Literature DB >> 10649967

Synthesis and reactivity of a potential carcinogenic metabolite of tamoxifen: 3,4-dihydroxytamoxifen-o-quinone.

F Zhang1, P W Fan, X Liu, L Shen, R B van Breemen, J L Bolton.   

Abstract

Although tamoxifen is approved for the treatment of hormone-dependent breast cancer as well as for the prevention of breast cancer in high-risk women, several studies in animal models have shown that tamoxifen is heptocarcinogenic, and in humans, tamoxifen has been associated with an increased risk of endometrial cancer. One potential mechanism of tamoxifen carcinogenesis could involve metabolism of tamoxifen to 3,4-dihydroxytamoxifen followed by oxidation to a highly reactive o-quinone which has the potential to alkylate and/or oxidize cellular macromolecules in vivo. In the study presented here, we synthesized the 3,4-dihydroxytamoxifen, prepared its o-quinone chemically and enzymatically, and studied the reactivity of the o-quinone with GSH and deoxynucleosides. The E (trans) and Z (cis) isomers of 3,4-dihydroxytamoxifen were synthesized using a concise synthetic pathway (four steps). This approach is based on the McMurry reaction between the key 4-(2-chloroethoxy)-3,4-methylenedioxybenzophenone and propiophenone, followed by selective removal of the methylenedioxy ring of (E, Z)-1-[4-[2-(N,N-dimethylamino)ethoxy]phenyl]-1-(3, 4-methylenedioxyphenyl)-2-phenyl-1-butene with BCl(3). Oxidation of 3,4-dihydroxytamoxifen by activated silver oxide or tyrosinase gave 3,4-dihydroxytamoxifen-o-quinone as a mixture of E and Z isomers. The resulting o-quinone has a half-life of approximately 80 min under physiological conditions. Reaction of the o-quinone with GSH gave two di-GSH conjugates and three mono GSH conjugates. Incubation of 3,4-dihydroxytamoxifen with GSH in the presence of microsomal P450 gave the same GSH conjugates which were also detected in incubations with human breast cancer cells (MCF-7). Reaction of 3, 4-dihydroxytamoxifen-o-quinone with deoxynucleosides gave only thymidine and deoxyguanosine adducts; neither deoxyadenosine nor deoxycytosine adducts were detected. Preliminary studies conducted with human breast cancer cell lines showed that 3, 4-dihydroxytamoxifen exhibited cytotoxic potency similar to that of 4-hydroxytamoxifen and tamoxifen in an estrogen receptor negative (ER(-)) cell line (MDA-MB-231); however, in the ER(+) cell line (MCF-7), the catechol metabolite was about half as toxic as the other two compounds. Finally, in the presence of microsomes and GSH, 4-hydroxytamoxifen gave predominantly quinone methide GSH conjugates as reported in the previous paper in this issue [Fan, P. W., et al. (2000) Chem. Res. Toxicol. 13, XX-XX]. However, in the presence of tyrosinase and GSH, 4-hydroxytamoxifen was primarily converted to o-quinone GSH conjugates. These results suggest that the catechol metabolite of tamoxifen has the potential to cause cytotoxicity in vivo through formation of 3,4-dihydroxytamoxifen-o-quinone.

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Year:  2000        PMID: 10649967     DOI: 10.1021/tx990145n

Source DB:  PubMed          Journal:  Chem Res Toxicol        ISSN: 0893-228X            Impact factor:   3.739


  11 in total

1.  Selective estrogen receptor modulator (SERM) lasofoxifene forms reactive quinones similar to estradiol.

Authors:  Bradley T Michalsen; Teshome B Gherezghiher; Jaewoo Choi; R Esala P Chandrasena; Zhihui Qin; Gregory R J Thatcher; Judy L Bolton
Journal:  Chem Res Toxicol       Date:  2012-06-14       Impact factor: 3.739

2.  Chemical modification modulates estrogenic activity, oxidative reactivity, and metabolic stability in 4'F-DMA, a new benzothiophene selective estrogen receptor modulator.

Authors:  Hong Liu; Judy L Bolton; Gregory R J Thatcher
Journal:  Chem Res Toxicol       Date:  2006-06       Impact factor: 3.739

Review 3.  Bioactivation of Selective Estrogen Receptor Modulators (SERMs).

Authors:  Tamara S Dowers; Zhi-Hui Qin; Gregory R J Thatcher; Judy L Bolton
Journal:  Chem Res Toxicol       Date:  2006-09       Impact factor: 3.739

4.  Antiestrogens and the formation of DNA damage in rats: a comparison.

Authors:  Sung Yeon Kim; Naomi Suzuki; Y R Santosh Laxmi; Atsushi Umemoto; Tomonari Matsuda; Shinya Shibutani
Journal:  Chem Res Toxicol       Date:  2006-06       Impact factor: 3.739

5.  Analysis of protein covalent modification by xenobiotics using a covert oxidatively activated tag: raloxifene proof-of-principle study.

Authors:  Ju Liu; Qian Li; Xiaofeng Yang; Richard B van Breemen; Judy L Bolton; Gregory R J Thatcher
Journal:  Chem Res Toxicol       Date:  2005-09       Impact factor: 3.739

6.  A Time-Embedding Network Models the Ontogeny of 23 Hepatic Drug Metabolizing Enzymes.

Authors:  Matthew K Matlock; Abhik Tambe; Jack Elliott-Higgins; Ronald N Hines; Grover P Miller; S Joshua Swamidass
Journal:  Chem Res Toxicol       Date:  2019-07-29       Impact factor: 3.739

7.  Ex vivo effects of naphthoquinones on allergen-sensitized mononuclear cells in mice.

Authors:  M Tanaka; K Inoue; A Shimada; H Takano
Journal:  Int J Immunopathol Pharmacol       Date:  2016-02-16       Impact factor: 3.219

8.  MGMT promoter hypermethylation and K-RAS, PTEN and TP53 mutations in tamoxifen-exposed and non-exposed endometrial cancer cases.

Authors:  E Nagy; K B Gajjar; I I Patel; S Taylor; P L Martin-Hirsch; H F Stringfellow; F L Martin; D H Phillips
Journal:  Br J Cancer       Date:  2014-05-22       Impact factor: 7.640

9.  Relationship between intratumoral expression of genes coding for xenobiotic-metabolizing enzymes and benefit from adjuvant tamoxifen in estrogen receptor alpha-positive postmenopausal breast carcinoma.

Authors:  Ivan Bièche; Igor Girault; Estelle Urbain; Sengül Tozlu; Rosette Lidereau
Journal:  Breast Cancer Res       Date:  2004-03-26       Impact factor: 6.466

Review 10.  Selective estrogen receptor modulators: tissue specificity and clinical utility.

Authors:  Stephen Martinkovich; Darshan Shah; Sonia Lobo Planey; John A Arnott
Journal:  Clin Interv Aging       Date:  2014-08-28       Impact factor: 4.458

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