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A morphogenic cascade emerges from the co-evolution of spheroid fluidization and fracturing of multicellular barriers

Wu, S. K.; Ho, C. Z.; Sun, F.; Lou, Y.; Huang, C. B.-X.; Xiao, J.; Shagirov, M.; Yow, I.; Chin, J. F. L.; Verma, S.; Yap, A.; Lin, Y.; Hiraiwa, T.; Low, B. C.

2023-10-17 cell biology
10.1101/2023.09.25.559247 bioRxiv
Show abstract

Cells migrate and invade tissues during development, immune responses, and cancer. Collective invasion is generally understood to be driven by invading cells unjamming and pushing through barriers such as the extracellular matrix and surrounding tissues. Whether these barriers actively contribute to invasion remains unclear. Using ovarian adenocarcinoma spheroids invading mesothelium derived from benign pleural effusions as an experimental model, combined with modelling, we examine invasion across molecular to multicellular scales. We identify intercellular integrin adhesions linking invasive leader cells to the tissue barrier, triggering apical constrictions within the barrier. This constriction shrinks cell-cell contacts, leading to barrier rupture. Thus, the tissue barrier plays a mechanically active role in invasion. Rather than cells pushing through, we find that coordinated subcellular contractility between the invading leader cell and the barrier drives barrier tensile rupture and invasion, independent of a jamming transition. Together, our findings challenge prevailing paradigms of collective cell invasion.

Published in Developmental Cell (predicted rank #8) · training set

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