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bioRxiv · 10.1101/193458

Non-Elastic Remodeling of the 3D Extracellular Matrix by Cell-Generated Forces

Abstract

The mechanical properties of the extracellular matrix (ECM) - a complex, 3D, fibrillar scaffold of cells in physiological environments - modulate cell behavior and can drive tissue morphogenesis, regeneration, and disease progression. For simplicity, it is often convenient to assume these properties to be time-invariant. In living systems, however, cells dynamically remodel the ECM and create time-dependent local environments. Here, we demonstrate that cell generated contractile forces are capable of producing substantial irreversible changes to the density and architecture of physiologically relevant ECMs - collagen I and fibrin - in a matter of minutes. We measure the 3D mechanical deformation profiles of the ECM surrounding cancer and endothelial cells during stages when force generation is active or inactive. We further correlate these measurements to both discrete fiber simulations that incorporate fiber crosslink unbinding kinetics and continuum-scale modeling. Our findings reveal that plasticity, as a mechanical law in these networks, is fundamentally related to the force-driven unbinding of fiber crosslinks. These results illustrate the dynamic nature of the mechanical environment of physiologically mimicking cell-in-gel systems.

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Malandrino, A., Mak, M., Trepat, X., Kamm, R. D.. 2017-09-27. Non-Elastic Remodeling of the 3D Extracellular Matrix by Cell-Generated Forces. https://doi.org/10.1101/193458

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