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Updated: Aug 11, 2026

Activation of Apoptosis by Cytoplasmic Microinjection of Cytochrome c
Published on: June 29, 2011
Redox regulation of the caspases during apoptosis
M B Hampton1, B Fadeel, S Orrenius
1Institute of Environmental Medicine, Karolinska Institutet, Stockholm, Sweden.
Abstract:
Apoptosis is now widely recognized as being a distinct process of importance both in normal physiology and pathology. In the current paradigm for apoptotic cell death, the activity of a family of proteases, caspases, related to interleukin-1 beta-converting enzyme (ICE) orchestrates the multiple downstream events, such as cell shrinkage, membrane blebbing, glutathione (GSH) efflux, and chromatin degradation that constitute apoptosis. Recent studies suggest that mitochondria could be the principle sensor and that the release of mitochondrial factors, such as cytochrome c, is the critical event governing the fate of the cell.--One of the most reproducible inducers of apoptosis is mild oxidative stress, although it is unclear how an oxidative stimulus can activate the caspase cascade. Oxidative modification of proteins and lipids has also been observed in cells undergoing apoptosis in response to nonoxidative stimuli, suggesting that intracellular oxidation may be a general feature of the effector phase of apoptosis. The caspases themselves are cysteine-dependent enzymes and, as such, appear to be redox sensitive. Indeed, our recent work on hydrogen peroxide-mediated apoptosis suggests that prolonged or excessive oxidative stress can actually prevent caspase activation. A physiological example of this is the NADPH oxidase-derived oxidants generated by stimulated neutrophils that prevent caspase activation in these cells. Pursuant to these findings, stimulated neutrophils appear to use a specialized caspase-independent pathway to initiate phosphatidylserine (PS) exposure and subsequent phagocytic clearance. The possible implications of these dual roles for reactive oxygen species in apoptosis, that is, induction and inhibition of caspases, are discussed in the present review.
Insights
Oxidative stress can induce apoptosis by activating caspases, but excessive stress inhibits them. Neutrophils use a caspase-independent pathway for cell clearance, highlighting dual roles of reactive oxygen species in programmed cell death.
Area of Science:
- Cell Biology
- Biochemistry
- Pathology
Background:
- Apoptosis, or programmed cell death, is crucial in physiology and pathology.
- Caspases orchestrate apoptotic events, with mitochondria releasing factors like cytochrome c.
- Oxidative stress is a known inducer of apoptosis, but its precise role in caspase activation is complex.
Purpose of the Study:
- To explore the dual role of reactive oxygen species (ROS) in apoptosis.
- To investigate how oxidative stress influences caspase activation and inhibition.
- To understand the mechanisms of caspase-independent cell death pathways.
Main Methods:
- Review of recent studies on apoptosis and oxidative stress.
- Analysis of caspase sensitivity to redox modifications.
- Examination of neutrophil-mediated apoptosis and phosphatidylserine exposure.
Main Results:
- Mild oxidative stress can activate caspases, initiating apoptosis.
- Excessive oxidative stress and specific ROS, like those from NADPH oxidase, can inhibit caspases.
- Stimulated neutrophils utilize a caspase-independent pathway for phosphatidylserine exposure and clearance.
Conclusions:
- Reactive oxygen species have a dual role in apoptosis: induction and inhibition of caspases.
- Understanding these dual roles is key to comprehending programmed cell death.
- Caspase-independent pathways represent an alternative mechanism for cellular clearance.
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