The coupling between the depolymerization of microtubules (MTs) and the motion of the Dam1 ring complex is now thought to play an important role in the generation of forces during mitosis. Our current understanding of this motion is based on a number of detailed computational models. Although these models realize possible mechanisms for force transduction, they can be extended by variation of any of a large number of poorly measured parameters and there is no clear strategy for determining how they might be distinguished experimentally. Here we seek to identify and analyze two distinct mechanisms present in the computational models. In the first the splayed protofilaments at the end of the depolymer-izing MT physically prevent the Dam1 ring...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
SummaryCytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mecha...
Theoretical modelling of the microtubule-Dam1-ring force generation mechanism and the pulling of tu...
AbstractThe coupling between the depolymerization of microtubules (MTs) and the motion of the Dam1 r...
The coupling between the depolymerization of microtubules (MTs) and the motion of the Dam1 ring comp...
There has been much effort in recent years aimed at understanding the molecular mechanism by which t...
This video shows the microtubule-depolymerization dependent motions of a ring coupler. Although the ...
This video shows a shortening microtubules end 'Depolymerizing microtubule' and a ring coupler (red)...
Microtubules consist of 13 protofilaments arranged in the form of a cylinder. The protofilaments are...
More than 50 years ago, microtubule depolymerization was proposed as the force responsible for chrom...
Newly discovered rings around microtubules, assembled from the Dam1 protein complex, may provide the...
Experiments indicate that depolymerization of microtubules generates sufficient force to produce the...
AbstractImportant mechanical events during mitosis are facilitated by the generation of force by chr...
Large-size biomolecular systems that spontaneously assemble, disassemble, and self-repair by control...
Biopolymers are essential for cellular organization. They bridge the cell interior, forming a framew...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
SummaryCytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mecha...
Theoretical modelling of the microtubule-Dam1-ring force generation mechanism and the pulling of tu...
AbstractThe coupling between the depolymerization of microtubules (MTs) and the motion of the Dam1 r...
The coupling between the depolymerization of microtubules (MTs) and the motion of the Dam1 ring comp...
There has been much effort in recent years aimed at understanding the molecular mechanism by which t...
This video shows the microtubule-depolymerization dependent motions of a ring coupler. Although the ...
This video shows a shortening microtubules end 'Depolymerizing microtubule' and a ring coupler (red)...
Microtubules consist of 13 protofilaments arranged in the form of a cylinder. The protofilaments are...
More than 50 years ago, microtubule depolymerization was proposed as the force responsible for chrom...
Newly discovered rings around microtubules, assembled from the Dam1 protein complex, may provide the...
Experiments indicate that depolymerization of microtubules generates sufficient force to produce the...
AbstractImportant mechanical events during mitosis are facilitated by the generation of force by chr...
Large-size biomolecular systems that spontaneously assemble, disassemble, and self-repair by control...
Biopolymers are essential for cellular organization. They bridge the cell interior, forming a framew...
Cytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mechanical f...
SummaryCytoskeletal remodeling is essential to eukaryotic cell division and morphogenesis. The mecha...
Theoretical modelling of the microtubule-Dam1-ring force generation mechanism and the pulling of tu...