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Nonlinear instability in flagellar dynamics: a novel modulation mechanism in sperm migration?

Abstract:
Throughout biology, cells and organisms use flagella and cilia to propel fluid and achieve motility. The beating of these organelles, and the corresponding ability to sense, respond to and modulate this beat is central to many processes in health and disease. While the mechanics of flagellum-fluid interaction has been the subject of extensive mathematical studies, these models have been restricted to being geometrically linear or weakly nonlinear, despite the high curvatures observed physiologically. We study the effect of geometrical nonlinearity, focusing on the spermatozoon flagellum. For a wide range of physiologically relevant parameters, the nonlinear model predicts that flagellar compression by the internal forces initiates an effective buckling behaviour, leading to a symmetry-breaking bifurcation that causes profound and complicated changes in the waveform and swimming trajectory, as well as the breakdown of the linear theory. The emergent waveform also induces curved swimming in an otherwise symmetric system, with the swimming trajectory being sensitive to head shape-no signalling or asymmetric forces are required. We conclude that nonlinear models are essential in understanding the flagellar waveform in migratory human sperm; these models will also be invaluable in understanding motile flagella and cilia in other systems.
Publication status:
Published

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Publisher copy:
10.1098/rsif.2010.0136

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Role:
Author


Journal:
Journal of the Royal Society, Interface / the Royal Society More from this journal
Volume:
7
Issue:
53
Pages:
1689-1697
Publication date:
2010-12-01
DOI:
EISSN:
1742-5662
ISSN:
1742-5689


Language:
English
Keywords:
Pubs id:
pubs:54754
UUID:
uuid:4c9ddf07-4141-4665-b9f7-ce34097fa952
Local pid:
pubs:54754
Source identifiers:
54754
Deposit date:
2012-12-19
ARK identifier:

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