Non-canonical Regulation of EGFR by the Air Pollutant 9,10-Phenanthrenequinone
Author:
Affiliation:
1. Department of Cancer Cell Biology, Faculty of Pharmaceutical Sciences, University of Toyama
2. Department of Dermatology, Faculty of Medicine, University of Toyama
Publisher
Pharmaceutical Society of Japan
Subject
Pharmaceutical Science,Pharmacology,General Medicine
Link
https://www.jstage.jst.go.jp/article/bpb/45/10/45_b22-00489/_pdf
Reference37 articles.
1. 1) Cho AK, Di Stefano E, You Y, Rodriguez CE, Schmitz DA, Kumagai Y, Miguel AH, Eiguren-Fernandez A, Kobayashi T, Avol E, Froines JR. Determination of four quinones in diesel exhaust particles, SRM 1649a, and atmospheric PM 2.5 special issue of aerosol science and technology on findings from the fine particulate matter supersites program. Aerosol Sci. Technol., 38 (sup1.), 68–81 (2004).
2. 2) Chung MY, Lazaro RA, Lim D, Jackson J, Lyon J, Rendulic D, Hasson AS. Aerosol-borne quinones and reactive oxygen species generation by particulate matter extracts. Environ. Sci. Technol., 40, 4880–4886 (2006).
3. 3) Kumagai Y, Koide S, Taguchi K, Endo A, Nakai Y, Yoshikawa T, Shimojo N. Oxidation of proximal protein sulfhydryls by phenanthraquinone, a component of diesel exhaust particles. Chem. Res. Toxicol., 15, 483–489 (2002).
4. 4) Rodriguez CE, Shinyashiki M, Froines J, Yu RC, Fukuto JM, Cho AK. An examination of quinone toxicity using the yeast Saccharomyces cerevisiae model system. Toxicology, 201, 185–196 (2004).
5. 5) Rodriguez CE, Fukuto JM, Taguchi K, Froines J, Cho AK. The interactions of 9,10-phenanthrenequinone with glyceraldehyde-3- phosphate dehydrogenase (GAPDH), a potential site for toxic actions. Chem. Biol. Interact., 155, 97–110 (2005).
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