DocumentCode
1298541
Title
A viscoelastic model of phagosome motion within cells based on cytomagnetometric measurements
Author
Nemoto, Iku ; Moeller, Winfried
Author_Institution
Dept. of Math. Sci., Tokyo Denki Univ., Saitama, Japan
Volume
47
Issue
2
fYear
2000
Firstpage
170
Lastpage
182
Abstract
Cytomagnetometry is a noninvasive method to investigate intracellular movements of organelles such as phagosomes by introducing magnetic particles into cells by phagocytosis, magnetizing them and measuring the field from the cells. To analyze the results of the cell-field measurement, the authors introduce a model for intracellular phagosome motion and investigate their behavior in terms of the cell field. The model includes an elastic body and two viscosity components which are ascribed to the filamentous structures surrounding the phagosomes. The magnetic relaxation phenomenon is assumed to derive from the rotationary Brownian motion as in the authors´ previous model. Although the model is simple, its behavior is not trivial because it contains a nonlinear term and the Brownian motion term. This model is the simplest one possible having a viscoelastic body and its behavior hence should be investigated thoroughly.
Keywords
Brownian motion; biomagnetism; biorheology; cell motility; magnetic relaxation; physiological models; viscoelasticity; Brownian motion term; cell-field measurement; cytomagnetometric measurements; cytoskeleton properties; elastic body; filamentous structures; intracellular motility; nonlinear term; phagocytosis; phagosome motion within cells; rotationary Brownian motion; viscoelastic model; Cells (biology); Elasticity; Magnetic analysis; Magnetic field measurement; Magnetic particles; Magnetoelasticity; Motion analysis; Motion measurement; Particle measurements; Viscosity; Cells, Cultured; Colchicine; Elasticity; Electric Impedance; Electromagnetic Fields; Ferrosoferric Oxide; Iron; Macrophages; Magnetics; Models, Biological; Monte Carlo Method; Motion; Nonlinear Dynamics; Oxides; Phagosomes; Rheology; Viscosity;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.821751
Filename
821751
Link To Document