Epithelia delimits glial apical polarity against mechanical shear to maintain glia-neuron architecture
Martin, C. G.; Bent, J. S.; Singhvi, A.
Show abstract
For an organ to maintain proper architecture and function, its different component cell-types must coordinate their cell-shapes with each other through life. While cell-intrinsic developmental mechanisms driving homotypic cell-cell coordination are known, how heterotypic cells collectively regulate cell-shape is less-clear. We report that, in a sense-organ, epithelial cells delimit and maintain polarity domains of contacting glia, and thereby, associated neuron shapes throughout life. Briefly, Hsp co-chaperone UNC-23/BAG2 keeps epithelial apical domains from deforming with animal movement. Epithelial apical domains stretch aberrantly and progressively in adult unc-23 mutant animals, which in an FGFR-dependent manner, dislocates glial apical cytoskeleton proteins SMA-1/{beta}H-Spectrin and actin. This alters glial apical polarity and cell shape, and concomitantly, associated neuron-ending shape. Notably, UNC-23 acts temporally at a developmental critical period to maintain glia-neuron shape in adults, and spatially within a defined anatomical zone. Lastly, intervention in either epithelia, glia or neuron ameliorate or phenocopy unc-23 neural defects. Epi/endothelia resist mechanical stress and contact glia-neuron units across central/peripheral nervous systems and species, and all components of the identified molecular pathway are conserved and disease-relevant. Thus, we posit that analogous epithelia-glia mechanobiological coupling may broadly regulate glia-neuron shapes through animal life.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Tissue mechanics and systemic signaling safeguard epithelial tissue against spindle misorientation. 95%
- Cell intercalation driven by SMAD3 underlies secondary neural tube formation 95%
- Accelerated cell cycles enable organ regeneration under developmental time constraints in the Drosophila hindgut 95%
Similar papers in this journal
- A developmental pathway for epithelial-to-motoneuron transformation in C. elegans 96%
- C. elegans REMO-1, a glial GPCR, regulates stress-induced nervous system remodeling and behavior 96%
- The Epithelial Na+ Channel UNC-8 promotes an endocytic mechanism that recycles presynaptic components from old to new boutons in remodeling neurons 95%
Similar papers in this journal
- Glia detect and mount a protective response to loss of dendrite substructure integrity in C. elegans 96%
- A DEAD-box helicase drives the partitioning of a pro-differentiation NAB protein into nuclear foci 96%
- Pvf1-PvR-mediated crosstalk between the trachea and the gut guides intestinal stem cell migration to promote gut regeneration. 95%
"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.