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Using Confocal Analysis of Xenopus laevis to Investigate Modulators of Wnt and Shh Morphogen Gradients
Published on: December 14, 2015
Distinct Xenopus Nodal ligands sequentially induce mesendoderm and control gastrulation movements in parallel to the
Guillaume Luxardi1, Leslie Marchal, Virginie Thomé
1Institut de Biologie du Développement de Marseille Luminy, UMR 6216, CNRS-Université de la Méditerranée, Case 907, 13288 Marseille Cedex 09, France.
Abstract:
The vertebrate body plan is established in two major steps. First, mesendoderm induction singles out prospective endoderm, mesoderm and ectoderm progenitors. Second, these progenitors are spatially rearranged during gastrulation through numerous and complex movements to give rise to an embryo comprising three concentric germ layers, polarised along dorsoventral, anteroposterior and left-right axes. Although much is known about the molecular mechanisms of mesendoderm induction, signals controlling gastrulation movements are only starting to be revealed. In vertebrates, Nodal signalling is required to induce the mesendoderm, which has precluded an analysis of its potential role during the later process of gastrulation. Using time-dependent inhibition, we show that in Xenopus, Nodal signalling plays sequential roles in mesendoderm induction and gastrulation movements. Nodal activity is necessary for convergent extension in axial mesoderm and for head mesoderm migration. Using morpholino-mediated knockdown, we found that the Nodal ligands Xnr5 and Xnr6 are together required for mesendoderm induction, whereas Xnr1 and Xnr2 act later to control gastrulation movements. This control is operated via the direct regulation of key movement-effector genes, such as papc, has2 and pdgfralpha. Interestingly, however, Nodal does not appear to mobilise the Wnt/PCP pathway, which is known to control cell and tissue polarity. This study opens the way to the analysis of the genetic programme and cell behaviours that are controlled by Nodal signalling during vertebrate gastrulation. It also provides a good example of the sub-functionalisation that results from the expansion of gene families in evolution.
Insights
Nodal signaling sequentially induces mesendoderm and guides gastrulation movements in Xenopus embryos. This pathway controls axial mesoderm convergent extension and head mesoderm migration, revealing its dual role in early vertebrate development.
Area of Science:
- Developmental Biology
- Molecular Biology
- Evolutionary Biology
Background:
- Vertebrate body plan formation involves mesendoderm induction and gastrulation.
- Nodal signaling is known for mesendoderm induction but its role in gastrulation is less understood.
Purpose of the Study:
- To investigate the sequential roles of Nodal signaling in mesendoderm induction and gastrulation movements in Xenopus.
- To identify specific Nodal ligands and their downstream targets during these processes.
Main Methods:
- Time-dependent inhibition of Nodal signaling in Xenopus embryos.
- Morpholino-mediated knockdown of Nodal ligands (Xnr1, Xnr2, Xnr5, Xnr6).
- Analysis of gene expression for movement-effector genes (e.g., papc, has2, pdgfralpha).
Main Results:
- Nodal signaling is essential for both mesendoderm induction and gastrulation movements.
- Xnr5 and Xnr6 mediate mesendoderm induction, while Xnr1 and Xnr2 control gastrulation.
- Nodal directly regulates genes involved in cell movement, independent of the Wnt/PCP pathway.
Conclusions:
- Nodal signaling exhibits sub-functionalization, with different ligands controlling distinct developmental stages.
- This study elucidates novel roles for Nodal in regulating gastrulation cell behaviors and gene expression.
- Findings provide insights into the evolution of gene families and developmental processes.
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