Abstract
Polar epithelial cells form thin but resilient sheets that resist mechanical in-plane stress by relying on strong conformal contacts mediated by dedicated cell–cell connections linked to the viscoelastic cortex. In this study, we investigate the mechanical response of free-standing cell monolayers to central indentation as a function of orientation using a colloidal probe. We determine tissue tension by treating the deformed tissue as a minimal surface. Our findings reveal that the cortex tension of the basal side governs the purely elastic response to in-plane extension, while the apical side of the cells is soft and dissipative giving rise to a hysteresis at low indentation depth. At larger indentation depth, the apico-basal polarity is no longer relevant as the cells are apically compressed and the response is driven by the in-plane response of the prestressed basal side of the tissue. These results are particularly significant for lumen-forming epithelial cells, which experience substantial compressive forces especially apically due to elevated Laplace pressure.
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CITATION STYLE
Perez-Tirado, A., Unkelbach, U., & Janshoff, A. (2025). Tissue tension of planar, free standing cell monolayers measured by central deformation. PNAS Nexus, 4(10). https://doi.org/10.1093/pnasnexus/pgaf324
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