4.7 Article

Design, synthesis and in vitro cell-based evaluation of the anti-cancer activities of hispolon analogs

Journal

BIOORGANIC & MEDICINAL CHEMISTRY
Volume 23, Issue 9, Pages 2148-2158

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.bmc.2015.03.002

Keywords

Chemotherapy; Curcumin analogs; Hispolon analogs; Anticancer; Multidrug resistance

Funding

  1. Tuskegee RCMI Core grant [G12MD007585-23]
  2. MSM/TU/UAB Comprehensive Cancer Center Partnership [NCI] [U54 CA118623]

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Phytochemicals play an important role in cancer therapy. Hispolon and 26 of its analogs (9 known and 17 new) were synthesized and evaluated for their antiproliferative activities in a panel of six independent human cancer cell lines using the in vitro cell-based MTT assay. Among the hispolon analogs tested, compound VA-2, the most potent overall, produced its most significant effect in the colon cancer cell lines HCT-116 (IC50 1.4 +/- 1.3 mu M) and S1 (IC50 1.8 +/- 0.9 mu M) compared to its activity in the normal HEK293/pcDNA3.1 cell line (IC50 15.8 +/- 3.7 mu M; p < 0.01 for each comparison). Based on our results, VA-2 was about 9- to 11-times more potent in colon cancer cells and 2- to 3-times more potent in prostate cancer cells compared to HEK293/pcDNA3.1 cells. Morphological analysis of VA-2 showed significant reduction of cell number, while the cells' sizes were also markedly increased and were obvious at 68 h of treatment with 1 mu M in HCT-116 (colon) and PC-3 (prostate) cancer cells. A known analog, compound VA-4, prepared by simple modifications on the aromatic functional groups of hispolon, inhibited prostate and colon cancer cell lines with IC50 values <10 mu M. In addition, hispolon isoxazole and pyrazole analogs, VA-7 and VA-15 (known), respectively, have shown significant activity with the mean IC50 values in the range 3.3-10.7 mu M in all the cancer cell lines tested. Activity varied among the analogs in which aromatic functional groups and beta-diketone functional groups are modified. But the activity of analogs VA-16 to VA-27 was completely lost when the side chain double-bond was hydrogenated indicating the crucial role of this functionality for anticancer activity. Furthermore, many of the compounds synthesized were not substrates for the ABCB1-transporter, the most common cause of multidrug resistance in anti-cancer drugs, suggesting they may be more effective anticancer agents. (C) 2015 Elsevier Ltd. All rights reserved.

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