A stochastic model for adhesion-mediated cell random motility and haptotaxis
- 1 July 1993
- journal article
- Published by Springer Nature in Journal of Mathematical Biology
- Vol. 31 (6) , 563-600
- https://doi.org/10.1007/bf00161199
Abstract
The active migration of blood and tissue cells is important in a number of physiological processes including inflammation, wound healing, embryogenesis, and tumor cell metastasis. These cells move by transmitting cytoplasmic force through membrane receptors which are bound specifically to adhesion ligands in the surrounding substratum. Recently, much research has focused on the influence of the composition of extracellular matrix and the distribution of its components on the speed and direction of cell migration. It is commonly believed that the magnitude of the adhesion influences cell speed and/or random turning behavior, whereas a gradient of adhesion may bias the net direction of the cell movement, a phenomenon known as haptotaxis. The mechanisms underlying these responses are presently not understood. A stochastic model is presented to provide a mechanistic understanding of how the magnitude and distribution of adhesion ligands in the substratum influence cell movement. The receptor-mediated cell migration is modeled as an interrelation of random processes on distinct time scales. Adhesion receptors undergo rapid binding and transport, resulting in a stochastic spatial distribution of bound receptors fluctuating about some mean distribution. This results in a fluctuating spatio-temporal pattern of forces on the cell, which in turn affects the speed and turning behavior on a longer time scale. The model equations are a system of nonlinear stochastic differential equations (SDE's) which govern the time evolution of the spatial distribution of bound and free receptors, and the orientation and position of the cell. These SDE's are integrated numerically to simulate the behavior of the model cell on both a uniform substratum, and on a gradient of adhesion ligand concentration. Furthermore, analysis of the governing SDE system and corresponding Fokker-Planck equation (FPE) yields analytical expressions for indices which characterize cell movement on multiple time scales in terms of cell cytomechanical, morphological, and receptor binding and transport parameters. For a uniform adhesion ligand concentration, this analysis provides expressions for traditional cell movement indices such as mean speed, directional persistence time, and random motility coefficient. In a small gradient of adhesion, a perturbation analysis of the FPE yields a constitutive cell flux expression which includes a drift term for haptotactic directional cell migration. The haptotactic drift contains terms identified as contributions from directional orientation bias (taxis).Keywords
This publication has 59 references indexed in Scilit:
- The role of G-protein in matrix-mediated motility of highly and poorly invasive melanoma cellsInternational Journal of Cancer, 2007
- Internalization of the fibronectin receptor is a constitutive processJournal of Cellular Physiology, 1990
- Tumor cell haptotaxis on covalently immobilized linear and exponential gradients of a cell adhesion peptideDevelopmental Biology, 1989
- Fibroblasts on the move [published erratum appears in J Cell Biol 1988 Apr;106(4):following 1403]The Journal of cell biology, 1988
- Lateral Diffusion of Proteins in MembranesAnnual Review of Physiology, 1987
- Chemotaxis: Analysis for Quantitative StudiesBiotechnology Progress, 1985
- Neurite extension by peripheral and central nervous system neurons in response to substratum-bound fibronectin and lamininDevelopmental Biology, 1983
- Chemotaxis is not a special case of haptotaxisCellular and Molecular Life Sciences, 1979
- Model for chemotaxisJournal of Theoretical Biology, 1971
- Die Brownsche Bewegung bei Berücksichtigung einer Persistenz der Bewegungsrichtung. Mit Anwendungen auf die Bewegung lebender InfusorienThe European Physical Journal A, 1920