Podosome Force Generation Machinery: A Local Balance between Protrusion at the Core and Traction at the Ring

Archive ouverte

Thibault, Christophe | Bouissou, Anais | Proag, Amsha | Bourg, Nicolas | Pingris, Karine | Cabriel, Clément | Balor, Stephanie | Mangeat, Thomas | Vieu, Christophe | Dupuis, Guillaume | Fort, Emmanuel | Leveque-Fort, Sandrine | Maridonneau-Parini, Isabelle | Poincloux, Renaud

Edité par CCSD ; American Chemical Society -

International audience. Determining how cells generate and transduce mechanical forces at the nanoscale is a major technical challenge for the understanding of numerous physiological and pathological processes. Podosomes are submicrometer cell structures with a columnar F-actin core surrounded by a ring of adhesion proteins, which possess the singular ability to protrude into and probe the extracellular matrix. Using protrusion force microscopy, we have previously shown that single podosomes produce local nanoscale protrusions on the extracellular environment. However, how cellular forces are distributed to allow this protruding mechanism is still unknown. To investigate the molecular machinery of protrusion force generation, we performed mechanical simulations and developed quantitative image analyses of nanoscale architectural and mechanical measurements. First, in silico modeling showed that the deformations of the substrate made by podosomes require protrusion forces to be balanced by local traction forces at the immediate core periphery where the adhesion ring is located. Second, we showed that three-ring proteins are required for actin polymerization and protrusion force generation. Third, using DONALD, a 3D nanoscopy technique that provides 20 nm isotropic localization precision, we related force generation to the molecular extension of talin within the podosome ring, which requires vinculin and paxillin, indicating that the ring sustains mechanical tension. Our work demonstrates that the ring is a site of tension, balancing protrusion at the core. This local coupling of opposing forces forms the basis of protrusion and reveals the podosome as a nanoscale autonomous force generator.

Consulter en ligne

Suggestions

Du même auteur

Protrusion force microscopy reveals oscillatory force generation and mechanosensing activity of human macrophage podosomes

Archive ouverte | Labernadie, Anna | CCSD

International audience. Podosomes are adhesion structures formed in monocyte-derived cells. They are F-actin-rich columns perpendicular to the substrate surrounded by a ring of integrins. Here, to measure podosome p...

Working Together: Spatial Synchrony in the Force and Actin Dynamics of Podosome First Neighbors

Archive ouverte | Proag, Amsha | CCSD

International audience. Podosomes are mechanosensitive adhesion cell structures that are capable of applying protrusive forces onto the extracellular environment. We have recently developed a method dedicated to the...

Combining 3D single molecule localization strategies for reproducible bioimaging

Archive ouverte | Cabriel, Clément | CCSD

International audience. Here, we present a 3D localization-based super-resolution technique providing a slowly varying localization precision over a 1 μm range with precisions down to 15 nm. The axial localization i...

Chargement des enrichissements...