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Strategies for Tracking Anastasis, A Cell Survival Phenomenon that Reverses Apoptosis
Published on: February 16, 2015
The pathways of cell death: oncosis, apoptosis, and necrosis
B F Trump1, I K Berezesky, S H Chang
1Department of Pathology, University of Maryland School of Medicine, Baltimore 21201, USA.
Abstract:
The pathways and identification of cell injury and cell death are of key importance to the practice of diagnostic and research toxicologic pathology. Following a lethal injury, cellular reactions are initially reversible. Currently, we recognize two patterns, oncosis and apoptosis. Oncosis, derived from the Greek word "swelling," is the common pattern of change in infarcts and in zonal killing following chemical toxicity, e.g., centrilobular hepatic necrosis after CC14 toxicity. In this common reaction, the earliest changes involve cytoplasmic blebbing, dilatation of the endoplasmic reticulum (ER), swelling of the cytosol, normal or condensed mitochondria, and chromatin clumping in the nucleus. In apoptosis, the early changes involve cell shrinkage, cytosolic shrinkage, more marked chromatin clumping, cytoplasmic blebbing, swollen ER on occasion, and mitochondria that are normal or condensed. Following cell death, both types undergo postmortem changes collectively termed "necrosis." In the case of oncosis, this typically involves broad zones of cells while, in the case of apoptosis, the cells and/or the fragments are often phagocytized prior to their death by adjacent macrophages or parenchymal cells. In either case, the changes converge to a pattern that involves mitochondrial swelling, mitochondrial flocculent densities and/or calcification, karyolysis, and disruption of plasmalemmal continuity. The biochemical mechanisms of cell death are currently under intense study, particularly concerning the genes involved in the process. Pro-death genes include p53, the ced-3/ICE proteases, and the Bax family. Anti-death genes include ced-9/Bcl-2 and the adenovirus protein EIB. It is clear that ion deregulation, particularly that of [Ca2+]i plays an important role in cell death following either apoptosis or oncosis. Genetic evidence strongly indicates that activation of proteases is an important step, possibly very near to the point where cell death occurs.
Insights
Cell injury and death occur via oncosis (swelling) or apoptosis (shrinkage), with distinct early changes. Both pathways converge to necrosis, involving ion deregulation and protease activation.
Area of Science:
- Toxicologic pathology
- Cellular pathology
- Molecular biology
Background:
- Cell injury and death are critical in toxicologic pathology.
- Understanding these processes aids diagnosis and research.
- Two primary patterns of cellular reaction are recognized: oncosis and apoptosis.
Purpose of the Study:
- To delineate the distinct pathways of cell injury and death.
- To highlight the convergence of these pathways into necrosis.
- To explore the biochemical mechanisms and genetic factors involved.
Main Methods:
- Observational analysis of cellular changes following lethal injury.
- Comparison of morphological and biochemical features of oncosis and apoptosis.
- Review of genetic factors and ion deregulation in cell death.
Main Results:
- Oncosis involves cell swelling, ER dilatation, and cytoplasmic blebbing.
- Apoptosis is characterized by cell shrinkage, chromatin condensation, and blebbing.
- Both pathways culminate in necrosis, marked by mitochondrial changes, karyolysis, and membrane disruption.
- Ion deregulation, particularly [Ca2+]i, and protease activation are key biochemical events.
Conclusions:
- Oncosis and apoptosis represent distinct yet converging pathways to cell death.
- Morphological and biochemical hallmarks differentiate these processes.
- Genetic factors and ion homeostasis are crucial in regulating cell death.
- Further research into biochemical mechanisms is essential for understanding cell death in pathology.
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