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Updated: Apr 20, 2026

Designing and 3D Modeling of Innovative Cell Wounding Tools Based on User Requirement Analysis and Assessing Their Cell Wounding Potential
Published on: October 4, 2024
Computational modeling of chemo-bio-mechanical coupling: a systems-biology approach toward wound healing
A Buganza Tepole1, E Kuhl1,2
1a Department of Mechanical Engineering , Stanford University , Stanford , CA 94305 , USA.
Abstract:
Wound healing is a synchronized cascade of chemical, biological, and mechanical phenomena, which act in concert to restore the damaged tissue. An imbalance between these events can induce painful scarring. Despite intense efforts to decipher the mechanisms of wound healing, the role of mechanics remains poorly understood. Here, we establish a computational systems biology model to identify the chemical, biological, and mechanical mechanisms of scar formation. First, we introduce the generic problem of coupled chemo-bio-mechanics. Then, we introduce the model problem of wound healing in terms of a particular chemical signal, inflammation, a particular biological cell type, fibroblasts, and a particular mechanical model, isotropic hyperelasticity. We explore the cross-talk between chemical, biological, and mechanical signals and show that all three fields have a significant impact on scar formation. Our model is the first step toward rigorous multiscale, multifield modeling in wound healing. Our formulation has the potential to improve effective wound management and optimize treatment on an individualized patient-specific basis.

