Definition of the Neurotoxicity-Associated Metabolic Signature Triggered by Berberine and Other Respiratory Chain

Ilinca Suciu1,2, Johannes Delp1, Simon Gutbier1

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

PubMed

Insights

Mitochondrial inhibitors cause neurotoxicity through complex metabolic shifts, not just ATP depletion. This study reveals shared molecular responses and unique metabolic biomarkers of neurodegeneration for compounds like berberine.

Area of Science:

  • Neuroscience
  • Toxicology
  • Metabolomics

Background:

  • Phenotypic screening identified neurotoxicants with diverse mechanisms.
  • Transcriptomics revealed conserved gene expression patterns, including cell de-differentiation and stress responses mediated by ATF4 and NRF2.

Purpose of the Study:

  • To characterize the modes-of-action of neurotoxicants using transcriptomics and metabolomics.
  • To investigate the metabolic effects of mitochondrial inhibitors, specifically berberine, rotenone, and MPP.
  • To identify biomarkers of neurodegeneration associated with mitochondrial dysfunction.

Main Methods:

  • Transcriptomics analysis of neuronal cells exposed to seven neurotoxicants.
  • Measurement of respiration and glycolysis to assess energy metabolism.
  • Metabolomics profiling of berberine, rotenone, and MPP under non-ATP-depleting conditions.

Main Results:

  • Neurotoxicants induced similar gene expression changes related to cell de-differentiation and stress pathways.
  • Berberine, rotenone, and MPP inhibited mitochondrial complex I, leading to oxidative stress and altered metabolism.
  • Metabolomics revealed increased NADH, nitrogen disposal pathways, and accumulation of neurodegeneration biomarkers like saccharopine and aminoadipate.

Conclusions:

  • Neurotoxicity from mitochondrial inhibitors involves a complex interplay of metabolic changes beyond ATP depletion.
  • A combi-omics approach provides deeper mechanistic insights than transcriptomics alone.
  • Berberine's similar mode-of-action to known neurotoxicants warrants further safety evaluation.

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