International audienceThe "9+2" axoneme is a highly specific cylindrical machine whose periodic bending is due to the cumulative shear of its 9 outer doublets of microtubules. Because of the discrete architecture of the tubulin monomers and the active appendices that the outer doublets carry (dynein arms, nexin links and radial spokes), this movement corresponds to the relative shear of these topological verniers, whose characteristics depend on the geometry of the wave train. When an axonemal segment bends, this induces the compressed and dilated conformations of the tubulin monomers and, consequently, the modification of the spatial frequencies of the appendages that the outer doublets carry. From a dynamic point of view, the adjustments ...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Generating the complex waveforms characteristic of beating eukaryotic cilia and flagella requires sp...
Regulation of ciliary and flagellar motility requires spatial control of dynein-driven microtubule s...
In a recent study [Cibert, 2008. Journal of Theoretical Biology, 253, 74-89], by assuming that the w...
International audienceMany data demonstrate that the regulation of the bending polarity of the "9+2"...
Coordinated sliding of microtubule doublets, driven by dynein motors, produces periodic beating of t...
The bending of cilia and flagella is driven by forces generated by dynein motor proteins. These forc...
AbstractThe bending of cilia and flagella is driven by forces generated by dynein motor proteins. Th...
AbstractMicrotubule diversity, arising from the utilization of different tubulin genes and from post...
Cilia and eukaryotic flagella are long, thin extensions of cells that contain a structure known as a...
The typical structure of the eukaryotic flagellum consists of a central pair of singlet microtubules...
Cilia and flagella are hairlike organelles that propel cells through fluid. The active motion of the...
Generation of ciliary beating involves multiple different dynein motors acting in concert to specify...
AbstractThe 9+2 configuration of axonemes is one of the most conserved structures of eukaryotic orga...
The physical basis of flagellar and ciliary beating is a major problem in biology which is still far...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Generating the complex waveforms characteristic of beating eukaryotic cilia and flagella requires sp...
Regulation of ciliary and flagellar motility requires spatial control of dynein-driven microtubule s...
In a recent study [Cibert, 2008. Journal of Theoretical Biology, 253, 74-89], by assuming that the w...
International audienceMany data demonstrate that the regulation of the bending polarity of the "9+2"...
Coordinated sliding of microtubule doublets, driven by dynein motors, produces periodic beating of t...
The bending of cilia and flagella is driven by forces generated by dynein motor proteins. These forc...
AbstractThe bending of cilia and flagella is driven by forces generated by dynein motor proteins. Th...
AbstractMicrotubule diversity, arising from the utilization of different tubulin genes and from post...
Cilia and eukaryotic flagella are long, thin extensions of cells that contain a structure known as a...
The typical structure of the eukaryotic flagellum consists of a central pair of singlet microtubules...
Cilia and flagella are hairlike organelles that propel cells through fluid. The active motion of the...
Generation of ciliary beating involves multiple different dynein motors acting in concert to specify...
AbstractThe 9+2 configuration of axonemes is one of the most conserved structures of eukaryotic orga...
The physical basis of flagellar and ciliary beating is a major problem in biology which is still far...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Generating the complex waveforms characteristic of beating eukaryotic cilia and flagella requires sp...
Regulation of ciliary and flagellar motility requires spatial control of dynein-driven microtubule s...