Article ID: | iaor201530166 |
Volume: | 273 |
Start Page Number: | 353 |
End Page Number: | 376 |
Publication Date: | Jan 2016 |
Journal: | Applied Mathematics and Computation |
Authors: | Kolbe Niklas, Katuchov Jana, Sfakianakis Nikolaos, Hellmann Nadja, Lukcov-Medvidov Mria |
Keywords: | simulation |
In the present work we investigate a model that describes the chemotactically and proteolytically driven tissue invasion by cancer cells. The model is a system of advection–reaction–diffusion equations that takes into account the role of the serine protease urokinase‐type plasminogen activator. The analytical and numerical study of such a system constitutes a challenge due to the merging, emerging, and traveling concentrations that the solutions exhibit. Classical numerical methods applied to this system necessitate very fine discretization grids to resolve these dynamics in an accurate way. To reduce the computational cost without sacrificing the accuracy of the solution, we apply adaptive mesh refinement techniques, in particular