Establishment of Wnt ligand-receptor organization and cell polarity in the C. elegans embryo
Recouvreux, P.; Pai, P.; Torro, R.; Ludanyi, M.; Melenec, P.; Boughzala, M.; Bertrand, V.; Lenne, P.-F.
Show abstract
Different signaling mechanisms concur to ensure robust tissue patterning and cell fate instruction during animal development. Most of these mechanisms rely on signaling proteins that are produced, transported and detected. The spatiotemporal dynamics of signaling molecules is largely unknown, yet it determines signal activitys range and time frame. Here, we use the Caenorhabditis elegans embryo to study how Wnt ligands, an evolutionarily conserved family of signaling proteins, dynamically organize to establish cell polarity in a developing tissue. We identify how locally produced Wnt ligands spread to transmit information to distant target cells. With quantitative live imaging, we show that the Wnt ligands diffuse extracellularly through the embryo over a timescale shorter than the cell cycle. We extract diffusion coefficients of Wnt ligands and their receptor Frizzled (Fz) and characterize their co-localization. Integrating our different measurements and observations in a simple computational framework, we show how fast diffusion in the embryo can polarize target cells. Our results support diffusion-based long-range Wnt signaling, which is consistent with the dynamics of developing processes.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Adhesion-induced cortical flows pattern E-cadherin-mediated cell contacts 96%
- Nuclear deformability facilitates apical nuclear migration in the developing zebrafish retina 95%
- A mechanically regulated liquid-liquid phase separation of the transcriptional regulator Tono instructs muscle development 95%
Similar papers in this journal
- Occurrence of non-apical mitoses at the primitive streak, induced by relaxation of actomyosin and acceleration of the cell cycle, contributes to cell delamination during mouse gastrulation. 95%
- Filopodia-based contact stimulated collective migration drives tissue morphogenesis 95%
- Two Rac1 pools integrate the direction and coordination of collective cell migration 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.