Long-distance Wnt transport in axons highlights cell type-specific modes of Wnt transport in vivo
Pani, A. M.; Favichia, M.; Goldstein, B.
Show abstract
Wnt signaling performs critical functions in development, homeostasis, and disease states. Wnt ligands are secreted signaling proteins that often move between cells to activate signaling across a range of distances and concentrations. In different animals and developmental contexts, Wnts utilize distinct mechanisms for intercellular transport including diffusion, cytonemes and exosomes [1]. Mechanisms for intercellular Wnt dispersal remain controversial in part due to technical challenges with visualizing endogenous Wnt proteins in vivo, which has limited our understanding of Wnt transport dynamics. As a result, the cell-biological bases for long-range Wnt dispersal remain unknown in most instances, and the extent to which differences in Wnt transport mechanisms vary by cell type, organism, and/or ligand remain uncertain. To investigate processes underlying long-range Wnt transport in vivo, we utilized C. elegans as an experimentally tractable model where it is possible to tag endogenous Wnts with fluorescent proteins without disrupting signaling [2]. Live imaging of two endogenously tagged Wnt homologs revealed a novel mode for long-distance Wnt movement in axon-like structures that may complement Wnt gradients generated by diffusion and highlighted cell type-specific Wnt transport processes in vivo.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Short stop is a gatekeeper at the ring canals of Drosophila ovary 95%
- Distinct Actin-Dependent Nanoscale Assemblies Underlie The Dynamic And Hierarchical Organization Of E-Cadherin. 94%
- Sensory neurons contacting the cerebrospinal fluid require the Reissner fiber to detect spinal curvature in vivo 94%
Similar papers in this journal
- Large vesicle extrusions from C. elegans neurons are consumed and stimulated by glial-like phagocytosis activity of the neighboring cell 95%
- A microRNA that controls the emergence of embryonic movement 94%
- Multiple Guidance Mechanisms Control Axon Growth to Generate Precise T-shaped Bifurcation during Dorsal Funiculus Development in the Spinal Cord 93%
Similar papers in this journal
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.