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PMID: 12241393 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Diffusion and directed motion in cellular transport.

Physical review. E, Statistical, nonlinear, and soft matter physics ·Vol. 66 ·No. 1 Pt 1 ·2002-07-00 ·Pages 011916

Caspi A, Granek R, Elbaum M

Abstract

We study the motion of a probe driven by microtubule-associated motors within a living eukaryotic cell. The measured mean square displacement, <x(t)2> of engulfed 2 and 3 microm diameter microspheres shows enhanced diffusion scaling as t(3/2) at short times, with a clear crossover to ordinary or subdiffusive scaling, i.e., t(gamma) with gamma less than or equal to 1, at long times. Using optical tweezers we tried to move the engulfed bead within the cell in order to relate the anomalous diffusion scaling to the density of the network in which the bead is embedded. Results show that the larger beads, 2 and 3 microm diameter, must actively push the cytoskeleton filaments out of the way in order to move, whereas smaller beads of 1 microm diameter can be "rattled" within a cage. The 1 microm beads also perform an enhanced diffusion but with a smaller and less consistent exponent 1.2<gamma<1.45. We interpret the half-integer power observed with large beads based on two diverse phenomena widely studied in purified cytoskeleton filaments: (1) the motion of the intracellular probe results from random forces generated by motor proteins rather than thermal collisions for classical Brownian particles, and (2) thermal bending modes of these semiflexible polymers lead to anomalous subdiffusion of particles embedded in purified gel networks or attached to single filaments, with <x(t)2> approximately t(3/4). In the case of small beads, there may also be a Brownian contribution to the motion that results in a smaller exponent.

MeSH Terms
Biological Transport, Active Biophysical Phenomena Biophysics Biopolymers/physiology Cell Line Cell Physiological Phenomena Cytoskeleton/physiology Diffusion Elasticity Humans Microspheres Microtubules/physiology Models, Biological Molecular Motor Proteins/physiology Movement Optics and Photonics/instrumentation Particle Size Viscosity
Chemicals
Biopolymers Molecular Motor Proteins
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Caspi Avi
Department of Materials and Interfaces, Weizmann Institute of Science, Rehovot 76100, Israel.
Granek Rony
Elbaum Michael
Article Info
Journal
Physical review. E, Statistical, nonlinear, and soft matter physics
Abbr.
Phys Rev E Stat Nonlin Soft Matter Phys
ISSN
1539-3755
Published
2002-07-00
Epub
2002-00-29
Pages
011916
Language
English
Region
United States
NLM ID
101136452
Subset
IM
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