Hydrodynamic theories of chemotaxis-driven invasion in proliferating cell populations
Giulia L. Celora, Martina Conte
Abstract
Biased migration up chemical gradients and proliferation are fundamental drivers of collective invasion in several biological processes ranging from embryonic morphogenesis to cancer. Nonetheless, our understanding of how their interplay yields distinct invasion patterns remains incomplete. In this work, we propose a multiscale framework to systematically derive macroscopic hydrodynamic theories of cell invasion from a mesoscopic description of cells as biased self-propelled, interacting particles that proliferate. Our framework reveals how clump and stream invasion patterns emerge from the same kinetic equation under different asymptotic regimes of cell proliferation. Stream invasion is characteristic of cell populations in which proliferation balances cell motion. In contrast, clump invasion requires a separation of the hydrodynamic timescale of motion and the slower timescale of proliferation. By means of a multiple-scale approach, our analysis reveals that clump invasion is described as a slow evolution through a family of mass-dependent travelling-wave solutions. Overall, our work offers a novel approach to investigate multiscale regulation of cell invasion in systems where cell proliferation and collective invasion evolve on distinct timescales.
Create a lesson
Related papers
Population Structures with Positive Feedback and Asymmetric Division
Gabriel Dooley, Camden Kilton, Brynley Needham et al.
Bayesian comparison of Langevin dynamics for cell motility from positional observation
Yusuke Kato, Jan Albrecht, Ted Moldenhawer et al.
A quantitative model for the emergent population dynamics of the melanoma MITF rheostat
Keith L. Chambers, Richard M. White, Colin R. Goding et al.
Local intercellular coupling is sufficient for long-range calcium signaling
Benjamin M. Goykadosh, Vasuretha Chandar, Harikrishnan Parameswaran
Necessary and sufficient condition for hysteresis in the mathematical model of the cell type regulation of Bacillus subtilis
Sohei Tasaki, Madoka Nakayama, Izumi Takagi et al.
A phenomenological multiscale framework for orientational interactions and viscoelasticity in migrating epithelial monolayers
Ivana Pajic-Lijakovic, Milan Milivojevic, Peter V. E. McClintock