Role of quinones in toxicology

J L Bolton1, M A Trush, T M Penning

  • 1Department of Medicinal Chemistry and Pharmacognosy (M/C 781), College of Pharmacy, The University of Illinois at Chicago, 833 South Wood Street, Chicago, Illinois 60612-7231, USA. Judy.Bolton@UIC.edu

Insights

Quinones cause cellular damage through protein/DNA alkylation or reactive oxygen species (ROS) production. Understanding these toxic mechanisms, including oxidative stress, is key to addressing quinone-related health risks.

Area of Science:

  • Toxicology
  • Biochemistry
  • Molecular Biology

Background:

  • Quinones are toxic intermediates causing cytotoxicity, immunotoxicity, and carcinogenesis.
  • Their mechanisms involve complex interactions within cells.
  • Understanding quinone toxicity is crucial for public health.

Purpose of the Study:

  • To explore the varied cytotoxic effects of quinones.
  • To correlate quinone toxicity mechanisms with parent compound pathology.
  • To review specific examples of quinone-induced toxicity.

Main Methods:

  • Literature review of quinone toxicity mechanisms.
  • Analysis of quinones derived from benzene, PAHs, estrogens, and catecholamines.
  • Examination of cellular damage pathways: alkylation and oxidative stress.

Main Results:

  • Quinones act as Michael acceptors, alkylating proteins and DNA.
  • Redox cycling of quinones generates reactive oxygen species (ROS).
  • ROS induce oxidative stress, damaging cellular macromolecules and activating signaling pathways.

Conclusions:

  • Quinone toxicity arises from distinct mechanisms, primarily alkylation and oxidative stress.
  • These mechanisms are linked to the pathology of the parent compounds.
  • Further research into quinone-induced damage is warranted.

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