Microtubule depolymerization by the kinesin-8 motor Kip3p: a mathematical model
arXiv:0812.3908 · doi:10.1016/j.bpj.2009.01.017
Abstract
Proteins from the kinesin-8 family promote microtubule (MT) depolymerization, a process thought to be important for the control of microtubule length in living cells. In addition to this MT shortening activity, kinesin 8s are motors that show plus-end directed motility on MTs. Here we describe a simple model that incorporates directional motion and destabilization of the MT plus end by kinesin 8. Our model quantitatively reproduces the key features of length-vs-time traces for stabilized MTs in the presence of purified kinesin 8, including length-dependent depolymerization. Comparison of model predictions with experiments suggests that kinesin 8 depolymerizes processively, i.e., one motor can remove multiple tubulin dimers from a stabilized MT. Fluctuations in MT length as a function of time are related to depolymerization processivity. We have also determined the parameter regime in which the rate of MT depolymerization is length dependent: length-dependent depolymerization occurs only when MTs are sufficiently short; this crossover is sensitive to the bulk motor concentration.
34 pages, 11 figures
References in corpus (4)
Cited by in corpus (12)
- Non-equilibrium statistical mechanics: From a paradigmatic model to biological transport
- Stochastic mechano-chemical kinetics of molecular motors: a multidisciplinary enterprise from a physicist's perspective
- Microtubule Length-Regulation by Molecular Motors
- Crowding of molecular motors determines microtubule depolymerization
- Antenna mechanism of length control of actin cables
- Biophysics of filament length regulation by molecular motors
- Motor protein accumulation on antiparallel microtubule overlaps
- Phase-plane analysis of the totally asymmetric simple exclusion process with binding kinetics and switching between antiparallel lanes
- Self-organized system-size oscillation of a stochastic lattice-gas model
- Length Regulation Drives Self-Organization in Filament-Motor Mixtures
- Localization of a microtubule organizing center by kinesin motors
- Kinesin-8 effects on mitotic microtubule dynamics contribute to spindle function in fission yeast