Protoapigenone, a natural flavonoid possessing an unusual p-quinol moiety on its B-ring, is a novel prospective anticancer agent with low toxicity that is currently in development. The first economical, one-step synthesis of protoapigenone from apigenin is described on up to gram scale. 13 new 1′-O-alkylflavone analogs were also synthesized, either from apigenin or β-naphthoflavone. The in vitro cytotoxic activity of each compound was tested on six human cancer cell lines (HepG2, Hep3B, Ca9-22, A549, MCF-7 and MDA-MB-231). In the case of 1′-O-alkyl-protoapigenone derivatives, structure-activity relationships were found depending on the side-chain, and protoapigenone 1′-O-butyl ether was found to exert significantly stronger activity against three of the cell lines (Hep3B, MCF-7 and MDA-MB-231) than its non-substituted analog, protoapigenone itself. In contrast to this, all β-naphthoflavone derivatives bearing the same pharmacophore on their B-ring showed decreased cytotoxic activities when substituted with an O-alkyl side-chain at position 1′, comparing to that of the non-substituted compound.
References
[1]
Di Carlo G, Mascolo N, Izzo AA, Capasso F (1999) Flavonoids: Old and new aspects of a class of natural therapeutic drugs. Life Sci 65: 337–353.
[2]
Le Marchand L (2002) Cancer preventive effects of flavonoids-a review. Biomed Pharmacother 56: 296–301.
[3]
Kale A, Gawande S, Kotwal S (2008) Cancer phytotherapeutics: role for flavonoids at the cellular level. Phytother Res 22: 567–577.
[4]
Kandaswami C, Lee LT, Lee PP, Hwang JJ, Ke FC, et al. (2005) The antitumor activities of flavonoids. In Vivo 19: 895–909.
[5]
Li Y, Fang H, Xu W (2007) Recent advance in the research of flavonoids as anticancer agents. Mini Rev Med Chem 7: 663–678.
[6]
Lin AS, Chang FR, Wu CC, Liaw CC, Wu YC (2005) New Cytotoxic Flavonoids from Thelypteris torresiana. Planta Med 71: 867–870.
[7]
Patel D, Shukla S, Gupta S (2007) Apigenin and cancer chemoprevention: progress, potential and promise (review). Int J Oncol 30: 233–245.
[8]
Liu LZ, Fang J, Zhou Q, Hu X, Shi X, et al. (2005) Apigenin Inhibits Expression of Vascular Endothelial Growth Factor and Angiogenesis in Human Lung Cancer Cells: Implication of Chemoprevention of Lung Cancer. Mol Pharmacol 68: 635–643.
[9]
Chang HL, Wu YC, Su JH, Yeh YT, Yuan SSF (2008) Protoapigenone, a Novel Flavonoid, Induces Apoptosis in Human Prostate Cancer Cells through Activation of p38 Mitogen-Activated Protein Kinase and c-Jun NH2-Terminal Kinase 1/2. J Pharmacol Exp Ther 325: 841–849.
[10]
Chang HL, Su JH, Yeh YT, Lee YC, Chen HM, et al. (2008) Protoapigenone, a novel flavonoid, inhibits ovarian cancer cell growth in vitro and in vivo. Cancer Lett 267: 85–95.
[11]
Chiu CC, Chang HW, Chuang DW, Chang FR, Chang YC, et al. (2009) Fern plant-derived protoapigenone leads to DNA damage, apoptosis, and G(2)/m arrest in lung cancer cell line H1299. DNA Cell Biol 28: 501–506.
[12]
Lin AS, Nakagawa-Goto K, Chang FR, Yu D, Morris-Natschke SL, et al. (2007) First Total Synthesis of Protoapigenone and Its Analogues as Potent Cytotoxic Agents. J Med Chem 50: 3921–3927.
[13]
Felpin FX (2007) Oxidation of 4-arylphenol trimethylsilyl ethers to p-arylquinols using hypervalent iodine(III) reagents. Tetrahedron Lett 48: 409–412.
[14]
Wells G, Berry JM, Bradshaw TD, Burger AM, Seaton A, et al. (2003) 4-Substituted 4-Hydroxycyclohexa-2,5-dien-1-ones with Selective Activities against Colon and Renal Cancer Cell Lines. J Med Chem 46: 532–541.
Quideau S, Pouységu L, Deffieux D (2008) Oxidative Dearomatization of Phenols: Why, How and What For? Synlett 4: 467–495.
[17]
Hamamoto H, Anilkumar G, Tohma H, Kita Y (2002) A Novel and Useful Oxidative Intramolecular Coupling Reaction of Phenol Ether Derivatives on Treatment with a Combination of Hypervalent Iodine (III) Reagent and Heteropoly Acid. Chem Eur J 8: 5377–5383.
[18]
Favaro G, Clementi C, Romani A, Vickackaite V (2007) Acidichromism and Ionochromism of Luteolin and Apigenin, the Main Components of the Naturally Occurring Yellow Weld: A Spectrophotometric and Fluorimetric Study. J Fluoresc 17: 707–714.
[19]
Wagner H, Chari VM, Sonnenblicher J (1976) Carbon-13 NMR spectra of naturally occurring flavonoids. Tetrahedron Lett 21: 1799–1802.
[20]
Khokhrina TA, Peshkova VA, Glyzin VI (1973) Flavonoids from Phlomis tuberosa. Khim Prir Soedin 6: 802.
[21]
Mosmann T (1983) Rapid Colorimetric Assay for Cellular Growth and Survival: Application to Proliferation and Cytotoxicity Assays. J Immunol Methods 65: 55–63.