Live 3D imaging and mapping of shear stresses within tissues using incompressible elastic beads

Author:

Souchaud Alexandre1ORCID,Boutillon Arthur2ORCID,Charron Gaëlle1,Asnacios Atef1ORCID,Noûs Camille3,David Nicolas B.2ORCID,Graner François1ORCID,Gallet François1ORCID

Affiliation:

1. Matière et Systèmes Complexes, UMR 7057 associée au CNRS et à l'Université de Paris, 10 rue Alice Domon et Léonie Duquet, 75013 Paris, France

2. Laboratory for Optics and Biosciences, Ecole Polytechnique, CNRS, INSERM, Institut Polytechnique de Paris, 91128 Palaiseau, France

3. Laboratory Cogitamus, 10 rue Alice Domon et Léonie Duquet, 75013 Paris, France

Abstract

ABSTRACT To investigate the role of mechanical constraints in morphogenesis and development, we have developed a pipeline of techniques based on incompressible elastic sensors. These techniques combine the advantages of incompressible liquid droplets, which have been used as precise in situ shear stress sensors, and of elastic compressible beads, which are easier to tune and to use. Droplets of a polydimethylsiloxane mix, made fluorescent through specific covalent binding to a rhodamin dye, are produced by a microfluidics device. The elastomer rigidity after polymerization is adjusted to the tissue rigidity. Its mechanical properties are carefully calibrated in situ, for a sensor embedded in a cell aggregate submitted to uniaxial compression. The local shear stress tensor is retrieved from the sensor shape, accurately reconstructed through an active contour method. In vitro, within cell aggregates, and in vivo, in the prechordal plate of the zebrafish embryo during gastrulation, our pipeline of techniques demonstrates its efficiency to directly measure the three dimensional shear stress repartition within a tissue.

Funder

Ecole Doctorale EDPIF

Agence Régionale de Santé Île-de-France

Labex

Université de Paris

Agence Nationale de la Recherche

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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