Citrinin disrupts microtubule assembly in cardiac cells: Impact on mitochondrial organization and function

Jui-Feng Tsai1, Feng-Yih Yu2, Biing-Hui Liu1

  • 1Graduate Institute of Toxicology, College of Medicine, National Taiwan University, Taipei, Taiwan.

Chemosphere
|September 18, 2024
PubMed

Insights

Citrinin (CTN) mycotoxin disrupts cardiac cell function by damaging microtubules and mitochondria. This leads to impaired waste clearance and potential cardiotoxicity, requiring further risk assessment.

Area of Science:

  • Toxicology
  • Cell Biology
  • Molecular Biology

Background:

  • Citrinin (CTN) is a widespread mycotoxin found in food, feed, and supplements.
  • The cellular mechanisms underlying CTN-induced cardiotoxicity are not well understood.

Purpose of the Study:

  • To investigate the cellular mechanisms of CTN cardiotoxicity.
  • To elucidate the impact of CTN on cardiac cell pathways and molecular interactions.

Main Methods:

  • RNA-sequencing (RNA-seq) analysis of CTN-treated H9c2 cardiac cells.
  • Assessment of microtubule polymerization, mitochondrial network organization, and protein degradation pathways.
  • Molecular docking analysis to predict CTN binding interactions.

Main Results:

  • CTN disrupted microtubule polymerization and downregulated key microtubule-assembling genes (Map2, Tpx2).
  • CTN caused mitochondrial dysfunction, characterized by altered distribution, elevated superoxide, and reduced membrane potential.
  • Impaired waste clearance due to lysosome and ubiquitinated protein buildup was observed in CTN-exposed cells.
  • Molecular docking suggested CTN binds to the β-tubulin colchicine binding site, disrupting microtubules.

Conclusions:

  • CTN cardiotoxicity involves microtubule network dysregulation, leading to mitochondrial dysfunction and impaired proteolysis.
  • CTN's mechanism mimics colchicine by targeting β-tubulin.
  • Findings enhance understanding of CTN's risks and aid future risk assessments.

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