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How to Use Respiratory Chain Inhibitors in Toxicology Studies-Whole-Cell Measurements

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2022 Aug 26
PMID 36012337
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Abstract

Mitochondrial electron transport chain (ETC) inhibition is a phenomenon interesting in itself and serves as a tool for studying various cellular processes. Despite the fact that searching the term "rotenone" in PubMed returns more than 6900 results, there are many discrepancies regarding the directions of changes reported to be caused by this RTC inhibitor in the delicate redox balance of the cell. Here, we performed a multifaceted study of the popular ETC inhibitors rotenone and antimycin A, involving assessment of mitochondrial membrane potential and the production of hydrogen peroxide and superoxide anions at cellular and mitochondrial levels over a wide range of inhibitor concentrations (1 nmol/dm-100 µmol/dm). All measurements were performed with whole cells, with accompanying control of ATP levels. Antimycin A was more potent in hindering HepG2 cells' abilities to produce ATP, decreasing ATP levels even at a 1 nmol/dm concentration, while in the case of rotenone, a 10,000-times greater concentration was needed to produce a statistically significant decrease. The amount of hydrogen peroxide produced in the course of antimycin A biological activity increased rapidly at low concentrations and decreased below control level at a high concentration of 100 µmol/dm. While both inhibitors influenced cellular superoxide anion production in a comparable manner, rotenone caused a greater increase in mitochondrial superoxide anions compared to a modest impact for antimycin A. IC50 values for rotenone and antimycin A with respect to HepG2 cell survival were of the same order of magnitude, but the survival curve of cells treated with rotenone was clearly biphasic, suggesting a concentration-dependent mode of biological action. We propose a clear experimental setup allowing for complete and credible analysis of the redox state of cells under stress conditions which allows for better understanding of the effects of ETC inhibition.

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References
1.
Nakayama K, Okamoto F, Harada Y . Antimycin A: isolation from a new Streptomyces and activity against rice plant blast fungi. J Antibiot (Tokyo). 1956; 9(2):63-6. View

2.
Kamalian L, Chadwick A, Bayliss M, French N, Monshouwer M, Snoeys J . The utility of HepG2 cells to identify direct mitochondrial dysfunction in the absence of cell death. Toxicol In Vitro. 2015; 29(4):732-40. DOI: 10.1016/j.tiv.2015.02.011. View

3.
Lambert A, Brand M . Superoxide production by NADH:ubiquinone oxidoreductase (complex I) depends on the pH gradient across the mitochondrial inner membrane. Biochem J. 2004; 382(Pt 2):511-7. PMC: 1133807. DOI: 10.1042/BJ20040485. View

4.
Goncalves A, Maximo V, Lima J, Singh K, Soares P, Videira A . Involvement of p53 in cell death following cell cycle arrest and mitotic catastrophe induced by rotenone. Biochim Biophys Acta. 2011; 1813(3):492-9. PMC: 3051352. DOI: 10.1016/j.bbamcr.2011.01.006. View

5.
Hurd T, Prime T, Harbour M, Lilley K, Murphy M . Detection of reactive oxygen species-sensitive thiol proteins by redox difference gel electrophoresis: implications for mitochondrial redox signaling. J Biol Chem. 2007; 282(30):22040-51. DOI: 10.1074/jbc.M703591200. View