Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.

Microorganisms, particularly parasites, have developed sophisticated swimming mechanisms to cope with a varied range of environments. African Trypanosomes, causative agents of fatal illness in humans and animals, use an insect vector (the Tsetse fly) to infect mammals, involving many developmental c...

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Main Authors: Sravanti Uppaluri, Jan Nagler, Eric Stellamanns, Niko Heddergott, Stephan Herminghaus, Markus Engstler, Thomas Pfohl
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-06-01
Series:PLoS Computational Biology
Online Access:http://europepmc.org/articles/PMC3116898?pdf=render
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spelling doaj-ee08a696a67f4abb971b2c1acafd65c82020-11-25T02:43:14ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582011-06-0176e100205810.1371/journal.pcbi.1002058Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.Sravanti UppaluriJan NaglerEric StellamannsNiko HeddergottStephan HerminghausMarkus EngstlerThomas PfohlMicroorganisms, particularly parasites, have developed sophisticated swimming mechanisms to cope with a varied range of environments. African Trypanosomes, causative agents of fatal illness in humans and animals, use an insect vector (the Tsetse fly) to infect mammals, involving many developmental changes in which cell motility is of prime importance. Our studies reveal that differences in cell body shape are correlated with a diverse range of cell behaviors contributing to the directional motion of the cell. Straighter cells swim more directionally while cells that exhibit little net displacement appear to be more bent. Initiation of cell division, beginning with the emergence of a second flagellum at the base, correlates to directional persistence. Cell trajectory and rapid body fluctuation correlation analysis uncovers two characteristic relaxation times: a short relaxation time due to strong body distortions in the range of 20 to 80 ms and a longer time associated with the persistence in average swimming direction in the order of 15 seconds. Different motility modes, possibly resulting from varying body stiffness, could be of consequence for host invasion during distinct infective stages.http://europepmc.org/articles/PMC3116898?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Sravanti Uppaluri
Jan Nagler
Eric Stellamanns
Niko Heddergott
Stephan Herminghaus
Markus Engstler
Thomas Pfohl
spellingShingle Sravanti Uppaluri
Jan Nagler
Eric Stellamanns
Niko Heddergott
Stephan Herminghaus
Markus Engstler
Thomas Pfohl
Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.
PLoS Computational Biology
author_facet Sravanti Uppaluri
Jan Nagler
Eric Stellamanns
Niko Heddergott
Stephan Herminghaus
Markus Engstler
Thomas Pfohl
author_sort Sravanti Uppaluri
title Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.
title_short Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.
title_full Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.
title_fullStr Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.
title_full_unstemmed Impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.
title_sort impact of microscopic motility on the swimming behavior of parasites: straighter trypanosomes are more directional.
publisher Public Library of Science (PLoS)
series PLoS Computational Biology
issn 1553-734X
1553-7358
publishDate 2011-06-01
description Microorganisms, particularly parasites, have developed sophisticated swimming mechanisms to cope with a varied range of environments. African Trypanosomes, causative agents of fatal illness in humans and animals, use an insect vector (the Tsetse fly) to infect mammals, involving many developmental changes in which cell motility is of prime importance. Our studies reveal that differences in cell body shape are correlated with a diverse range of cell behaviors contributing to the directional motion of the cell. Straighter cells swim more directionally while cells that exhibit little net displacement appear to be more bent. Initiation of cell division, beginning with the emergence of a second flagellum at the base, correlates to directional persistence. Cell trajectory and rapid body fluctuation correlation analysis uncovers two characteristic relaxation times: a short relaxation time due to strong body distortions in the range of 20 to 80 ms and a longer time associated with the persistence in average swimming direction in the order of 15 seconds. Different motility modes, possibly resulting from varying body stiffness, could be of consequence for host invasion during distinct infective stages.
url http://europepmc.org/articles/PMC3116898?pdf=render
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