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bioRxiv · 10.1101/2020.04.30.068338

Piezo1 activation attenuates thrombin-induced blebbing in breast cancer cells

Abstract

Cancer cells exploit a variety of migration modes to leave primary tumors and establish metastases, including amoeboid cell migration facilitated by bleb formation. Here we demonstrate that thrombin induces dynamic blebbing in the MDA-MB-231 breast cancer cell line, and confirm that PAR2 activation is sufficient to induce this effect. Cell confinement has been implicated as a driving force in bleb-based migration. Unexpectedly, we find that gentle contact compression, exerted using a "Cell Press" to mechanically stimulate cells, attenuated thrombin-induced blebbing with an associated increase in cytosolic calcium. Thrombin-induced blebbing was similarly attenuated using Yoda1, an agonist of the mechanosensitive calcium channel Piezo1, and its capacity to attenuate blebbing was impaired in Piezo1 depleted cells. Additionally, Piezo1 activation suppressed and reversed the thrombin-induced phosphorylation of ERM proteins, which are implicated in the blebbing process, and this activity was in part mediated through activation of the PP1A/PP2A family of serine/threonine phosphatases. Our results provide mechanistic insights into Piezo1 activation as a suppressor of dynamic blebbing, specifically that which is induced by thrombin.

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BibTeXRIS

O'Callaghan, P., Engberg, A., Fatsis-Kavalopoulos, N., Sanchez, G., Idevall-Hagren, O., Kreuger, J.. 2020-04-30. Piezo1 activation attenuates thrombin-induced blebbing in breast cancer cells. https://doi.org/10.1101/2020.04.30.068338

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