Literature DB >> 15691543

A study of bacterial flagellar bundling.

Heather Flores1, Edgar Lobaton, Stefan Méndez-Diez, Svetlana Tlupova, Ricardo Cortez.   

Abstract

Certain bacteria, such as Escherichia coli (E. coli) and Salmonella typhimurium (S. typhimurium), use multiple flagella often concentrated at one end of their bodies to induce locomotion. Each flagellum is formed in a left-handed helix and has a motor at the base that rotates the flagellum in a corkscrew motion. We present a computational model of the flagellar motion and their hydrodynamic interaction. The model is based on the equations of Stokes flow to describe the fluid motion. The elasticity of the flagella is modeled with a network of elastic springs while the motor is represented by a torque at the base of each flagellum. The fluid velocity due to the forces is described by regularized Stokeslets and the velocity due to the torques by the associated regularized rotlets. Their expressions are derived. The model is used to analyze the swimming motion of a single flagellum and of a group of three flagella in close proximity to one another. When all flagellar motors rotate counterclockwise, the hydrodynamic interaction can lead to bundling. We present an analysis of the flow surrounding the flagella. When at least one of the motors changes its direction of rotation, the same initial conditions lead to a tumbling behavior characterized by the separation of the flagella, changes in their orientation, and no net swimming motion. The analysis of the flow provides some intuition for these processes.

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Year:  2005        PMID: 15691543     DOI: 10.1016/j.bulm.2004.06.006

Source DB:  PubMed          Journal:  Bull Math Biol        ISSN: 0092-8240            Impact factor:   1.758


  16 in total

1.  Stochastic coordination of multiple actuators reduces latency and improves chemotactic response in bacteria.

Authors:  Michael W Sneddon; William Pontius; Thierry Emonet
Journal:  Proc Natl Acad Sci U S A       Date:  2011-12-27       Impact factor: 11.205

2.  Diffusion of Bacterial Cells in Porous Media.

Authors:  Nicholas A Licata; Bitan Mohari; Clay Fuqua; Sima Setayeshgar
Journal:  Biophys J       Date:  2016-01-05       Impact factor: 4.033

3.  A fluid-dynamic interpretation of the asymmetric motion of singly flagellated bacteria swimming close to a boundary.

Authors:  Tomonobu Goto; Kousou Nakata; Kensaku Baba; Masaharu Nishimura; Yukio Magariyama
Journal:  Biophys J       Date:  2005-09-08       Impact factor: 4.033

4.  A theoretical model of Aquifex pyrophilus flagellin: implications for its thermostability.

Authors:  V Raghu Ram Malapaka; Brian C Tripp
Journal:  J Mol Model       Date:  2006-01-13       Impact factor: 1.810

5.  Modeling polymorphic transformation of rotating bacterial flagella in a viscous fluid.

Authors:  William Ko; Sookkyung Lim; Wanho Lee; Yongsam Kim; Howard C Berg; Charles S Peskin
Journal:  Phys Rev E       Date:  2017-06-14       Impact factor: 2.529

6.  The physics of flagellar motion of E. coli during chemotaxis.

Authors:  M Siva Kumar; P Philominathan
Journal:  Biophys Rev       Date:  2009-12-18

7.  Mesoscopic modeling of bacterial flagellar microhydrodynamics.

Authors:  Yeshitila Gebremichael; Gary S Ayton; Gregory A Voth
Journal:  Biophys J       Date:  2006-08-25       Impact factor: 4.033

8.  Coupling biochemistry and hydrodynamics captures hyperactivated sperm motility in a simple flagellar model.

Authors:  Sarah D Olson; Susan S Suarez; Lisa J Fauci
Journal:  J Theor Biol       Date:  2011-06-07       Impact factor: 2.691

9.  Hydrodynamics of a self-actuated bacterial carpet using microscale particle image velocimetry.

Authors:  Hoyeon Kim; U Kei Cheang; Dalhyung Kim; Jamel Ali; Min Jun Kim
Journal:  Biomicrofluidics       Date:  2015-04-23       Impact factor: 2.800

10.  The hydrodynamics of a run-and-tumble bacterium propelled by polymorphic helical flagella.

Authors:  Nobuhiko Watari; Ronald G Larson
Journal:  Biophys J       Date:  2010-01-06       Impact factor: 4.033

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