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Illand, A.

Publications and source records attributed to Illand, A..

2 recordsLinked to original sources

Actin-Driven Nanotopography Enhances Integrin Molecular Clutch in Developing Tissue

Morphogenesis requires building stable macromolecular structures from highly dynamic proteins. Muscles are anchored by long-lasting integrin adhesions to resist contractile force. However, the mechanisms governing integrin diffusion, immobilization, and activation within developing tissues remain elusive. Here, we show that actin polymerisation-driven membrane protrusions form nanotopographies that enable strong adhesion at Drosophila muscle attachment sites (MAS). Super-resolution microscopy revealed that integrins assemble adhesive belts around Arp2/3-dependent actin protrusions, forming invadosome-like structures with membrane nanotopographies. Single protein tracking showed that, during MAS development, integrins became immobile and confined within diffusion traps formed by the membrane nanotopographies. Actin filaments also displayed restricted motion and confinement, indicating strong mechanical connection with integrins. Using isolated muscles cells, we show that substrate nanotopography, rather than rigidity, drives adhesion maturation by regulating actin protrusion, integrin diffusion and immobilization. These results thus demonstrate that actin-polymerisation driven membrane protrusions are essential for the formation of strong integrin adhesions sites in the developing embryo, and highlight the important contribution of geometry to morphogenesis.

cell biology↗

Fibroblasts generate topographical cues that steer cancer cell migration

Fibroblasts play a fundamental role in tumor development. Among other functions, they regulate cancer cells migration through rearranging the extracellular matrix, secreting soluble factors and establishing direct physical contacts with cancer cells. Here, we report that migrating fibroblasts deposit on the substrate a network of tubular structures that serves as guidance cue for cancer cell migration. Such membranous tubular network, hereafter called tracks, is stably anchored to the substrate in a {beta}5 integrin-dependent manner. We found that cancer cells specifically adhere to tracks by using clathrin-coated structures that pinch and engulf tracks. Tracks represent thus a spatial memory of fibroblast migration paths that is read and erased by cancer cells directionally migrating along them. We propose that fibroblast tracks represent a topography-based intercellular communication system capable of steering cancer cells migration. TEASERThe migration path of fibroblasts is marked by tubules that act as railways to direct following cancer cell migration.

cancer biology↗