Literature DB >> 17664142

An approach to evaluate two-electron reduction of 9,10-phenanthraquinone and redox activity of the hydroquinone associated with oxidative stress.

Keiko Taguchi1, Sayako Fujii, Shigeru Yamano, Arthur K Cho, Shinji Kamisuki, Yumi Nakai, Fumio Sugawara, John R Froines, Yoshito Kumagai.   

Abstract

Quinones are widely used as medicines or redox agents. The chemical properties are based on the reactions against an electron donor. 9,10-Phenanthraquinone (PQ), which is a quinone contaminated in airborne particulate matters, forms redox cycling, not Michael addition, with electron donors. Redox cycling of PQ contributes to its toxicity, following generation of reactive oxygen species (ROS). Detoxification of quinones is generally thought to be two-electron reduction forming hydroquinones. However, a hydroquinone of PQ, 9,10-dihydroxyphenanthrene (PQH(2)), has been never detected itself, because it is quite unstable. In this paper, we succeeded in detecting PQH(2) as its stable derivative, 9,10-diacetoxyphenanthrene (DAP). However, higher concentrations of PQ (>4 microM) form disproportionately with PQH(2), producing the 9,10-phenanthraquinone radical (PQ(-)) which is a one-electron reducing product of PQ. In cellular experiments using DAP as a precursor of PQH(2), it was shown that PQH(2) plays a critical role in the oxidative protein damage and cellular toxicity of PQ, showing that two-electron reduction of PQ can also initiate redox cycling to cause oxidative stress-dependent cytotoxicity.

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Year:  2007        PMID: 17664142     DOI: 10.1016/j.freeradbiomed.2007.05.021

Source DB:  PubMed          Journal:  Free Radic Biol Med        ISSN: 0891-5849            Impact factor:   7.376


  7 in total

1.  New considerations on hormetic response against oxidative stress.

Authors:  Armando Luna-López; Viridiana Y González-Puertos; Norma E López-Diazguerrero; Mina Königsberg
Journal:  J Cell Commun Signal       Date:  2014-10-05       Impact factor: 5.782

2.  Chemical characterization of diesel and hydrotreated vegetable oil (HVO) soot after reactive gas probing using diffuse reflectance FTIR spectroscopy (DRIFTS).

Authors:  A Tapia; M S Salgado; M P Martín; J Rodríguez-Fernández; M J Rossi; B Cabañas
Journal:  Environ Sci Pollut Res Int       Date:  2017-01-23       Impact factor: 4.223

3.  Identification and quantification of phenanthrene ortho-quinones in human urine and their association with lipid peroxidation.

Authors:  Kai Luo; Steven G Carmella; Yingchun Zhao; Mei Kuen Tang; Stephen S Hecht
Journal:  Environ Pollut       Date:  2020-08-06       Impact factor: 8.071

Review 4.  Cytotoxicity of Air Pollutant 9,10-Phenanthrenequinone: Role of Reactive Oxygen Species and Redox Signaling.

Authors:  Manli Yang; Hassan Ahmed; Weidong Wu; Bijie Jiang; Zhenquan Jia
Journal:  Biomed Res Int       Date:  2018-06-10       Impact factor: 3.411

5.  Metabolism of a representative oxygenated polycyclic aromatic hydrocarbon (PAH) phenanthrene-9,10-quinone in human hepatoma (HepG2) cells.

Authors:  Meng Huang; Li Zhang; Clementina Mesaros; Suhong Zhang; Michael A Blaha; Ian A Blair; Trevor M Penning
Journal:  Chem Res Toxicol       Date:  2014-03-31       Impact factor: 3.739

Review 6.  Redox toxicology of environmental chemicals causing oxidative stress.

Authors:  Fuli Zheng; Filipe Marques Gonçalves; Yumi Abiko; Huangyuan Li; Yoshito Kumagai; Michael Aschner
Journal:  Redox Biol       Date:  2020-04-18       Impact factor: 11.799

Review 7.  What Happens in the Staphylococcal Nucleoid under Oxidative Stress?

Authors:  Kazuya Morikawa; Yuri Ushijima; Ryosuke L Ohniwa; Masatoshi Miyakoshi; Kunio Takeyasu
Journal:  Microorganisms       Date:  2019-11-29
  7 in total

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