A single-cell-based model of tumor growthin vitro: monolayers and spheroids
Top Cited Papers
- 12 July 2005
- journal article
- Published by IOP Publishing in Physical Biology
- Vol. 2 (3) , 133-147
- https://doi.org/10.1088/1478-3975/2/3/001
Abstract
To what extent the growth dynamics of tumors is controlled by nutrients, biomechanical forces and other factors at different stages and in different environments is still largely unknown. Here we present a biophysical model to study the spatio-temporal growth dynamics of two-dimensional tumor monolayers and three-dimensional tumor spheroids as a complementary tool to in vitro experiments. Within our model each cell is represented as an individual object and parametrized by cell-biophysical and cell-kinetic parameters that can all be experimentally determined. Hence our modeling strategy allows us to study which mechanisms on the microscopic level of individual cells may affect the macroscopic properties of a growing tumor. We find the qualitative growth kinetics and patterns at early growth stages to be remarkably robust. Quantitative comparisons between computer simulations using our model and published experimental observations on monolayer cultures suggest a biomechanically-mediated form of growth inhibition during the experimentally observed transition from exponential to sub-exponential growth at sufficiently large tumor sizes. Our simulations show that the same transition during the growth of avascular tumor spheroids can be explained largely by the same mechanism. Glucose (or oxygen) depletion seems to determine mainly the size of the necrotic core but not the size of the tumor. We explore the consequences of the suggested biomechanical form of contact inhibition, in order to permit an experimental test of our model. Based on our findings we propose a phenomenological growth law in early expansion phases in which specific biological small-scale processes are subsumed in a small number of effective parameters.Keywords
This publication has 55 references indexed in Scilit:
- Modelling solid tumour growth using the theory of mixturesMathematical Medicine and Biology: A Journal of the IMA, 2003
- The Universal Dynamics of Tumor GrowthBiophysical Journal, 2003
- A two-phase model of solid tumour growthApplied Mathematics Letters, 2003
- Microrheology of Human Lung Epithelial Cells Measured by Atomic Force MicroscopyPublished by Elsevier ,2003
- Cell sorting is analogous to phase ordering in fluidsProceedings of the National Academy of Sciences, 2000
- Cell adhesion molecules, signal transduction and cell growthCurrent Opinion in Cell Biology, 1999
- A General Equation for Fitting Contact Area and Friction vs Load MeasurementsJournal of Colloid and Interface Science, 1999
- Super-Rough Dynamics on Tumor GrowthPhysical Review Letters, 1998
- Interstitial fluid pressure in intracranial tumours in patients and in rodentsBritish Journal of Cancer, 1997
- Variations in tumor cell growth rates and metabolism with oxygen concentration, glucose concentration, and extracellular pHJournal of Cellular Physiology, 1992