate in an aqueous environment. Similar to Escherichia coli cells, the polar flagellar motor has two states; when the motor is counter-clockwise, the cell swims…

生物物理 · 物理学 2016-02-17 Li Xie , Tuba Altindal , Xiao-Lun Wu

Although the motility of the flagellated bacteria, Escherichia coli, has been widely studied, the effect of viscosity on swimming speed remains controversial. The swimming mode of wild-type E.coli is often idealized as a "run-and- tumble"…

生物物理 · 物理学 2018-05-09 Zijie Qu , Fatma Zeynep Temel , Rene Henderikx , Kenneth S. Breuer

The natural habitats of microorganisms in the human microbiome and ocean and soil ecosystems are full of colloids and macromolecules, which impart non-Newtonian flow properties drastically affecting the locomotion of swimming…

软凝聚态物质 · 物理学 2022-04-01 Shashank Kamdar , Seunghwan Shin , Lorraine F. Francis , Xinliang Xu , Xiang Cheng

Force-induced reversible transformations between coiled and normal polymorphs of bacterial flagella have been observed in recent optical-tweezer experiment. We introduce a discrete elastic rod model with two competing helical states…

软凝聚态物质 · 物理学 2008-04-08 Hirofumi Wada , Roland R. Netz