Effect of naturally occurring phenolic acids on the expression of glutathione S-transferase isozymes in the rat. 2008

Violetta Krajka-Kuźniak, and Jolanta Kaczmarek, and Wanda Baer-Dubowska
Department of Pharmaceutical Biochemistry, University of Medical Sciences, Poznań, Poland.

Naturally occurring plant phenols, protocatechuic and tannic acids, have been reported to be inhibitors of chemical mutagenesis and carcinogenesis in experimental models. Our previous studies, have shown that these compounds modulate the activity of phases 1 and 2 enzymes in rodents. The aim of the present study was to investigate whether these compounds affect protein levels of rat hepatic and renal glutathione S-transferase (GST) isozymes. Male Wistar rats were treated intraperitoneally with protocatechuic or tannic acid at 50 mg/kg body weight five times during 14 days. 3-Methylcholanthrene (MC) was administered at 20 mg/kg body weight on day 13 (the last treatment with phenolic compounds) and on day 14. Tissues were obtained from rats terminated 24 h after the last treatment. Western blot analysis with specific antibodies showed significant differences in the effect of the phenolic compounds in the liver and kidney. In the liver, protocatechuic acid significantly increased the constitutive GSTmicro, while tannic acid reduced the GSTalpha protein level by 60%. Both plant phenols decreased all classes of constitutive GST isozymes in the kidney including GSTpi, and also the MC-induced GSTalpha and/or pi protein levels. These results, as well as our previous reports, suggest that protocatechuic and tannic acids interfere with the pathways related to xenobiotic toxicities and carcinogenesis. This effect may be important for chemoprotective activity of these plant phenols.

UI MeSH Term Description Entries
D007527 Isoenzymes Structurally related forms of an enzyme. Each isoenzyme has the same mechanism and classification, but differs in its chemical, physical, or immunological characteristics. Alloenzyme,Allozyme,Isoenzyme,Isozyme,Isozymes,Alloenzymes,Allozymes
D007668 Kidney Body organ that filters blood for the secretion of URINE and that regulates ion concentrations. Kidneys
D008297 Male Males
D005982 Glutathione Transferase A transferase that catalyzes the addition of aliphatic, aromatic, or heterocyclic FREE RADICALS as well as EPOXIDES and arene oxides to GLUTATHIONE. Addition takes place at the SULFUR. It also catalyzes the reduction of polyol nitrate by glutathione to polyol and nitrite. Glutathione S-Alkyltransferase,Glutathione S-Aryltransferase,Glutathione S-Epoxidetransferase,Ligandins,S-Hydroxyalkyl Glutathione Lyase,Glutathione Organic Nitrate Ester Reductase,Glutathione S-Transferase,Glutathione S-Transferase 3,Glutathione S-Transferase A,Glutathione S-Transferase B,Glutathione S-Transferase C,Glutathione S-Transferase III,Glutathione S-Transferase P,Glutathione Transferase E,Glutathione Transferase mu,Glutathione Transferases,Heme Transfer Protein,Ligandin,Yb-Glutathione-S-Transferase,Glutathione Lyase, S-Hydroxyalkyl,Glutathione S Alkyltransferase,Glutathione S Aryltransferase,Glutathione S Epoxidetransferase,Glutathione S Transferase,Glutathione S Transferase 3,Glutathione S Transferase A,Glutathione S Transferase B,Glutathione S Transferase C,Glutathione S Transferase III,Glutathione S Transferase P,Lyase, S-Hydroxyalkyl Glutathione,P, Glutathione S-Transferase,Protein, Heme Transfer,S Hydroxyalkyl Glutathione Lyase,S-Alkyltransferase, Glutathione,S-Aryltransferase, Glutathione,S-Epoxidetransferase, Glutathione,S-Transferase 3, Glutathione,S-Transferase A, Glutathione,S-Transferase B, Glutathione,S-Transferase C, Glutathione,S-Transferase III, Glutathione,S-Transferase P, Glutathione,S-Transferase, Glutathione,Transfer Protein, Heme,Transferase E, Glutathione,Transferase mu, Glutathione,Transferase, Glutathione,Transferases, Glutathione
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D017208 Rats, Wistar A strain of albino rat developed at the Wistar Institute that has spread widely at other institutions. This has markedly diluted the original strain. Wistar Rat,Rat, Wistar,Wistar Rats
D051381 Rats The common name for the genus Rattus. Rattus,Rats, Laboratory,Rats, Norway,Rattus norvegicus,Laboratory Rat,Laboratory Rats,Norway Rat,Norway Rats,Rat,Rat, Laboratory,Rat, Norway,norvegicus, Rattus

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