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Updated: May 13, 2025

"Phagosome Closure Assay" to Visualize Phagosome Formation in Three Dimensions Using Total Internal Reflection Fluorescent Microscopy TIRFM
Published on: August 26, 2016
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.
Abstract:
Physical interactions between cells, such as cell-cell junctions, can profoundly impact cell fate. A vital cell fate for normal development and homeostasis is programmed cell death. Cells fated to die must be efficiently cleared away via phagocytosis, and defects are associated with a variety of diseased states. Whether cell-cell physical associations affect programmed cell elimination has not been well-explored. Here we describe, in vivo, a cell-cell adhesion-driven signaling pathway that ensures compartment-specific cell clearance during development. We previously described the specialized cell death program "Compartmentalized Cell Elimination" (CCE) in the C. elegans embryo. During CCE, the tail-spike cell (TSC), a polarized epithelial cell, undergoes a tripartite, ordered, and organized death sequence, allowing for the study of three distinct death modalities in a single cell setting. Prior to its demise, the TSC serves as a scaffold for the tail tip, formed by the hyp10 epithelial cell which develops along the TSC process. The hyp10 cell in turn also serves as the phagocyte for the dying TSC process. Here we present data suggesting that the physical association between the dying TSC and hyp10 phagocyte via CDH-3/cadherin mediates function of the mechanosensitive transcriptional coactivator YAP-1/YAP and its partner EGL-44/TEAD in the hyp10 phagocyte to promote localization of hyp10 SYX-2/Syntaxin around the dying TSC remnant. This pathway facilitates the phagocytic function of EFF-1/fusogen, which we have previously shown to be required for phagosome sealing during CCE. Our work sheds additional light on a poorly understood step of phagocytosis and implicates adhesive forces and signaling between cells as important in cell uptake.
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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