← Back to Research Radar
Scientific Literature Scientific Literature

Shear effects in active models of normal and cancer cells

Souvik Sadhukhan, Rajsekhar Das, Lin Zhao, Wolfgang Losert, D. Thirumalai
August 18, 2026
Published Date

Research Abstract & Technology Focus

Mechanical properties of biological tissues, driven by passive and active forces, play a vital role in several processes ranging from development to cancer metastasis. However, the dynamical responses of cells in tissues, subject to mechanical deformations such as shear and the associated rheological properties, are not well characterized. Here, we use three-dimensional agent-based models for normal and cancer tissues to investigate their responses to simple shear as a function of cell stiffness and stochastic active forces. In the normal epithelium, with uniform strength of active force, the yield stress as a function of shear rate follows the Herschel-Bulkley form over a range of cell volume fraction. Strikingly, the shear rate dependence and the elasticity-dependent changes in the yield stress fall on master curves upon suitable scaling. To model cancer-like behavior, a certain fraction ($N_p$) of cells was chosen to have enhanced activity and decreased stiffness. As $N_p$ increases, the extent of collective cell movement decreases, transitioning from affine (collective) to non-affine (individualistic) movement, a finding that is in accord with imaging experiments. Simulations of a model of a stiff solid tumor, with radius $R_s$ embedded in normal tissue, show that as $R_s$ increases, the yield stress increases. Interestingly, the cells migrate collectively as $R_s$ increases. A Gaussian Mixture Model (GMM) and a mean field theory quantitatively account for the simulation as well as experimental results on cancerous, non-cancerous, and a mixture of these two types. The combined theoretical and experimental study establishes that heterogeneity in stiffness and activity determines non-affine movements in normal and cancer tissues.
Read Full Literature

Correlated Market Trend: Materials Science

Bridging academia to market: The 60-day public search velocity mapping directly to the core technology of this paper. Dashed line represents 7-day moving average.

AI Semantic Synergy Context

Connecting this academic literature to real-world market discussions and products.

roipad.com › trend story
0%

Fibronectin matrix remodelling modulates the active nematic dynamics of cancer-associated fibroblasts

Cancer-associated fibroblasts and fibronectin form a coupled active–passive nematic that progressively freezes, creating a mechanically stable stromal barrier.

openalex.org › research concept
0%

Cell mechanical properties and their association with diseases: A concise review of research progress

Cell mechanical properties refer to the behaviors and characteristics of cells in response to mechanical stimuli and regulation of physiological functions, which profoundly affect the functions of ...

openalex.org › research concept
0%

Epithelia Realize Nematopolar Topological Defect Structures

We introduce a shape-based polar order parameter that captures the structural asymmetry of cells within epithelial monolayers. By combining bright-field imaging and traction force microscopy, we de...

roipad.com › trend story
0%

Exploring the relationship between vascular remodelling and tumour growth using agent-based modelling

Author summary We have created an agent-based model (ABM) that accounts for mechanical interactions between tumour cells and associated vasculature. The model simulates vessel occlusion and pruning...

roipad.com › trend story
0%

Physiological shear flow enhances pinocytosis in human platelets

Scientific Reports - Physiological shear flow enhances pinocytosis in human platelets

Frequently Asked Questions (FAQ)

Curated market intelligence mapped to this research.

What is the core focus of the research titled 'Shear effects in active models of normal and cancer cells'?

This literature focuses on: Mechanical properties of biological tissues, driven by passive and active forces, play a vital role in several processes ranging from development to cancer metastasis. However, the dynamical responses of cells in tissues, subject to mechanical def...

Are there commercial applications of 'Shear effects in active models of normal and cancer cells' in market news publications?

Yes, highly correlated activity was mapped. An entry titled 'Fibronectin matrix remodelling modulates the active nematic dynamics of cancer-associated fibroblasts' discusses this: Cancer-associated fibroblasts and fibronectin form a coupled active–passive nematic that progressively freezes, creating a mechanically stable stro...

What other academic literature is closely related to 'Shear effects in active models of normal and cancer cells'?

Yes, highly correlated activity was mapped. An entry titled 'Cell mechanical properties and their association with diseases: A concise review of research progress' discusses this: Cell mechanical properties refer to the behaviors and characteristics of cells in response to mechanical stimuli and regulation of physiological fu...

Cite this Market Intelligence Report

Reference our AI-mapped synergy between this research and the commercial market to instantly build authority.