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The physical basis of flagellar and ciliary beating is a major problem in biology which is still far from completely understood. The fundamental cytoskeleton structure of cilia and flagella is the axoneme, a cylindrical array of microtubule…

生物物理 · 物理学 2017-03-10 David Oriola , Hermes Gadêlha , Jaume Casademunt

Cilia and flagella are hairlike organelles that propel cells through fluid. The active motion of the axoneme, the motile structure inside cilia and flagella, is powered by molecular motors of the dynein family. These motors generate forces…

亚细胞过程 · 定量生物学 2016-11-02 Pablo Sartori , Veikko Geyer , Jonathon Howard , Frank Jülicher

The bending of cilia and flagella is driven by forces generated by dynein motor proteins. These forces slide adjacent microtubule doublets within the axoneme, the motile cytoskeletal structure. To create regular, oscilla- tory beating…

生物物理 · 物理学 2015-06-19 V. Mukundan , P. Sartori , V. F. Geyer , F. Julicher , J. Howard

Motile cilia are a striking example of functional cellular organelle, conserved across all the eukaryotic species. Motile cilia allow swimming of cells and small organisms and transport of liquids across epithelial tissues. Whilst the…

组织与器官 · 定量生物学 2020-01-13 Pietro Cicuta

Axonemal dyneins are the molecular motors responsible for the beating of cilia and flagella. These motors generate sliding forces between adjacent microtubule doublets within the axoneme, the motile cytoskeletal structure inside the…

生物物理 · 物理学 2015-11-16 Pablo Sartori , Veikko Geyer , Andre Scholich , Frank Jülicher , Jonathon Howard

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…

生物物理 · 物理学 2015-05-13 Andreas Hilfinger , Amit K Chattopadhyay , Frank Julicher

Cilia are ubiquitous organelles involves in eukaryotic motility. They are long, slender, and motile protrusions from the cell body. They undergo active regular oscillatory beating patterns that can propel cells, such as the algae…

亚细胞过程 · 定量生物学 2019-05-13 Pablo Sartori

Most microorganisms use hair-like cilia with asymmetric beating to perform vital bio-physical processes. In this paper, we demonstrate a novel fabrication method for creating magnetic artificial cilia capable of such biologically inspired…

生物物理 · 物理学 2018-06-13 Srinivas Hanasoge , Matthew Ballard , Peter J. Hesketh , Alexander Alexeev

Biological systems are robust to perturbations at both the genetic and environmental levels. Yet, these same perturbations can elicit variation in behavior. The interplay between functional robustness and behavioral variability is…

生物物理 · 物理学 2021-06-03 Veikko Geyer , Jonathon Howard , Pablo Sartori

One of the major challenges of bottom-up synthetic biology is rebuilding a minimal division machinery. The animal cell division apparatus is mechanically the simplest, in which an actin-based ring constricts the membrane, as compared to…

The motility of cilia and flagella is driven by thousands of dynein motors that hydrolyze adenosine triphosphate (ATP). Despite decades of genetic, biochemical, structural and biophysical studies, some aspects of ciliary motility remain…

生物物理 · 物理学 2015-12-22 Daniel T. N. Chen , Michael Heymann , Seth Fraden , Daniela Nicastro , Zvonimir Dogic

The modeling of the beating of cilia and flagella in fluids is a particularly active field of study, given the biological relevance of these organelles. Various mathematical models have been proposed to represent the nonlinear dynamics of…

软凝聚态物质 · 物理学 2024-12-10 Irene Anello , François Alouges , Antonio De Simone

Synchronization of actively oscillating organelles such as cilia and flagella facilitates self-propulsion of cells and pumping fluid in low Reynolds number environments. To understand the key mechanism behind synchronization induced by…

软凝聚态物质 · 物理学 2015-05-20 Nariya Uchida , Ramin Golestanian

Organisms use hair-like cilia that beat in a metachronal fashion to actively transport fluid and suspended particles. Metachronal motion emerges due to a phase difference between beating cycles of neighboring cilia and appears as traveling…

流体动力学 · 物理学 2018-06-13 Srinivas Hanasoge , Peter J. Hesketh , Alexander Alexeev

Living creatures exhibit a remarkable diversity of locomotion mechanisms, evolving structures specialised for interacting with their environment. In the vast majority of cases, locomotor behaviours such as flying, crawling, and running, are…

生物物理 · 物理学 2020-07-28 Kirsty Y. Wan

Cilia and flagella are highly conserved slender organelles that exhibit a variety of rhythmic beating patterns from non-planar cone-like motions to planar wave-like deformations. Although their internal structure, composed of a…

流体动力学 · 物理学 2018-11-27 Feng Ling , Hanliang Guo , Eva Kanso

We study a slender filament beating in a viscous fluid with novel curvature-dependent bending stiffness. Our numerical and experimental investigations reveal that such differential stiffness can sustain planar bending waves far along…

Active phenomena which involve force generation and motion play a key role in a number of phenomena in living cells such as cell motility, muscle contraction and the active transport of material and organelles. Here we discuss mechanical…

生物物理 · 物理学 2007-05-23 Frank Julicher

The present habilitation thesis in theoretical biological physics addresses two central dynamical processes in cells and organisms: (i) active motility and motility control and (ii) self-organized pattern formation. The unifying theme is…

细胞行为 · 定量生物学 2018-03-21 Benjamin M. Friedrich

Asymmetries and anisotropies are widespread in biological systems, including in the structure and dynamics of cilia and eukaryotic flagella. These microscopic, hair-like appendages exhibit asymmetric beating patterns that break…

软凝聚态物质 · 物理学 2025-08-22 Bethany Clarke , Yongyun Hwang , Eric E Keaveny
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