Mechanochemical cues control the coupling of metabolic and migratory patterns in cancer
Amitrano, A.; Choudhury, D.; Ifemembi, B.; Afthinos, A.; Stoletov, K.; Yuan, Q.; Nath, S.; Si, B. R.; Agarwal, B.; Graziano, G.; Gao, J.; Ceisel, A.; Hauf, M.; Sun, S. X.; Ewald, A. J.; Valverde, M. A.; Lewis, J. D.; Mumm, J. S.; Konstantopoulos, K.
Show abstract
Confined migration is essential for metastasis, yet how cells adapt their migratory and metabolic programs across stiffness-varying microenvironments remains unclear. We uncover a stiffness-dependent mechano-metabolic switch governing migration. In stiff microchannels, cells utilize the osmotic engine model (OEM), relying on NHE1 activity, front-polarization, and glycolysis. In soft microchannels, migration is OEM-independent and requires pyruvate-fueled oxidative phosphorylation (OxPHOS). This OxPHOS-driven motility depends on Arp3, {beta}1-integrin and integrin-linked kinase, which increase membrane tension in confinement that in turn triggers TRPM7-mediated calcium influx and RhoA-/myosin-II contractility. Activating and polarizing NHE1, via overexpression, hypoxia or elevated viscosity, restore OEM- and glycolysis-dependent migration in soft microchannels, bypassing the need for actin polymerization in vitro and in chick embryos. Mitochondria addition reinstates Arp3 polarization and enhances migration in NHE1-overexpressing cells, enabling engagement of both mechanisms in vitro and in zebrafish. These findings uncover a previously unrecognized mechano-metabolic link, revealing that intracellular rewiring overrides stiffness-dependent metabolic demands.
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