Turing pattern induced by cross-diffusion in cancer immunotherapy model

Fuente: arXiv
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Main Authors: Munafò, C. F., Bonfiglio, S., Rogolino, P.
Format: Preprint
Published: 2025
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author Munafò, C. F.
Bonfiglio, S.
Rogolino, P.
author_facet Munafò, C. F.
Bonfiglio, S.
Rogolino, P.
contents In this paper, we investigate a mathematical model describing the interactions between effector cells (E), cancer cells (T), and the IL-2 compound (IL). The model considered here is a generalization, taking into account some cross-diffusion effects, of a spatial cancer immunotherapy model proposed by S. Suddin et al in 2021. These modifications allow us to describe two biologically relevant scenarios: a patient treated with Adoptive Cell Immunotherapy (ACI) and a patient not receiving any treatment/therapy. Cross-diffusion effects are particularly relevant in the interactions between tumor cells and the immune system, in fact they play a key role in immune response dynamics and cannot be neglected. We analyze the equilibrium points of the homogeneous system, along with their stability and bifurcation mechanisms. Furthermore, adopting the Turing approach for reaction-diffusion systems, we investigate the diffusion-driven instability and the emergence of spatial regular structures (stationary in time), i.e. the patterns. Finally, numerical simulations based on the Finite Difference Method (FDM) are presented for the two previously mentioned scenarios.
format Preprint
id arxiv_https___arxiv_org_abs_2512_00599
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Turing pattern induced by cross-diffusion in cancer immunotherapy model
Munafò, C. F.
Bonfiglio, S.
Rogolino, P.
Dynamical Systems
Mathematical Physics
Analysis of PDEs
In this paper, we investigate a mathematical model describing the interactions between effector cells (E), cancer cells (T), and the IL-2 compound (IL). The model considered here is a generalization, taking into account some cross-diffusion effects, of a spatial cancer immunotherapy model proposed by S. Suddin et al in 2021. These modifications allow us to describe two biologically relevant scenarios: a patient treated with Adoptive Cell Immunotherapy (ACI) and a patient not receiving any treatment/therapy. Cross-diffusion effects are particularly relevant in the interactions between tumor cells and the immune system, in fact they play a key role in immune response dynamics and cannot be neglected. We analyze the equilibrium points of the homogeneous system, along with their stability and bifurcation mechanisms. Furthermore, adopting the Turing approach for reaction-diffusion systems, we investigate the diffusion-driven instability and the emergence of spatial regular structures (stationary in time), i.e. the patterns. Finally, numerical simulations based on the Finite Difference Method (FDM) are presented for the two previously mentioned scenarios.
title Turing pattern induced by cross-diffusion in cancer immunotherapy model
topic Dynamical Systems
Mathematical Physics
Analysis of PDEs
url https://arxiv.org/abs/2512.00599