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Identification of Intracellular Signaling Events Induced in Viable Cells by Interaction with Neighboring Cells Undergoing Apoptotic Cell Death
Published on: December 27, 2016
Microenvironmental influences of apoptosis in vivo and in vitro
Christopher D Gregory1, John D Pound
1MRC/University of Edinburgh Centre for Inflammation Research, Queen's Medical Research Institute, Edinburgh, UK. chris.gregory@ed.ac.uk
Abstract:
The apoptosis program of physiological cell death elicits a range of non-phlogistic homeostatic mechanisms-"recognition, response and removal"-that regulate the microenvironments of normal and diseased tissues via multiple modalities operating over short and long distances. The molecular mechanisms mediate intercellular signaling through direct contact with neighboring cells, release of soluble factors and production of membrane-delimited fragments (apoptotic bodies, blebs and microparticles) that allow for interaction with host cells over long distances. These processes effect the selective recruitment of mononuclear phagocytes and the specific activation of both phagocytic and non-phagocytic cells. While much evidence is available concerning the mechanisms underlying the recognition and responses of phagocytes that culminate in the engulfment and removal of apoptotic cell bodies, relatively little is yet known about the non-phagocytic cellular responses to the apoptosis program. These responses regulate inflammatory and immune cell activation as well as cell fate decisions of proliferation, differentiation and death. Here, we review current knowledge of these processes, considering especially how apoptotic cells condition the microenvironments of normal and malignant tissues. We also discuss how apoptotic cells that persist in the absence of phagocytic clearance exert inhibitory effects over their viable neighbors, paying particular attention to the specific case of cell cultures and highlighting how new cell-corpse-clearance devices-Dead-Cert Nanoparticles-can significantly improve the efficacy of cell cultures through effective removal of non-viable cells in the absence of phagocytes in vitro.
Insights
Physiological cell death involves recognition, response, and removal mechanisms that regulate tissue microenvironments. Persistent apoptotic cells, especially in cell cultures, can inhibit viable neighbors, but new nanoparticles offer improved clearance.
Area of Science:
- Cell biology
- Immunology
- Tissue homeostasis
Background:
- Apoptosis, or programmed cell death, triggers homeostatic mechanisms for tissue regulation.
- Cellular communication during apoptosis involves direct contact, soluble factors, and membrane-delimited fragments.
- Phagocytic cells clear apoptotic bodies, but non-phagocytic responses remain less understood.
Purpose of the Study:
- To review current knowledge on non-phagocytic cellular responses to apoptosis.
- To examine how apoptotic cells influence normal and malignant tissue microenvironments.
- To discuss the impact of persistent apoptotic cells and novel clearance strategies.
Main Methods:
- Literature review of apoptosis research.
- Analysis of intercellular signaling mechanisms.
- Evaluation of cell-corpse clearance strategies in vitro.
Main Results:
- Apoptotic cells modulate microenvironments through various signaling modalities.
- Non-phagocytic cells play roles in immune activation and cell fate decisions.
- Persistent apoptotic cells can inhibit viable neighbors, particularly in cell cultures.
Conclusions:
- Understanding non-phagocytic responses to apoptosis is crucial for tissue homeostasis and disease.
- Novel methods like Dead-Cert Nanoparticles can enhance cell culture efficacy by removing non-viable cells.
- Effective clearance of apoptotic cells is vital for maintaining tissue health and experimental integrity.
Related Concept Videos
The Intrinsic Apoptotic Pathway
Apoptosis
The Extrinsic Apoptotic Pathway
Caspases
Cellular Injury V: Apoptosis and Autophagy
Phagocytosis of Apoptotic Cells
Normal cells contain receptors that prevent them from being recognized by phagocytes.

