Title :
Comparing mathematical models of cell adhesion in tumors
Author :
Narang, V. ; Shek Yoon Wong ; Shiang Rong Leong ; Abastado, Jean-Pierre ; Gouaillard, A.
Author_Institution :
8A Biomed. Grove, SingaporeImmunologyNetwork(SIgN), Singapore, Singapore
Abstract :
Cancer progression accompanies changes in cell adhesion characteristics, which is crucial for cancer cell invasion and metastasis. Drugs altering cell adhesion have been suggested as a possible therapeutic treatment for cancer. Tumor cell adhesion is thus an important topic of current investigation. Recently individual cell (agent)-based in silico tumor models have incorporated mathematical models of cell adhesion. However, cell adhesion has been modeled in various ways in different studies. The first, Lennard-Jones potential model, is extrapolated from attractive/repulsive interactions between inert molecules. The second, JKR model, is derived from van-der Waals contact forces between non-spontaneously adhering solid elastic bodies. The third, cellular Potts model, is an adaptation of the Ising model of ferromagnetism to a spontaneously adhering population of cells. We compare these three mathematical models of cell adhesion and show how they give different perspectives to tumor growth, morphology and effectiveness of therapy. We also discuss how these models predict multi-nodular tumor morphology which is hitherto unaddressed in the literature.
Keywords :
Lennard-Jones potential; Potts model; cancer; cellular biophysics; molecular biophysics; physiological models; tumours; van der Waals forces; Ising model; JKR model; Lennard-Jones potential model; agent based in silico tumor models; attractive interactions; cancer cell alteration; cancer cell invasion; cancer metastasis; cancer progression; cancer treatment; cell adhesion changes; cell adhesion mathematical models; cellular Potts model; inert molecules; multinodular tumor morphology; nonspontaneously adhering solid elastic bodies; repulsive interactions; tumor cell adhesion; tumor growth; tumor therapy effectiveness; tumors; van der Waals contact forces; Adhesives; Biological system modeling; Cancer; Computational modeling; Mathematical model; Morphology; Tumors; agent-based modeling; cancer; cell simulation; cellular adhesion; mathematical modeling; tumor morphology;
Conference_Titel :
Defense Science Research Conference and Expo (DSR), 2011
Conference_Location :
Singapore
Print_ISBN :
978-1-4244-9276-3
DOI :
10.1109/DSR.2011.6026809