A mechanistic protrusive-based model for 3D cell migration |
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Affiliation: | 1. Multiscale in Mechanical and Biological Engineering (M2BE), Aragon Institute of Engineering Research (I3A), Zaragoza 50018, Spain;2. Department of Mechanical Engineering, Universidad de Zaragoza, Zaragoza 50009, Spain;3. Robotics, Perception and Real Time Group (RoPeRT), Aragon Institute of Engineering Research (I3A), Zaragoza 50018, Spain;4. Department of Computer Science and System Engineering, Universidad de Zaragoza, Zaragoza 50009, Spain |
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Abstract: | Cell migration is essential for a variety of biological processes, such as embryogenesis, wound healing, and the immune response. After more than a century of research—mainly on flat surfaces—, there are still many unknowns about cell motility. In particular, regarding how cells migrate within 3D matrices, which more accurately replicate in vivo conditions. We present a novel in silico model of 3D mesenchymal cell migration regulated by the chemical and mechanical profile of the surrounding environment. This in silico model considers cell’s adhesive and nuclear phenotypes, the effects of the steric hindrance of the matrix, and cells ability to degradate the ECM. These factors are crucial when investigating the increasing difficulty that migrating cells find to squeeze their nuclei through dense matrices, which may act as physical barriers. Our results agree with previous in vitro observations where fibroblasts cultured in collagen-based hydrogels did not durotax toward regions with higher collagen concentrations. Instead, they exhibited an adurotactic behavior, following a more random trajectory. Overall, cell’s migratory response in 3D domains depends on its phenotype, and the properties of the surrounding environment, that is, 3D cell motion is strongly dependent on the context. |
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Keywords: | 3D cell migration Protrusion dynamics Cell mechanics Cell - matrix interactions Matrix mechanics Matrix remodeling 1D" },{" #name" :" keyword" ," $" :{" id" :" key0040" }," $$" :[{" #name" :" text" ," _" :" One-Dimensional 2D" },{" #name" :" keyword" ," $" :{" id" :" key0050" }," $$" :[{" #name" :" text" ," _" :" Two-Dimensional 3D" },{" #name" :" keyword" ," $" :{" id" :" key0060" }," $$" :[{" #name" :" text" ," _" :" Three-Dimensional ECM" },{" #name" :" keyword" ," $" :{" id" :" key0070" }," $$" :[{" #name" :" text" ," _" :" Extracellular Matrix FA" },{" #name" :" keyword" ," $" :{" id" :" key0080" }," $$" :[{" #name" :" text" ," _" :" Focal Adhesion MMP" },{" #name" :" keyword" ," $" :{" id" :" key0090" }," $$" :[{" #name" :" text" ," _" :" Matrix Metalloproteinases PI3K" },{" #name" :" keyword" ," $" :{" id" :" key0100" }," $$" :[{" #name" :" text" ," _" :" Phosphoinositide 3-kinases PM" },{" #name" :" keyword" ," $" :{" id" :" key0110" }," $$" :[{" #name" :" text" ," _" :" Plasma Membrane ROI" },{" #name" :" keyword" ," $" :{" id" :" key0120" }," $$" :[{" #name" :" text" ," _" :" Region of Interest |
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