21 research outputs found
Microtubule length dependence of motor traffic in cells
In living cells, motor proteins, such as kinesin and dynein can move
processively along microtubule (MT), and also detach from or attach to MT
stochastically. Experiments have found that, the traffic of motor might be
jammed, and various theoretical models have been designed to understand this
traffic jam phenomenon. But previous studies mainly focus on motor
attachment/detachment rate dependent properties. Recent experiment of Leduc
{\it et al.} found that the traffic jam formation of motor protein kinesin
depends also on the length of MT [Proc. Natl. Acad. Sci. U.S.A. {\bf 109},
6100-6105 (2012)]. In this study, the MT length dependent properties of motor
traffic will be analyzed. We found that MT length has one {\it critical value}
, traffic jam occurs only when MT length . The jammed length of MT
increases with total MT length, while the non-jammed MT length might not change
monotonically with the total MT length. The critical value increases with
motor detachment rate from MT, but decreases with motor attachment rate to MT
Transport by molecular motors in the presence of static defects
The transport by molecular motors along cytoskeletal filaments is studied
theoretically in the presence of static defects. The movements of single motors
are described as biased random walks along the filament as well as binding to
and unbinding from the filament. Three basic types of defects are
distinguished, which differ from normal filament sites only in one of the
motors' transition probabilities. Both stepping defects with a reduced
probability for forward steps and unbinding defects with an increased
probability for motor unbinding strongly reduce the velocities and the run
lengths of the motors with increasing defect density. For transport by single
motors, binding defects with a reduced probability for motor binding have a
relatively small effect on the transport properties. For cargo transport by
motors teams, binding defects also change the effective unbinding rate of the
cargo particles and are expected to have a stronger effect.Comment: 20 pages, latex, 7 figures, 1 tabl