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Updated: Aug 6, 2026

Facile Preparation of 4-Substituted Quinazoline Derivatives
Published on: February 15, 2016
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
Abstract:
Quinones represent a class of toxicological intermediates which can create a variety of hazardous effects in vivo, including acute cytotoxicity, immunotoxicity, and carcinogenesis. The mechanisms by which quinones cause these effects can be quite complex. Quinones are Michael acceptors, and cellular damage can occur through alkylation of crucial cellular proteins and/or DNA. Alternatively, quinones are highly redox active molecules which can redox cycle with their semiquinone radicals, leading to formation of reactive oxygen species (ROS), including superoxide, hydrogen peroxide, and ultimately the hydroxyl radical. Production of ROS can cause severe oxidative stress within cells through the formation of oxidized cellular macromolecules, including lipids, proteins, and DNA. Formation of oxidatively damaged bases such as 8-oxodeoxyguanosine has been associated with aging and carcinogenesis. Furthermore, ROS can activate a number of signaling pathways, including protein kinase C and RAS. This review explores the varied cytotoxic effects of quinones using specific examples, including quinones produced from benzene, polycyclic aromatic hydrocarbons, estrogens, and catecholamines. The evidence strongly suggests that the numerous mechanisms of quinone toxicity (i.e., alkylation vs oxidative stress) can be correlated with the known pathology of the parent compound(s).
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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