Related Experiment Video
Updated: Aug 23, 2025

Modeling and Imaging 3-Dimensional Collective Cell Invasion
Published on: December 7, 2011
The rearrangement of co-cultured cellular model systems via collective cell migration
Ivana Pajic-Lijakovic1, Raluca Eftimie2, Milan Milivojevic1
1University of Belgrade, Faculty of Technology and Metallurgy, Department of Chemical Engineering, Serbia.
Abstract:
Cancer invasion through the surrounding epithelium and extracellular matrix (ECM) is the one of the main characteristics of cancer progression. While significant effort has been made to predict cancer cells response under various drug therapies, much less attention has been paid to understand the physical interactions between cancer cells and their microenvironment, which are essential for cancer invasion. Considering these physical interactions on various co-cultured in vitro model systems by emphasizing the role of viscoelasticity, the tissue surface tension, solid stress, and their inter-relations is a prerequisite for establishing the main factors that influence cancer cell spread and develop an efficient strategy to suppress it. This review focuses on the role of viscoelasticity caused by collective cell migration (CCM) in the context of mono-cultured and co-cultured cancer systems, and on the modeling approaches aimed at reproducing and understanding these biological systems. In this context, we do not only review previously-published biophysics models for collective cell migration, but also propose new extensions of those models to include solid stress accumulated within the spheroid core region and cell residual stress accumulation caused by CCM.
Related Concept Videos
Cell Migration
Cytoskeletal Coordination in Cell Migration
Chemotaxis and Direction of Cell Migration

