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Leria, M.

Publications and source records attributed to Leria, M..

2 recordsLinked to original sources

Fast calcium-dependent reorientation of motile cilia basal bodies in the simple metazoan, Trichoplax.

Ciliary-based animal locomotion relies on the spatially coordinated beating of motile cilia to displace the body in liquid environments or across solid surfaces. The orientation of ciliary beating largely depends on the rotational polarity of the basal body, which in most animals is fixed and controlled by cues linked to the main body axes. The small marine animal Trichoplax exploits the beating of motile cilia in its lower epithelium to crawl on substrates. However, Trichoplax lacks defined body axes and exhibits rapid changes in body shape and direction of movement, thus raising the question of what controls the orientation and reorientation of ciliary beating. We show here that the basal bodies of the cilia in the lower epithelium of Trichoplax are oriented along the direction of the animal movements, and that they change their orientation throughout the lower epithelium in a few seconds time when the animal modifies its shape or changes direction following external mechanical stimuli. We also show that Ca2+ is required for fast basal body reorientation. Such rapid ciliary basal body reorientation has never been observed in metazoans before. Thus, our results identify a previously undescribed mechanism underlying directional motility in a metazoan and shed light on its subcellular determinants, bridging the scale between intra-cellular ciliary machinery and animal movement.

cell biology↗

Planar cell polarity coordination in a cnidarian embryo provides clues to animal body axis evolution

Body axis specification is a crucial event in animal embryogenesis and was an essential evolutionary innovation for founding the animal kingdom. It involves two distinct components that coordinate to establish the spatial organisation of the embryo: initiation of cascades of regionalised gene expression and orientation of morphogenetic processes such as body elongation. Intense interest in the first component has revealed Wnt/{beta}-catenin signalling as ancestrally responsible for initiating regional gene expression, but the evolutionary origin of oriented morphogenesis has received little attention. Here, by addressing the cell and morphological basis of body axis development in embryos of the cnidarian Clytia hemisphaerica, we have uncovered a simple and likely ancestral coordination mechanism between Wnt/{beta}-catenin signalling and directed morphogenesis. We show that the ligand Wnt3, known to initiate oral gene expression via localised Wnt/{beta}-catenin pathway activation, also has a key {beta}-catenin-independent role in globally orienting planar cell polarity (PCP) to direct morphogenesis along the oral-aboral axis. This PCP orientation occurs in two distinct steps: local orientation by Wnt3 and global propagation by conserved core PCP protein interactions along the body axis. From these findings we propose novel scenarios for PCP-driven symmetry-breaking underlying the emergence of the animal body plan.

developmental biology↗