AbstractObstacles on the surface of microtubules can lead to defective cargo transport, proposed to play a role in neurological diseases such as Alzheimer’s. However, little is known about how motor proteins, which follow individual microtubule protofilaments (such as kinesin-1), deal with obstacles on the molecular level. Here, we used rigor-binding mutants of kinesin-1 as roadblocks to permanently obstruct individual microtubule binding sites and studied the movement of individual kinesin-1 motors by single-molecule fluorescence and dark-field scattering microscopy in vitro. In the presence of roadblocks, kinesin-1 often stopped for ∼0.4 s before either detaching or continuing to move, whereby the latter circumvention events occurred in >...
AbstractMotor proteins of the kinesin family move actively along microtubules to transport cargo wit...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
AbstractObstacles on the surface of microtubules can lead to defective cargo transport, proposed to ...
Obstacles on the surface of microtubules can lead to defective cargo transport, proposed to play a r...
AbstractInside cells, a multitude of molecular motors and other microtubule-associated proteins are ...
Movement of motor proteins along cytoskeletal filaments is fundamental for various cellular processe...
Movement of motor proteins along cytoskeletal filaments is fundamental for various cellular processe...
AbstractInside cells, a multitude of molecular motors and other microtubule-associated proteins are ...
Eukaryotic cells are intricately organized on many length and time scales, from molecules to organel...
Motor-driven cytoskeletal filaments are versatile transport platforms for nanosized cargo in molecul...
Neurons are specialized cells that transmit information through electrical and chemical signals usin...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
AbstractMotor proteins of the kinesin family move actively along microtubules to transport cargo wit...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
AbstractObstacles on the surface of microtubules can lead to defective cargo transport, proposed to ...
Obstacles on the surface of microtubules can lead to defective cargo transport, proposed to play a r...
AbstractInside cells, a multitude of molecular motors and other microtubule-associated proteins are ...
Movement of motor proteins along cytoskeletal filaments is fundamental for various cellular processe...
Movement of motor proteins along cytoskeletal filaments is fundamental for various cellular processe...
AbstractInside cells, a multitude of molecular motors and other microtubule-associated proteins are ...
Eukaryotic cells are intricately organized on many length and time scales, from molecules to organel...
Motor-driven cytoskeletal filaments are versatile transport platforms for nanosized cargo in molecul...
Neurons are specialized cells that transmit information through electrical and chemical signals usin...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
AbstractMotor proteins of the kinesin family move actively along microtubules to transport cargo wit...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...
Proteins have been optimized by evolution for billions of years to work on a nanometer scale. Theref...