Elastic properties of grafted microtubules
arXiv:q-bio/0503037 · doi:10.1073/pnas.0603931103
Abstract
We use single-particle tracking to study the elastic properties of single microtubules grafted to a substrate. Thermal fluctuations of the free microtubule's end are recorded, in order to measure position distribution functions from which we calculate the persistence length of microtubules with contour lengths between 2.6 and 48 micrometers. We find the persistence length to vary by more than a factor of 20 over the total range of contour lengths. Our results support the hypothesis that shearing between protofilaments contributes significantly to the mechanics of microtubules.
9 pages, 3 figures
References in corpus (2)
Cited by in corpus (18)
- Size, shape, and flexibility of RNA structures
- Statistical Mechanics of Semiflexible Bundles of Wormlike Polymer Chains
- Tubulin bond energies and microtubule biomechanics determined from nanoindentation in silico
- Microtubule dynamics depart from wormlike chain model
- Entropic forces generated by grafted semiflexible polymers
- Dynamics of a Semiflexible Polymer or Polymer Ring in Shear Flow
- Buckling of stiff polymer rings in weak spherical confinement
- Quantitative Tube Model for Semiflexible Polymer Solutions
- Effective Perrin theory for the anisotropic diffusion of a strongly hindered rod
- Tension dynamics in semiflexible polymers. Part II: Scaling solutions and applications
- Why Microtubules run in Circles - Mechanical Hysteresis of the Tubulin Lattice
- Motor driven microtubule shape fluctuations - force from within the lattice
- Exact solution for the force-extension relation of a semiflexible polymer under compression
- Dynamic structure factor of a stiff polymer in a glassy solution
- Coupling of transverse and longitudinal response in stiff polymers
- Effects of microtubule mechanics on hydrolysis and catastrophes
- Length distribution of stiff, self-assembled polymers at thermal equilibrium
- Dynamics of individual active elastic filaments with chiral self-propulsion