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Gordillo Pi, C.

Publications and source records attributed to Gordillo Pi, C..

2 recordsLinked to original sources

Dynamic interactions between epithelial skin cells and a sensory cavity sculpt the growing olfactory orifice

During morphogenesis and in pathological conditions, gaps can form in the plane of epithelial barriers upon cellular forces that disrupt intercellular junctions. How the size of these epithelial holes further increases over time and what sets their shape remain poorly understood. Here we analyze the formation of the olfactory orifice (the nostril) in zebrafish, which opens and grows in the skin epithelium above a rosette of olfactory placode cells, allowing the sensory neurons to directly access odor cues. Using quantitative imaging and tissue-specific perturbations, we analyzed the dynamic remodeling of skin cells allowing the expansion of the orifice edge. We identified the sensory cavity located in the center of the placodal rosette as a crucial player that sets the size of the growing epithelial hole in the skin. We further showed that fine-tuning of actomyosin contractility within each tissue (skin and sensory cavity) exerts non-autonomous effects on the neighboring tissue, thereby shaping the nostril structure. This study uncovers dynamic cell behaviors and reciprocal tissue-tissue interplay that control the growth and shape of an epithelial hole in vivo.

developmental biology↗

Actomyosin contractility in olfactory placode neurons opens the skin epithelium to form the nostril

Despite their barrier function, epithelial layers can locally lose their integrity to create physiological openings during morphogenesis. The cellular and molecular mechanisms driving the formation of these epithelial breaks are only starting to be investigated. Here, we studied the formation of the zebrafish nostril (the olfactory orifice), which opens in the skin epithelium to expose the olfactory neurons to external odorant cues. Combining live imaging, drug treatments, laser ablation and tissue-specific functional perturbations, we demonstrate that the formation of the orifice is driven by a mechanical interplay between the olfactory placode neurons and the skin: the neurons pull on the overlying skin cells in an actomyosin-dependent manner, thus triggering the opening of the orifice. This work unravels an original mechanism to break an epithelial sheet, in which an adjacent group of cells instructs and mechanically assists the epithelium to induce its local rupture.

developmental biology↗