Phagocytic receptor CED-1 initiates a signaling pathway for degrading engulfed apoptotic cells
Xiaomeng Yu1, Nan Lu, Zheng Zhou
1Verna and Marrs McLean Department of Biochemistry and Molecular Biology, Baylor College of Medicine, Houston, Texas, United States of America.
Abstract:
Apoptotic cells in animals are engulfed by phagocytic cells and subsequently degraded inside phagosomes. To study the mechanisms controlling the degradation of apoptotic cells, we developed time-lapse imaging protocols in developing Caenorhabditis elegans embryos and established the temporal order of multiple events during engulfment and phagosome maturation. These include sequential enrichment on phagocytic membranes of phagocytic receptor cell death abnormal 1 (CED-1), large GTPase dynamin (DYN-1), phosphatidylinositol 3-phosphate (PI(3)P), and the small GTPase RAB-7, as well as the incorporation of endosomes and lysosomes to phagosomes. Two parallel genetic pathways are known to control the engulfment of apoptotic cells in C. elegans. We found that null mutations in each pathway not only delay or block engulfment, but also delay the degradation of engulfed apoptotic cells. One of the pathways, composed of CED-1, the adaptor protein CED-6, and DYN-1, controls the rate of enrichment of PI(3)P and RAB-7 on phagosomal surfaces and the formation of phagolysosomes. We further identified an essential role of RAB-7 in promoting the recruitment and fusion of lysosomes to phagosomes. We propose that RAB-7 functions as a downstream effector of the CED-1 pathway to mediate phagolysosome formation. Our work suggests that phagocytic receptors, which were thought to act specifically in initiating engulfment, also control phagosome maturation through the sequential activation of multiple effectors such as dynamin, PI(3)P, and Rab GTPases.
Insights
Phagocytic receptors like CED-1 coordinate apoptotic cell degradation by controlling phagosome maturation. This study reveals their role extends beyond engulfment to regulate lysosome fusion and degradation processes.
Area of Science:
- Cell biology
- Developmental biology
- Molecular biology
Background:
- Apoptotic cells are cleared by phagocytic cells via engulfment and degradation within phagosomes.
- Understanding the molecular mechanisms governing phagosome maturation is crucial for cellular homeostasis.
Purpose of the Study:
- To elucidate the temporal sequence of events during apoptotic cell engulfment and phagosome maturation in C. elegans.
- To investigate the roles of specific genetic pathways and molecular players in these processes.
Main Methods:
- Utilized time-lapse imaging in developing Caenorhabditis elegans embryos.
- Established the temporal order of molecular events on phagocytic membranes.
- Investigated the function of genetic pathways involved in engulfment and phagosome maturation.
Main Results:
- Identified sequential enrichment of CED-1, DYN-1, PI(3)P, and RAB-7 on phagocytic membranes.
- Demonstrated that mutations in engulfment pathways delay phagosome maturation and degradation.
- Showed that the CED-1 pathway regulates PI(3)P and RAB-7 enrichment, and RAB-7 is essential for lysosome recruitment and phagolysosome formation.
Conclusions:
- Phagocytic receptors, including CED-1, play a dual role in initiating engulfment and controlling subsequent phagosome maturation.
- RAB-7 acts as a downstream effector of the CED-1 pathway, mediating phagolysosome formation.
- Phagosome maturation involves the sequential activation of effectors like dynamin, PI(3)P, and Rab GTPases.
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