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Export Immune cells, such as macrophages and dendritic cells, can utilize podosomes, mechanosensitive actin-rich protrusions, to generate forces, migrate, and patrol for foreign antigens. Individual podosomes probe their microenvironment through periodic protrusion and retraction cycles (height oscillations), while oscillations of multiple podosomes in a cluster are coordinated in a wave-like fashion. However, the mechanisms governing both the individual oscillations and the collective wave-like dynamics remain unclear. Here, by integrating actin polymerization, myosin contractility, actin diffusion, and mechanosensitive signaling, we develop a chemo-mechanical model for podosome dynamics in clusters. Our model reveals that podosomes show oscillatory growth when actin polymerization-driven protrusion and signaling-associated myosin contraction occur at similar rates, while the diffusion of actin monomers drives wave-like coordination of podosome oscillations. Our theoretical predictions are validated by different pharmacological treatments and the impact of microenvironment stiffness on chemo-mechanical waves. Our proposed framework can shed light on the role of podosomes in immune cell mechanosensing within the context of wound healing and cancer immunotherapy.
SEEK ID: https://nextseek-dev.mit.edu/publications/43
PubMed ID: 37217555
DOI: 10.1038/s41467-023-38598-z
Projects: Published Data
Publication type: Journal
Journal: Nat Commun
Citation: Nat Commun. 2023 May 22;14(1):2902. doi: 10.1038/s41467-023-38598-z.
Date Published: 22nd May 2023
Registered Mode: by PubMed ID
SubmitterViews: 19
Created: 25th Aug 2026 at 18:55
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