Cilia and eukaryotic flagella are slender cellular appendages whose regular beating propels cells and microorganisms through aqueous media. The beat is an oscillating pattern of propagating bends generated by dynein motor proteins. A key open question is how the activity of the motors is coordinated in space and time. To elucidate the nature of this coordination we inferred the mechanical properties of the motors by analyzing the shape of beating sperm: Steadily beating bull sperm were imaged and their shapes were measured with high precision using a Fourier averaging technique. Comparing our experimental data with wave forms calculated for different scenarios of motor coordination we found that only the scenario of interdoublet sliding reg...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Flagella are hair-like projections from the surface of eukaryotic cells, and they play an important ...
AbstractEukaryotic flagella produce a swimming force by coordinating thousands of dynein motor prote...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
AbstractThe bending of cilia and flagella is driven by forces generated by dynein motor proteins. Th...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
Cilia and flagella are hairlike organelles that propel cells through fluid. The active motion of the...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
The bending of cilia and flagella is driven by forces generated by dynein motor proteins. These forc...
Cilia and flagella are hairlike organelles that propel cells through fluid. The active motion of the...
The motile structure within eukaryotic cilia and flagella is the axoneme. This structure typically c...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Flagella are hair-like projections from the surface of eukaryotic cells, and they play an important ...
AbstractEukaryotic flagella produce a swimming force by coordinating thousands of dynein motor prote...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
AbstractThe bending of cilia and flagella is driven by forces generated by dynein motor proteins. Th...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
Cilia and flagella are hairlike organelles that propel cells through fluid. The active motion of the...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we sh...
The bending of cilia and flagella is driven by forces generated by dynein motor proteins. These forc...
Cilia and flagella are hairlike organelles that propel cells through fluid. The active motion of the...
The motile structure within eukaryotic cilia and flagella is the axoneme. This structure typically c...
Cilia and flagella are hair-like appendages of eukaryotic cells. They are actively bending structure...
Flagella are hair-like projections from the surface of eukaryotic cells, and they play an important ...
AbstractEukaryotic flagella produce a swimming force by coordinating thousands of dynein motor prote...