Neurotoxicity and underlying cellular changes of 21 mitochondrial respiratory chain inhibitors

Johannes Delp1,2, Andrea Cediel-Ulloa3,4, Ilinca Suciu1,5

  • 1In Vitro Toxicology and Biomedicine, Department inaugurated by the Doerenkamp-Zbinden Foundation, University of Konstanz, Universitaetsstr. 10, 78464, Konstanz, Germany.

Archives of Toxicology
|January 29, 2021
PubMed

Insights

Mitochondrial inhibitors can trigger parkinsonian deficits, but assays for early events may overestimate toxicity. Specific neurodegeneration is not easily predicted from mitochondrial dysfunction tests, highlighting caveats in hazard assessment.

Area of Science:

  • Neurotoxicology
  • Mitochondrial Biology
  • Environmental Health

Background:

  • Inhibition of mitochondrial respiratory chain complex I (cI) by rotenone and MPP+ causes dopaminergic neuron degeneration.
  • An adverse outcome pathway (AOP:3) suggests any mitochondrial respiratory chain inhibitor can induce parkinsonian motor deficits.
  • The general applicability of AOP:3 and its associated in vitro assays require further investigation using diverse compounds.

Purpose of the Study:

  • To evaluate the applicability of AOP:3 for predicting parkinsonian neurodegeneration using a panel of 21 pesticide mitochondrial inhibitors.
  • To compare the sensitivity of in vitro assays for key events (KEs) and the adverse outcome (AO) of dopaminergic neurodegeneration.
  • To assess the utility of AOP:3 and specific assays for hazard and risk assessment of mitochondrial toxicants.

Main Methods:

  • Characterized 5 cI, 3 cII, and 5 cIII inhibitory pesticides in human dopaminergic neuronal cell cultures (LUHMES).
  • Utilized the NeuriTox assay as a proxy for neurite damage (AO) and assessed mitochondrial respiratory chain inhibition, mitochondrial dysfunction, and proteostasis.
  • Compared data from KE assays with NeuriTox data to determine assay sensitivity and AOP activation consistency.

Main Results:

  • Complex II inhibitors did not activate AOP:3. Some cI/cIII inhibitors showed consistent AOP activation, while others did not.
  • Assay sensitivity followed a hierarchy: changes in gene expression correlated with NeuriTox data; mitochondrial failure was 10-260 times more sensitive than neurite damage; cI/cIII activity was affected at >1000 times lower concentrations than neurites.
  • Specific parkinsonian neurodegeneration was not easily predicted from mitochondrial dysfunction assays.

Conclusions:

  • The use of AOP:3 for hazard assessment has limitations, as early key event assays may overestimate toxicant potency.
  • Deriving points-of-departure for risk assessment from early key event assays can lead to overestimation of toxicant potency.
  • The study highlights the need for careful interpretation of in vitro assay data in the context of complex neurodegenerative processes.

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