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Updated: Feb 6, 2026

Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
Mitochondrial toxicity of organic arsenicals: membrane permeability transition pore opening and respiratory
Xiao-Yang Fan1, Lian Yuan1, Can Wu2
1State Key Laboratory of Virology & Key Laboratory of Analytical Chemistry for Biology and Medicine (MOE) , College of Chemistry and Molecular Sciences , Wuhan University , Wuhan 430072 , P. R. China . Email: yiliuchem@whu.edu.cn ; ; Tel: +8627 68753465.
Abstract:
In order to clarify the mitochondrial toxicity mechanism of the organic arsenical MOPIMP (2-methoxy-4-(((4-(oxoarsanyl) phenyl) imino) methyl) phenol), research was carried out at the sub-cell level based on the previous finding that the compound MOPIMP can damage the mitochondria by triggering a burst of ROS. After investigating its influence on isolated mitochondria in vitro, it was demonstrated that a high dose of MOPIMP with short-term exposure can induce mitochondrial swelling, decrease the membrane potential, enhance the permeability of H+ and K+, and induce membrane lipid peroxidation, indicating that it can result in an MPT process in a ROS-mediated and Ca2+-independent manner. Additionally, MPT was also aggravated as a result of impairment of the membrane integrity and membrane fluidity. In addition, short-term incubation between mitochondria and compound MOPIMP promoted the inhibition of respiratory chain complexes I, II, III and IV, as well as damage to the respiration process, which supported the previous finding about the burst of ROS. On the other hand, after long-term exposure by the organic arsenical MOPIMP, mitochondrial metabolic dysfunction was triggered, which was in accordance with perturbation of the respiratory chain complexes as well as the respiration process. This work systematically sheds light on the mitochondrial toxicity mechanism of the organic arsenical MOPIMP, including induction of the MPT process and inhibition of respiratory metabolism, which provides a potential target for organic arsenicals as anti-tumor drugs.
Insights
The organic arsenical MOPIMP induces mitochondrial toxicity by triggering the mitochondrial permeability transition (MPT) process and inhibiting respiratory metabolism. This research clarifies MOPIMP
Area of Science:
- Mitochondrial toxicology
- Biochemistry
- Pharmacology
Background:
- Organic arsenicals like MOPIMP can damage mitochondria by inducing reactive oxygen species (ROS).
- Understanding the precise mechanism of MOPIMP's mitochondrial toxicity is crucial for its potential therapeutic applications.
Purpose of the Study:
- To elucidate the sub-cellular mechanisms underlying MOPIMP-induced mitochondrial toxicity.
- To investigate the role of ROS, MPT, and respiratory chain function in MOPIMP toxicity.
Main Methods:
- In vitro studies using isolated mitochondria exposed to MOPIMP.
- Assessment of mitochondrial swelling, membrane potential, ion permeability, and lipid peroxidation.
- Analysis of respiratory chain complex activity and overall respiration.
Main Results:
- Short-term MOPIMP exposure induced mitochondrial swelling, decreased membrane potential, and increased ion permeability, indicating ROS-mediated, Ca2+-independent MPT.
- MPT was exacerbated by impaired membrane integrity and fluidity.
- MOPIMP inhibited respiratory chain complexes I-IV, leading to ROS burst and impaired respiration.
- Long-term exposure resulted in mitochondrial metabolic dysfunction and perturbation of the respiratory chain.
Conclusions:
- MOPIMP induces mitochondrial toxicity through MPT and inhibition of respiratory metabolism.
- The findings provide insights into the anti-tumor potential of organic arsenicals by targeting mitochondrial pathways.
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