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Acute Maneb Exposure Significantly Alters Both Glycolysis and Mitochondrial Function in Neuroblastoma Cells
Colin C Anderson1, Stefanos Aivazidis1, Crystal L Kuzyk1
1Department of Pharmaceutical Sciences, Skaggs School of Pharmacy and Pharmaceutical Sciences, University of Colorado, Aurora, Colorado 80045.
Abstract:
The pesticides paraquat (PQ) and maneb (MB) have been described as environmental risk factors for Parkinson's disease (PD), with mechanisms associated with mitochondrial dysfunction and reactive oxygen species generation. A combined exposure of PQ and MB in murine models and neuroblastoma cells has been utilized to further advance understanding of the PD phenotype. MB acts as a redox modulator through alkylation of protein thiols and has been previously characterized to inhibit complex III of the electron transport chain and uncouple the mitochondrial proton gradient. The purpose of this study was to analyze ATP-linked respiration and glycolysis in human neuroblastoma cells utilizing the Seahorse extracellular flux platform. Employing an acute, subtoxic exposure of MB, this investigation revealed a MB-mediated decrease in mitochondrial oxygen consumption at baseline and maximal respiration, with inhibition of ATP synthesis and coupling efficiency. Additionally, MB-treated cells showed an increase in nonmitochondrial respiration and proton leak. Further investigation into mitochondrial fuel flex revealed an elimination of fuel flexibility across all 3 major substrates, with a decrease in pyruvate capacity as well as glutamine dependency. Analyses of glycolytic function showed a substantial decrease in glycolytic acidification caused by lactic acid export. This inhibition of glycolytic parameters was also observed after titrating the MB dose as low as 6 μM, and appears to be dependent on the dithiocarbamate functional group, with manganese possibly potentiating the effect. Further studies into cellular ATP and NAD levels revealed a drastic decrease in cells treated with MB. In summary, MB significantly impacted both aerobic and anaerobic energy production; therefore, further characterization of MB's effect on cellular energetics may provide insight into the specificity of PD to dopaminergic neurons.
Insights
Maneb pesticide exposure significantly impairs cellular energy production, affecting both mitochondrial respiration and glycolysis. This disruption in energy metabolism may offer insights into the development of Parkinson's disease.
Area of Science:
- Neuroscience
- Toxicology
- Cellular Energetics
Background:
- Pesticides like maneb (MB) are linked to Parkinson's disease (PD) risk, potentially through mitochondrial dysfunction.
- Maneb acts as a redox modulator, inhibiting mitochondrial complex III and uncoupling the proton gradient.
Purpose of the Study:
- To investigate the effects of maneb on ATP-linked respiration and glycolysis in human neuroblastoma cells.
- To analyze cellular energy production following acute, subtoxic maneb exposure.
Main Methods:
- Utilized the Seahorse extracellular flux platform to assess cellular respiration and glycolysis.
- Exposed human neuroblastoma cells to maneb and analyzed mitochondrial oxygen consumption, ATP synthesis, and glycolytic function.
- Measured cellular ATP and NAD+ levels.
Main Results:
- Maneb exposure decreased mitochondrial oxygen consumption, ATP synthesis, and coupling efficiency.
- Observed increased non-mitochondrial respiration and proton leak, with impaired mitochondrial fuel flexibility.
- Maneb significantly inhibited glycolysis, reduced lactic acid export, and decreased cellular ATP and NAD+ levels.
Conclusions:
- Maneb profoundly impacts both aerobic and anaerobic cellular energy production.
- The observed disruptions in cellular energetics provide potential mechanisms linking maneb exposure to Parkinson's disease pathogenesis.
- Further research into maneb's effects on cellular energy metabolism may elucidate PD specificity to dopaminergic neurons.
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