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Normand, L.

Publications and source records attributed to Normand, L..

2 recordsLinked to original sources

Cancer cells transfer invasive properties through microRNAs contained in collagen-tracks

Invasion is a prerequisite for metastasis formation. During tumor development, the extracellular matrix (ECM) is remodeled in part through overexpression of type I collagen, increasing tumor microenvironment stiffness, and facilitating cancer dissemination. During breast cancer cell migration, we observed membrane debris left behind, attached to the collagen fibrils, along the migration path. We named these structures collagen-tracks. These collagen-tracks can be deposited in 3D matrices in vitro and in vivo and their formation is stimulated by the interaction between the ECM and matrix receptors, such as the discoidin-domain receptor (DDR1). However, they are different from structures already known to be involved in cell-cell communication such as exosomes and migrasomes, due to their specific nucleic acid and protein contents. When deposited by highly invasive breast cancer cells, internalized collagen-tracks reprogram non-invasive cells into highly pro-metastatic ones by inducing a partial epithelial-mesenchymal transition (EMT). This cell reprogramming is dependent on specific miRNAs present in the collagen-tracks, that are necessary to promote ECM degradation, increase cell motility and invasiveness. Collagen-tracks thus represent a new form of cell-cell communication important for driving tumor invasion that could be targeted to prevent metastasis.

cell biology↗

Probing mechanical interaction of immune receptors and cytoskeleton by membrane nanotube extraction

The role of force application in immune cell recognition is now well established, the force being transmitted between the actin cytoskeleton to the anchoring ligands through receptors such as integrins. In this chain, the mechanics of the cytoskeleton to receptor link, though clearly crucial, remains poorly understood. To probe this link, we combine mechanical extraction of membrane tubes from T cells using optical tweezers, and fitting of the resulting force curves with a viscoelastic model taking into account the cell and relevant molecules. We solicit this link using four different antibodies against various membrane bound receptors: antiCD3 to target the T Cell Receptor (TCR) complex, antiCD45 for the long sugar CD45, and two clones of antiCD11 targeting open or closed conformation of LFA1 integrins. Upon disruption of the cytoskeleton, the stiffness of the link changes for two of the receptors, exposing the existence of a receptor to cytoskeleton link - namely TCR-complex and open LFA1, and does not change for the other two where no such a link was expected. Our integrated approach allows us to probe, for the first time, the mechanics of the intracellular receptor-cytoskeleton link in immune cells.

biophysics↗