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Updated: Aug 9, 2026

Fluorescence-Based Quantification of Mitochondrial Membrane Potential and Superoxide Levels Using Live Imaging in HeLa Cells
Published on: May 12, 2023
Investigation of drug-induced mitochondrial toxicity using fluorescence-based oxygen-sensitive probes
James Hynes1, Lisa D Marroquin, Vladimir I Ogurtsov
1Luxcel Biosciences Ltd., G.17, Lee Maltings, Cork, Ireland.
Abstract:
Mitochondrial dysfunction is a common mechanism of drug-induced toxicity. Early identification of new chemical entities (NCEs) that perturb mitochondrial function is of significant importance to avoid attrition in later stages of drug development. One of the most informative ways of assessing mitochondrial dysfunction is by measuring mitochondrial oxygen consumption. However, the conventional polarographic method of measuring oxygen consumption is not amenable to high sample throughput or automation. We present an alternative, low-bulk, high-throughput approach to the analysis of isolated-mitochondrial oxygen consumption using luminescent oxygen-sensitive probes. These probes are dispensable and are analyzed in standard microtitre plates on a fluorescence plate reader. Respiratory substrate and adenosine diphosphate (ADP) dependencies of mitochondrial oxygen consumption were assessed using the fluorescence-based method, and results compared favourably to conventional polarographic analysis. To assess assay performance, the method was then applied to the analysis of a panel of classical modulators of oxidative phosphorylation. The effect of uncoupler concentration was analyzed in detail to identify factors which would be important in applying this method to large scale NCE screening and mechanistic investigations. Results demonstrate that the 96-well format can accommodate up to approximately 200 compounds/day at a single concentration or alternatively IC(50) values can be generated for approximately 25 compounds. Throughput may be increased by moving to a 384-well plate format.
Insights
This study introduces a high-throughput method using luminescent probes to measure mitochondrial oxygen consumption, enabling early detection of drug-induced toxicity in new chemical entities.
Area of Science:
- Biochemistry
- Toxicology
- Drug Development
Background:
- Mitochondrial dysfunction is a key factor in drug-induced toxicity.
- Early identification of compounds affecting mitochondria is crucial for drug development.
- Conventional oxygen consumption assays lack high throughput.
Purpose of the Study:
- To develop a high-throughput, fluorescence-based assay for measuring mitochondrial oxygen consumption.
- To validate this new method against traditional techniques.
- To assess its utility in screening new chemical entities for mitochondrial toxicity.
Main Methods:
- Utilized luminescent oxygen-sensitive probes in microtitre plates.
- Measured mitochondrial oxygen consumption using a fluorescence plate reader.
- Assessed respiratory substrate and ADP dependencies, and modulator effects.
Main Results:
- The fluorescence-based method showed favorable comparison with polarographic analysis.
- The assay demonstrated high throughput, analyzing up to 200 compounds/day in a 96-well format.
- IC50 values could be generated for approximately 25 compounds, with potential for higher throughput in 384-well plates.
Conclusions:
- A novel, high-throughput fluorescence assay for mitochondrial oxygen consumption was successfully developed.
- This method offers a viable alternative for early screening of drug candidates for mitochondrial toxicity.
- The assay facilitates efficient mechanistic investigations and large-scale screening of new chemical entities.