Diffusion regulated growth characteristics of a spherical prevascular carcinoma
- 1 July 1990
- journal article
- research article
- Published by Springer Nature in Bulletin of Mathematical Biology
- Vol. 52 (4) , 549-582
- https://doi.org/10.1007/bf02462267
Abstract
Recently a mathematical model of the prevascular phases of tumor growth by diffusion has been investigated (S. A. Maggelakis and J. A. Adam,Math. Comput. Modeling, in press). In this paper we examine in detail the results and implications of that mathematical model, particularly in the light of recent experimental work carried out on multicellular spheroids. The overall growth characteristics are determined in the present model by four parameters:Q, γ, b, andδ, which depend on information about inhibitor production rates, oxygen consumption rates, volume loss and cell proliferation rates, and measures of the degree of non-uniformity of the various diffusion processes that take place. The integro-differential growth equation is solved for the outer spheroid radiusR 0(t) and three related inner radii subject to the solution of the governing time-independent diffusion equations (under conditions of diffusive equilibrium) and the appropriate boundary conditions. Hopefully, future experimental work will enable reasonable bounds to be placed on parameter values referred to in this model: meanwhile, specific experimentally-provided initial data can be used to predict subsequent growth characteristics ofin vitro multicellular spheroids. This will be one objective of future studies.This publication has 47 references indexed in Scilit:
- AN ANALYSIS OF SYSTEMIC TUMOR OXYGENATION USING MULTI-REGION MODELSChemical Engineering Communications, 1988
- On the analysis of oxygen diffusion and reaction in biological systemsMathematical Biosciences, 1987
- Angiogenic FactorsScience, 1987
- MULTI-REGION MODELS FOR DESCRIBING OXYGEN TENSION PROFILES IN HUMAN TUMORSChemical Engineering Communications, 1986
- In situ oxygen consumption rates of cells in V‐79 multicellular spheroids during growthJournal of Cellular Physiology, 1984
- A model of oxygen diffusion in absorbing tissueMathematical Modelling, 1982
- A model of vascular compression in solid tumoursJournal of Theoretical Biology, 1979
- A re-examination of oxygen diffusion in a spherical cell with michaelis-menten oxygen uptake kineticsJournal of Theoretical Biology, 1978
- Cellular and geometric control of tissue growth and mitotic instabilityJournal of Theoretical Biology, 1976
- Oxygen diffusion in a spherical cell with nonlinear oxygen uptake kineticsJournal of Theoretical Biology, 1976