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Martina-Perez, S. F.

Publications and source records attributed to Martina-Perez, S. F..

2 recordsLinked to original sources

Electrotaxis disrupts patterns of cell-cell interactions of human corneal epithelial cells in vitro

Electrotaxis, the process by which eukaryotic cells establish a polarity and move directionally along an electric field, is a well-studied mechanism to steer the migration of cells in vitro and in vivo. While the influence of an electric field on single cells in culture is well-documented, the influence of the electric field on cell-cell interactions has not been well studied. In this work, we quantify the length, duration and number of cell-cell interactions during electrotaxis of human corneal epithelial cells and compare the properties of these interactions with those arising in the absence of an electric field. We find that contact inhibition of locomotion and velocity alignment, two key behaviours observed during dynamic physical interactions between cells in vitro, are strongly affected by an electric field. Further-more, we establish a link between the location of a cell-cell contact on the cell surface and the resulting cell interaction behaviours. By mapping the regions of the cell surface with a characteristic response to contact with another cell, we find that the spatial distribution of possible responses upon cell-cell contact is altered upon induction of an electric field. Altogether, this work shows how the electric field not only influences individual cell motility and directionality, but also affects cell-cell interactions.

cell biology↗

Spatial heterogeneity in collective electrotaxis: continuum modelling and applications to optimal control

Collective electrotaxis is a phenomenon that occurs when a cellular collective, for example an epithelial monolayer, is subjected to an electric field. Biologically, it is well known that the velocity of migration during the collective electrotaxis of large epithelia exhibits significant spatial heterogeneity. In this work, we demonstrate that the heterogeneity of velocities in the electrotaxing epithelium can be accounted for by a continuum model of cue competition in different tissue regions. Having established a working model of competing migratory cues in the migrating epithelium, we develop and validate a reaction-convection-diffusion model that describes the movement of an epithelial monolayer as it undergoes electrotaxis. We use the model to predict how tissue size and geometry affect the collective migration of MDCK monolayers, and to propose several ways in which electric fields can be designed such that they give rise to a desired spatial pattern of collective migration. We conclude with two examples that demonstrate practical applications of the method in designing bespoke stimulation protocols.

biophysics↗