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Updated: May 21, 2026

Evaluation of Bioenergetic Function in Cerebral Vascular Endothelial Cells
Published on: November 19, 2016
Bioenergetic effects of mitochondrial-targeted coenzyme Q analogs in endothelial cells
Brian D Fink1, Judith A Herlein, Mark A Yorek
1Departments of Internal Medicine/Endocrinology, University of Iowa, Iowa City, Iowa, USA.
Abstract:
Mitochondrial-targeted analogs of coenzyme Q (CoQ) are under development to reduce oxidative damage induced by a variety of disease states. However, there is a need to understand the bioenergetic effects of these agents and whether or not these effects are related to redox properties, including their known pro-oxidant effects. We examined the bioenergetic effects of two mitochondrial-targeted CoQ analogs in their quinol forms, mitoquinol (MitoQ) and plastoquinonyl-decyl-triphenylphosphonium (SkQ1), in bovine aortic endothelial cells. We used an extracellular oxygen and proton flux analyzer to assess mitochondrial action at the intact-cell level. Both agents, in dose-dependent fashion, reduced the oxygen consumption rate (OCR) directed at ATP turnover (OCR(ATP)) (IC₅₀ values of 189 ± 13 nM for MitoQ and 181 ± 7 for SKQ1; difference not significant) while not affecting or mildly increasing basal oxygen consumption. Both compounds increased extracellular acidification in the basal state consistent with enhanced glycolysis. Both compounds enhanced mitochondrial superoxide production assessed by using mitochondrial-targeted dihydroethidium, and both increased H₂O₂ production from mitochondria of cells treated before isolation of the organelles. The manganese superoxide dismutase mimetic manganese(III) tetrakis(1-methyl-4-pyridyl)porphyrin did not alter or actually enhanced the actions of the targeted CoQ analogs to reduce OCR(ATP). In contrast, N-acetylcysteine mitigated this effect of MitoQ and SkQ1. In summary, our data demonstrate the important bioenergetic effects of targeted CoQ analogs. Moreover, these effects are mediated, at least in part, through superoxide production but depend on conversion to H₂O₂. These bioenergetic and redox actions need to be considered as these compounds are developed for therapeutic purposes.
Insights
Mitochondrial-targeted coenzyme Q analogs, Mitoquinol (MitoQ) and plastoquinonyl-decyl-triphenylphosphonium (SkQ1), reduce cellular respiration and enhance glycolysis. Their bioenergetic effects involve superoxide production, impacting therapeutic development.
Area of Science:
- Mitochondrial biochemistry
- Cellular bioenergetics
- Oxidative stress research
Background:
- Mitochondrial-targeted coenzyme Q (CoQ) analogs are developed to combat oxidative damage in various diseases.
- Understanding the bioenergetic impact and redox properties, including pro-oxidant effects, of these agents is crucial.
Purpose of the Study:
- To investigate the bioenergetic effects of two mitochondrial-targeted CoQ analogs, mitoquinol (MitoQ) and plastoquinonyl-decyl-triphenylphosphonium (SkQ1).
- To determine if these bioenergetic effects are linked to their redox properties, specifically superoxide and hydrogen peroxide production.
Main Methods:
- Utilized an extracellular oxygen and proton flux analyzer to measure mitochondrial function in intact bovine aortic endothelial cells.
- Assessed mitochondrial superoxide and hydrogen peroxide production using specific targeted probes.
- Examined the influence of a superoxide dismutase mimetic and N-acetylcysteine on the agents' effects.
Main Results:
- Both MitoQ and SkQ1 dose-dependently reduced oxygen consumption rate (OCR) linked to ATP turnover (OCR(ATP)) without significantly altering basal OCR.
- These analogs increased extracellular acidification, indicating enhanced glycolysis.
- MitoQ and SkQ1 elevated mitochondrial superoxide and hydrogen peroxide production.
- A superoxide dismutase mimetic did not inhibit, while N-acetylcysteine mitigated, the reduction in OCR(ATP).
Conclusions:
- Mitochondrial-targeted CoQ analogs exert significant bioenergetic effects, including reduced ATP-linked respiration and enhanced glycolysis.
- These effects are, at least partially, mediated by superoxide production that is dependent on conversion to hydrogen peroxide.
- The bioenergetic and redox actions of these compounds must be considered during their therapeutic development.
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