Manganese-induced Mitochondrial Dysfunction Is Not Detectable at Exposures Below the Acute Cytotoxic Threshold in

Emily B Warren1, Miles R Bryan2,3, Patricia Morcillo4

  • 1Department of Pharmacology, Vanderbilt University, Nashville, Tennessee 37232.

Insights

Excessive manganese (Mn) exposure causes neurotoxicity. This study found Mn impairs mitochondrial function only at toxic levels, not preceding cell death, challenging prior hypotheses.

Area of Science:

  • Neuroscience
  • Toxicology
  • Cell Biology

Background:

  • Manganese (Mn) is essential but toxic at high levels, causing neurotoxicity.
  • The exact mechanisms of Mn neurotoxicity remain unclear.
  • A leading hypothesis implicates mitochondrial dysfunction in Mn-induced cell death.

Purpose of the Study:

  • To investigate the effects of acute manganese exposure on mitochondrial function.
  • To examine Mn toxicity in a Huntington's disease cell model (STHdhQ7/Q7 and STHdhQ111/Q111 cells).
  • To determine if mitochondrial dysfunction precedes or causes Mn neurotoxicity.

Main Methods:

  • Utilized Huntington's disease cell models with varying Mn sensitivity.
  • Assessed toxicity thresholds via cell number and caspase-3/7 activation.
  • Evaluated mitochondrial respiration, metabolic balance, and substrate dependence across a range of Mn exposures (0-300 µM).
  • Validated findings in primary striatal neurons.

Main Results:

  • No impact on mitochondrial function was observed at subtoxic Mn exposures.
  • Significant decline in mitochondrial function occurred only at supratoxic Mn exposures, coinciding with cell death.
  • Subtoxic Mn concentrations did not affect glycolytic function or key intracellular metabolites.

Conclusions:

  • Manganese exposure impairs mitochondrial function only at concentrations that induce or exceed cell death.
  • These findings do not support the hypothesis that mitochondrial dysfunction initiates Mn cytotoxicity.
  • Mitochondrial impairment appears to be a consequence, not a cause, of Mn-induced cell death in this model.