arXiv Analytics

Sign in

arXiv:1310.0194 [math.AP]AbstractReferencesReviewsResources

A mathematical model of systemic inhibition of angiogenesis in metastatic development

Sebastien Benzekry, Alberto Gandolfi, Philip Hahnfeldt

Published 2013-10-01Version 1

We present a mathematical model describing the time development of a population of tumors subject to mutual angiogenic inhibitory signaling. Based on biophysical derivations, it describes organism-scale population dynamics under the influence of three processes: birth (dissemination of secondary tumors), growth and inhibition (through angiogenesis). The resulting model is a nonlinear partial differential transport equation with nonlocal boundary condition. The nonlinearity stands in the velocity through a nonlocal quantity of the model (the total metastatic volume). The asymptotic behavior of the model is numerically investigated and reveals interesting dynamics ranging from convergence to a steady state to bounded non-periodic or periodic behaviors, possibly with complex repeated patterns. Numerical simulations are performed with the intent to theoretically study the relative impact of potentiation or impairment of each process of the birth/growth/inhibition balance. Biological insights on possible implications for the phenomenon of "cancer without disease" are also discussed.

Related articles: Most relevant | Search more
arXiv:1107.1594 [math.AP] (Published 2011-07-08, updated 2011-12-07)
Turing instabilities in a mathematical model for signaling networks
arXiv:2206.06532 [math.AP] (Published 2022-06-14)
On a mathematical model of the rotating atmosphere of the Earth
arXiv:1506.00605 [math.AP] (Published 2015-05-29)
On the well-posedness of a mathematical model for Lithium-ion batteries