CDH-3/Cadherin, YAP-1/YAP and EGL-44/TEAD promote SYX-2/Syntaxin and EFF-1 fusogen-mediated phagosome closure

Alec Whited1, Aladin Elkhalil1, Ginger Clark1

  • 1The University of Texas at Arlington.

Insights

Cell adhesion signaling involving cadherin, YAP-1/YAP, and TEAD regulates programmed cell death clearance. This pathway ensures efficient phagocytosis of dying cells during development.

Area of Science:

  • Developmental Biology
  • Cell Biology
  • Molecular Biology

Background:

  • Programmed cell death is crucial for development and homeostasis, requiring efficient clearance by phagocytosis.
  • The role of physical cell-cell interactions, like adhesion, in regulating programmed cell death clearance remains largely unexplored.
  • Compartmentalized Cell Elimination (CCE) in *C. elegans* embryos provides a model for studying distinct cell death modalities and clearance.

Purpose of the Study:

  • To investigate the role of cell-cell adhesion in a specific programmed cell death clearance pathway.
  • To elucidate the molecular mechanisms by which physical cell associations influence phagocytosis during development.

Main Methods:

  • In vivo studies in *C. elegans* embryos.
  • Analysis of cell-cell adhesion, signaling pathways (cadherin, YAP-1/YAP, TEAD), and phagocytic machinery (SYX-2/Syntaxin, EFF-1/fusogen).

Main Results:

  • Physical association between the dying tail-spike cell (TSC) and the hyp10 phagocyte via CDH-3/cadherin.
  • Cadherin-mediated adhesion activates YAP-1/YAP and EGL-44/TEAD signaling in the hyp10 phagocyte.
  • This pathway promotes the localization of SYX-2/Syntaxin, facilitating EFF-1/fusogen-mediated phagocytosis of the dying TSC.

Conclusions:

  • A novel cell-cell adhesion-driven signaling pathway regulates compartment-specific cell clearance during *C. elegans* development.
  • Adhesive forces and intercellular signaling are critical for efficient phagocytosis and removal of dying cells.
  • This study provides insights into the poorly understood mechanisms of phagocytic uptake and cell clearance.

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