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Nonlinear Dynamics of Cilia and Flagella
- Publication Year :
- 2009
-
Abstract
- Cilia and flagella are hair-like extensions of eukaryotic cells which generate oscillatory beat patterns that can propel micro-organisms and create fluid flows near cellular surfaces. The evolutionary highly conserved core of cilia and flagella consists of a cylindrical arrangement of nine microtubule doublets, called the axoneme. The axoneme is an actively bending structure whose motility results from the action of dynein motor proteins cross-linking microtubule doublets and generating stresses that induce bending deformations. The periodic beat patterns are the result of a mechanical feedback that leads to self-organized bending waves along the axoneme. Using a theoretical framework to describe planar beating motion, we derive a nonlinear wave equation that describes the fundamental Fourier mode of the axonemal beat. We study the role of nonlinearities and investigate how the amplitude of oscillations increases in the vicinity of an oscillatory instability. We furthermore present numerical solutions of the nonlinear wave equation for different boundary conditions. We find that the nonlinear waves are well approximated by the linearly unstable modes for amplitudes of beat patterns similar to those observed experimentally.<br />19 pages, 5 figures
- Subjects :
- Axoneme
Movement
Dynein
Beat (acoustics)
FOS: Physical sciences
Models, Biological
Instability
Quantitative Biology::Cell Behavior
Motor protein
Quantitative Biology::Subcellular Processes
Biological Clocks
Microtubule
Cell Behavior (q-bio.CB)
Computer Simulation
Cilia
Boundary value problem
Physics - Biological Physics
Physics
Mechanics
Nonlinear system
Classical mechanics
Nonlinear Dynamics
Flagella
Biological Physics (physics.bio-ph)
FOS: Biological sciences
Quantitative Biology - Cell Behavior
Subjects
Details
- Language :
- English
- ISSN :
- 15502376
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....aff22c5a06b00499966e94511740dbd9