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Updated: Jul 13, 2026

Identification of Intracellular Signaling Events Induced in Viable Cells by Interaction with Neighboring Cells Undergoing Apoptotic Cell Death
Published on: December 27, 2016
Fractalkine-induced MFG-E8 leads to enhanced apoptotic cell clearance by macrophages
Michael Miksa1, Dhruv Amin, Rongqian Wu
1The Feinstein Institute for Medical Research, Manhasset, New York 11030, USA.
Abstract:
Clearance of apoptotic cells is crucial to maintain cellular function under normal and pathological conditions. We have recently shown that administration of immature dendritic cell-derived exosomes to septic animals promotes phagocytosis of apoptotic cells and improves survival by providing milk fat globule epidermal growth factor-factor VIII (MFG-E8). MFG-E8 acts as an opsonin for apoptotic cells to be engulfed by phagocytosis. In the present study we investigated whether the CX(3)C-chemokine fractalkine (CX(3)CL1) promotes apoptotic cell clearance through the induction of MFG-E8 in peritoneal macrophages. Cultured rat peritoneal macrophages (pMphi) and RAW264.7 macrophages were stimulated with LPS and CX(3)CL1. MFG-E8 expression was assessed by Western blot, cytokine secretion was assessed by ELISA, and phagocytosis of apoptotic thymocytes was determined by microscopy. For in vivo studies, cecal ligation and puncture (CLP) was used to induce sepsis in rats and mice. LPS significantly decreased MFG-E8 levels and phagocytosis of apoptotic cells, whereas CX(3)CL1 induced MFG-E8 expression in both nonstimulated and LPS-stimulated pMphi, without affecting TNF-alpha and IL-6 release. Anti-MFG-E8 blocking antibodies completely abrogated the prophagocytic effect of CX(3)CL1. Twenty hours after the induction of sepsis in rats via CLP, plasma CX(3)CL1 levels as well as MFG-E8 production in peritoneal macrophages decreased by 21% and 56%, respectively. Administration of CX(3)CL1 on the other hand induced MFG-E8 and prevented tissue injury. We conclude that CX(3)CL1 induces MFG-E8 in vitro and in vivo and enhances clearance of apoptotic cells in an MFG-E8-dependent manner. These findings suggest a possible novel treatment for patients in sepsis.
Insights
Fractalkine (CX(3)CL1) enhances the clearance of apoptotic cells by inducing milk fat globule epidermal growth factor-factor VIII (MFG-E8) in macrophages. This mechanism, dependent on MFG-E8, shows potential for treating sepsis and improving patient outcomes.
Area of Science:
- Immunology
- Cell Biology
- Pathophysiology
Background:
- Clearance of apoptotic cells is vital for tissue homeostasis and preventing inflammatory diseases.
- Milk fat globule epidermal growth factor-factor VIII (MFG-E8) opsonizes apoptotic cells for phagocytosis.
- Previous studies demonstrated exosome-mediated MFG-E8 delivery improves survival in sepsis.
Purpose of the Study:
- To investigate if fractalkine (CX(3)CL1) promotes apoptotic cell clearance via MFG-E8 induction in macrophages.
- To assess the role of CX(3)CL1 in sepsis models.
Main Methods:
- In vitro studies using rat peritoneal macrophages and RAW264.7 cells stimulated with LPS and CX(3)CL1.
- Assessment of MFG-E8 expression via Western blot and phagocytosis assays.
- In vivo cecal ligation and puncture (CLP) sepsis model in rats and mice.
- Measurement of plasma CX(3)CL1 and macrophage MFG-E8 levels.
Main Results:
- CX(3)CL1 induced MFG-E8 expression in macrophages, enhancing apoptotic cell phagocytosis.
- LPS decreased MFG-E8 levels and phagocytosis, while CX(3)CL1 counteracted this effect.
- Anti-MFG-E8 antibodies blocked CX(3)CL1's prophagocytic activity.
- In CLP-induced sepsis, CX(3)CL1 administration increased MFG-E8 and prevented tissue injury.
Conclusions:
- CX(3)CL1 induces MFG-E8 in macrophages, promoting apoptotic cell clearance in an MFG-E8-dependent manner.
- CX(3)CL1 demonstrates therapeutic potential for sepsis by enhancing efferocytosis.
- Findings suggest CX(3)CL1 as a novel therapeutic target for sepsis management.
Related Concept Videos
Phagocytosis of Apoptotic Cells
Normal cells contain receptors that prevent them from being recognized by phagocytes.
The Extrinsic Apoptotic Pathway
The Intrinsic Apoptotic Pathway
Cellular Injury V: Apoptosis and Autophagy
Apoptosis

