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Biology subjects

Takada, R.

Publications and source records attributed to Takada, R..

3 recordsLinked to original sources

Self-organized fingering instabilities drive the emergence of tissue morphogenesis in digit organoids.

The emergence of complex anatomical structures -such as the hands- from unstructured tissues remains a fundamental question in developmental biology. Turing-type reaction-diffusion models have provided a molecular explanation for the periodic pre-patterning of digits; however, the physical principles driving 3D morphogenesis remain incompletely understood. To identify the biophysical design principles leading to digit formation, we develop a limb-mesenchymal organoid system that spontaneously forms elongated, digit-like protrusions. Iterations between experiments and agent-based models at the cellular level identify sufficient microscopic mechanisms leading to morphogenesis of digit-like structures: symmetry-breaking and the elongation of digits result from a combination of differential cell adhesion and morphogen-induced chemotaxis and convergent-extension. Lastly, to describe tissue-scale deformations, we perform a coarse-graining analysis of the agent-based model and derive a continuum model that reveals a structural analogy to Cahn-Hilliard-type equations. These equations are typically used to describe fluid phase separation and so-called ''fingering instabilities'' in fluid physics. Here, we show that they also accurately describe organoid morphogenesis. These findings suggest that ''finger'' formation is driven by a mechanical fingering instability acting in concert with chemical patterning, shedding a new light on vertebrate limb morphogenesis.

developmental biology↗

Emergence of cell polarity by reciprocal interactions between Wnt and core PCP components

Planar cell polarity (PCP) is established by asymmetric localization of core PCP components in each cell. Since some Wnt proteins can induce PCP in vertebrates, it has been proposed that Wnt concentration gradients provide spatial cues for polarization. Here, however, we present evidence that Wnt11 can regulate PCP in a gradient-independent manner. In the neural plate of Xenopus embryos, endogenous Wnt11 does not form an obvious gradient in the direction of PCP, but is polarized at cell boundaries together with core PCP components. Wnt11 polarization is dependent on core PCP components, while polarization of core PCP components can also be induced by Wnt11, indicating a mutual amplification loop between Wnt11 and core PCP components in PCP formation. Furthermore, Wnt11 and core PCP components compose an intercellular loop to coordinate the direction of polarity. Thus, we propose that local and reciprocal interactions between Wnt11 and core PCP components can generate PCP.

developmental biology↗

Dynamic polarization of heparan sulfate proteoglycans is involved in planar cell polarity and localization of endogenous Wnt11 during vertebrate neural tube formation.

Planar cell polarity (PCP) on a tissue plane is established by asymmetric polarization of core PCP components in individual cells. Recently, we found that Wnt11 organizes PCP in Xenopus embryos by accumulating locally with core PCP components to be polarized, but not by acting as a directional cue forming a global gradient. Since heparan sulfate proteoglycans (HSPGs) associate with Wnt on cell membranes, how HSPGs are involved in Wnt polarization and PCP formation is a central issue. Here, we show that HSPGs are dynamically organized in a polarized manner, as with core PCP components and Wnt11, by associating with them. While HSPGs with HS chains enriched by N-sulfation and N-deacetylation are polarized, depending on Wnt and core PCP components, NDST1, which catalyzes these modifications, is required for Wnt11 polarization and PCP formation. Thus, mutual regulation among HS chains, Wnt11, and PCP components appears to be essential for PCP formation. HighlightsO_LIndst1 is required for Wnt11 localization and proper PCP formation. C_LIO_LINDST1-modified HS chains are polarized in the neural plate during development. C_LIO_LIPolarization of NDST1-modified HS chains depends on PCP formation. C_LIO_LIPositive feedback loop results in polarized distribution of HSPGs, Wnt11, and PCP. C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=173 SRC="FIGDIR/small/669988v1_ufig1.gif" ALT="Figure 1"> View larger version (52K): org.highwire.dtl.DTLVardef@1db75adorg.highwire.dtl.DTLVardef@10aec47org.highwire.dtl.DTLVardef@1e50d5org.highwire.dtl.DTLVardef@4cd41c_HPS_FORMAT_FIGEXP M_FIG C_FIG

developmental biology↗