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Tabanera, N.

Publications and source records attributed to Tabanera, N..

2 recordsLinked to original sources

Maternal vgll4a promotes blastoderm cohesion enabling yap1-mediated mechano-transduction during zebrafish epiboly

Cellular cohesion provides tissue tension, which is then sensed by the cytoskeleton and decoded by the activity of mechano-transducers, such as the transcriptional cofactor Yap1, thereby enabling morphogenetic responses in multi-cellular organisms. How cell cohesion is regulated is nevertheless unclear. Here we show that, zebrafish epiboly progression, a prototypic morphogenetic event that depends on Yap activity, requires the maternal contribution of the proposed yap1 competitor vgll4a. In embryos lacking maternal/zygotic vgll4a (MZvgll4a), spreading epithelial cells are ruffled, blastopore closure is delayed and the expression of the yap1-mediator arhgap18 is decreased, impairing the actomyosin ring at the syncytial layer. Furthermore, rather than competing with Yap1, vgll4a coordinate the levels of the E-Cadherin/{beta}-catenin adhesion complex components at the blastomere plasma membrane and hence their actin cortex distribution. Taking these results together, we propose that maternal vgll4a may act at epiboly initiation to coordinate blastomere adhesion/cohesion, which is a fundamental piece of the self-sustained bio-mechanical regulatory loop underlying morphogenetic rearrangements during gastrulation.

developmental biology

Stretching of the retinal pigment epithelium contributes to zebrafish optic cup morphogenesis

The vertebrate eye primordium consists of a pseudostratified neuroepithelium, the optic vesicle (OV), in which cells acquire neural retina or retinal pigment epithelium (RPE) fates. As these fates arise, the OV assumes a cup-shape, influenced by mechanical forces generated within the neural retina. Whether the RPE passively adapts to retinal changes or actively contributes to OV morphogenesis remains unexplored. Here, we generated a zebrafish Tg(E1-bhlhe40:GFP) line to track RPE morphogenesis and interrogate its participation in OV folding. We show that, in virtual absence of proliferation, RPE cells stretch into a squamous configuration, thereby matching the curvature of the underlying retina. Forced proliferation and localized interference with the RPE cytoskeleton disrupt its stretching and OV folding. Thus, extreme RPE flattening and accelerated differentiation are efficient solutions adopted by fast-developing species to enable timely optic cup formation. This mechanism differs in amniotes, in which proliferation largely drives RPE expansion with a much-reduced need of cell flattening.

developmental biology