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Updated: Apr 27, 2026

Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Mitochondrial reactive oxygen species (ROS) and ROS-induced ROS release
Dmitry B Zorov1, Magdalena Juhaszova1, Steven J Sollott1
1A. N. Belozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, Russia; and Laboratory of Cardiovascular Science, National Institute on Aging, National Institutes of Health, Baltimore, Maryland.
Abstract:
Byproducts of normal mitochondrial metabolism and homeostasis include the buildup of potentially damaging levels of reactive oxygen species (ROS), Ca(2+), etc., which must be normalized. Evidence suggests that brief mitochondrial permeability transition pore (mPTP) openings play an important physiological role maintaining healthy mitochondria homeostasis. Adaptive and maladaptive responses to redox stress may involve mitochondrial channels such as mPTP and inner membrane anion channel (IMAC). Their activation causes intra- and intermitochondrial redox-environment changes leading to ROS release. This regenerative cycle of mitochondrial ROS formation and release was named ROS-induced ROS release (RIRR). Brief, reversible mPTP opening-associated ROS release apparently constitutes an adaptive housekeeping function by the timely release from mitochondria of accumulated potentially toxic levels of ROS (and Ca(2+)). At higher ROS levels, longer mPTP openings may release a ROS burst leading to destruction of mitochondria, and if propagated from mitochondrion to mitochondrion, of the cell itself. The destructive function of RIRR may serve a physiological role by removal of unwanted cells or damaged mitochondria, or cause the pathological elimination of vital and essential mitochondria and cells. The adaptive release of sufficient ROS into the vicinity of mitochondria may also activate local pools of redox-sensitive enzymes involved in protective signaling pathways that limit ischemic damage to mitochondria and cells in that area. Maladaptive mPTP- or IMAC-related RIRR may also be playing a role in aging. Because the mechanism of mitochondrial RIRR highlights the central role of mitochondria-formed ROS, we discuss all of the known ROS-producing sites (shown in vitro) and their relevance to the mitochondrial ROS production in vivo.
Insights
Mitochondria release reactive oxygen species (ROS) through brief openings of the mitochondrial permeability transition pore (mPTP) for cell health. However, excessive ROS release can damage or destroy cells, potentially contributing to aging.
Area of Science:
- Mitochondrial biology
- Cellular homeostasis
- Redox signaling
Background:
- Mitochondrial metabolism generates reactive oxygen species (ROS) and Ca(2+) that require regulation.
- Brief openings of the mitochondrial permeability transition pore (mPTP) are crucial for maintaining mitochondrial homeostasis.
- Redox stress responses involve mitochondrial channels like mPTP and inner membrane anion channel (IMAC).
Purpose of the Study:
- To explore the physiological role of mitochondrial channels in regulating ROS.
- To define the mechanism of ROS-induced ROS release (RIRR).
- To investigate the adaptive and maladaptive functions of RIRR in cellular health and disease.
Main Methods:
- Review of existing literature on mitochondrial ROS production.
- Analysis of the roles of mPTP and IMAC in redox homeostasis.
- Discussion of in vitro and in vivo evidence for mitochondrial ROS production.
Main Results:
- Brief, reversible mPTP openings facilitate adaptive ROS release, acting as a housekeeping function.
- Sustained mPTP openings can lead to excessive ROS bursts, causing mitochondrial and cellular damage.
- RIRR can have both beneficial roles (e.g., removing damaged cells) and detrimental effects (e.g., pathological cell death).
Conclusions:
- Mitochondrial ROS release via RIRR is a key process with dual adaptive and maladaptive functions.
- Dysregulated RIRR, involving mPTP and IMAC, may contribute to aging and various pathologies.
- Understanding mitochondrial ROS production sites is crucial for comprehending RIRR in vivo.
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