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Design and Synthesis of New 1,3,5-Trisubstituted Triazines for the Treatment of Cancer and Inflammation

Overview
Journal ChemistryOpen
Specialty Chemistry
Date 2018 Sep 28
PMID 30258746
Citations 3
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Abstract

Low-molecular-weight synthetic molecules with the general 2-(fluorophenylamino)-4,6-disubstituted 1,3,5-triazine structure and showing anti-inflammatory and anticancer activities were explored. Structure-activity relationship studies demonstrated the importance of the aminopentyl chain, the 3- or 4-fluorophenylaniline component, and the presence of at least one substituent, such as a tyramine moiety, attached directly to the triazine ring as essential for good activity. These compounds, represented by leads 4-{2-[4-(5-Aminopentylamino)-6-(3-fluorophenylamino)-1,3,5-triazin-2-ylamino]ethyl}phenol () and 4-{2-[4-(5-Aminopentylamino)-6-(4-fluorophenylamino)-1,3,5-triazin-2-ylamino]ethyl}phenol (), displayed moderate and significant in vitro and in vivo dual activities, respectively, and address the molecular link between inflammation and cancer. Compound demonstrated significant antitumor efficacy upon administration by the oral and intravenous routes in several animal models. This class of triazine compounds is new, safe, and nontoxic and offers a novel approach to the treatment of inflammation and cancer.

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Design and Synthesis of New 1,3,5-Trisubstituted Triazines for the Treatment of Cancer and Inflammation.

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PMID: 30258746 PMC: 6148406. DOI: 10.1002/open.201800136.

References
1.
Rayburn E, Ezell S, Zhang R . Anti-Inflammatory Agents for Cancer Therapy. Mol Cell Pharmacol. 2010; 1(1):29-43. PMC: 2843097. DOI: 10.4255/mcpharmacol.09.05. View

2.
Hoelder S, Clarke P, Workman P . Discovery of small molecule cancer drugs: successes, challenges and opportunities. Mol Oncol. 2012; 6(2):155-76. PMC: 3476506. DOI: 10.1016/j.molonc.2012.02.004. View

3.
Gao H, Sun W, Zhao J, Wu X, Lu J, Chen X . Tanshinones and diethyl blechnics with anti-inflammatory and anti-cancer activities from Salvia miltiorrhiza Bunge (Danshen). Sci Rep. 2016; 6:33720. PMC: 5036060. DOI: 10.1038/srep33720. View

4.
Mohan A, Narayanan S, Sethuraman S, Krishnan U . Combinations of plant polyphenols & anti-cancer molecules: a novel treatment strategy for cancer chemotherapy. Anticancer Agents Med Chem. 2012; 13(2):281-95. DOI: 10.2174/1871520611313020015. View

5.
Fantozzi A, Christofori G . Mouse models of breast cancer metastasis. Breast Cancer Res. 2006; 8(4):212. PMC: 1779475. DOI: 10.1186/bcr1530. View