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Yael Lavi

Publications and source records attributed to Yael Lavi.

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Local shear induces long-range suppression of cellular motion in stiff epithelial monolayers

As small particles skim our airways during breathing, or our intestines during digestion, the surface epithelium is subjected to local exogenous shear that deforms hundreds to thousands of tightly interacting cells. Unlike shear deformations applied at the macro-tissue scale or the micro-cell scale, the effects of such perturbations at the meso-scale remain largely unexplored. To address this, we developed a mesoscopic probe that adheres to the apical surface of an epithelial monolayer and applies magnetically driven local shear. We find that localized shear suppressed cellular migratory dynamics far beyond the immediate neighbors in stiffer layers, whereas in softer layers the same perturbation produced no detectable long-range change in dynamics. This mechano-transductive relationship is further supported by unconfined mature layers, in which increased stiffness was accompanied by restored shear responsiveness. Viewed at the level of collective dynamics, shear-induced migratory suppression in stiff layers was often accompanied by reduced MSD scaling exponents and changes in cell shape, but these responses were not fully captured by the epithelial jamming framework. Together, these observations provide a new perspective on how a local mechanical perturbation traverses the epithelial monolayer to influence both nearby and distant cellular environments.

physics.bio-ph

A self-organized compression network arrests epithelial proliferation

As epithelial development or wound closure approaches completion, cell proliferation progressively slows via contact inhibition of proliferation (CIP) - a mechanism understood as being strictly local. Here we report the discovery of inhibition of proliferation through an unanticipated mechanism that is non-local. As a confluent epithelial layer becomes progressively more jammed, two interpenetrating networks emerge: islands of mechanically compressed non-cycling cells percolating within an ocean of mechanically tensed cycling cells. The evolution of the compression network was found to be susceptible to both specific molecular stimulus and to injury-induced unjamming. Yet, in all circumstances, the size of compressed islands followed a power-law distribution that was well-captured by preferential network theory. Together, these findings demonstrate the existence of a network-based inhibition of proliferation (NIP) that is self-organizing and poised in proximity to criticality.

q-bio.CB