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Development of a Neurotoxicity Assay That is Tuned to Detect Mitochondrial Toxicants

Overview
Journal Arch Toxicol
Specialty Toxicology
Date 2019 Jun 14
PMID 31190196
Citations 25
Authors
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Abstract

Many neurotoxicants affect energy metabolism in man, but currently available test methods may still fail to predict mito- and neurotoxicity. We addressed this issue using LUHMES cells, i.e., human neuronal precursors that easily differentiate into mature neurons. Within the NeuriTox assay, they have been used to screen for neurotoxicants. Our new approach is based on culturing the cells in either glucose or galactose (Glc-Gal-NeuriTox) as the main carbohydrate source during toxicity testing. Using this Glc-Gal-NeuriTox assay, 52 mitochondrial and non-mitochondrial toxicants were tested. The panel of chemicals comprised 11 inhibitors of mitochondrial respiratory chain complex I (cI), 4 inhibitors of cII, 8 of cIII, and 2 of cIV; 8 toxicants were included as they are assumed to be mitochondrial uncouplers. In galactose, cells became more dependent on mitochondrial function, which made them 2-3 orders of magnitude more sensitive to various mitotoxicants. Moreover, galactose enhanced the specific neurotoxicity (destruction of neurites) compared to a general cytotoxicity (plasma membrane lysis) of the toxicants. The Glc-Gal-NeuriTox assay worked particularly well for inhibitors of cI and cIII, while the toxicity of uncouplers and non-mitochondrial toxicants did not differ significantly upon glucose ↔ galactose exchange. As a secondary assay, we developed a method to quantify the inhibition of all mitochondrial respiratory chain functions/complexes in LUHMES cells. The combination of the Glc-Gal-NeuriTox neurotoxicity screening assay with the mechanistic follow up of target site identification allowed both, a more sensitive detection of neurotoxicants and a sharper definition of the mode of action of mitochondrial toxicants.

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References
1.
Arroyo J, Jourdain A, Calvo S, Ballarano C, Doench J, Root D . A Genome-wide CRISPR Death Screen Identifies Genes Essential for Oxidative Phosphorylation. Cell Metab. 2016; 24(6):875-885. PMC: 5474757. DOI: 10.1016/j.cmet.2016.08.017. View

2.
Attene-Ramos M, Huang R, Michael S, Witt K, Richard A, Tice R . Profiling of the Tox21 chemical collection for mitochondrial function to identify compounds that acutely decrease mitochondrial membrane potential. Environ Health Perspect. 2014; 123(1):49-56. PMC: 4286281. DOI: 10.1289/ehp.1408642. View

3.
Bal-Price A, Crofton K, Leist M, Allen S, Arand M, Buetler T . International STakeholder NETwork (ISTNET): creating a developmental neurotoxicity (DNT) testing road map for regulatory purposes. Arch Toxicol. 2015; 89(2):269-87. PMC: 4309915. DOI: 10.1007/s00204-015-1464-2. View

4.
Bal-Price A, Crofton K, Sachana M, Shafer T, Behl M, Forsby A . Putative adverse outcome pathways relevant to neurotoxicity. Crit Rev Toxicol. 2015; 45(1):83-91. PMC: 5072123. DOI: 10.3109/10408444.2014.981331. View

5.
BECKER W, von Jagow G, Anke T, Steglich W . Oudemansin, strobilurin A, strobilurin B and myxothiazol: new inhibitors of the bc1 segment of the respiratory chain with an E-beta-methoxyacrylate system as common structural element. FEBS Lett. 1981; 132(2):329-33. DOI: 10.1016/0014-5793(81)81190-8. View