Colchicine-like β-acetamidoketones as inhibitors of microtubule polymerization: Design, synthesis and biological evaluation of in vitro anticancer activity

Document Type : Original Article

Authors

1 Biotechnology Research Center, Pharmaceutical Technology Institute, Mashhad University of Medical Sciences, Mashhad, Iran

2 Department of Medicinal Chemistry, School of Pharmacy, Mashhad University of Medical Sciences, Mashhad, Iran

3 Department of Pharmaceutical Chemistry, School of Pharmacy, Shahid Beheshti University of Medical Sciences, Tehran, Iran

Abstract

Objective(s): In this study a series of novel colchicine-like β-acetamidoketones was designed and synthesized as potential tubulin inhibitors
Materials and Methods: The cytotoxicity of the novel synthesized β-acetamidoketones was assessed against two cancerous cell lines including MCF-7 (human breast cancer cells) and A549 (adenocarcinomic human alveolar basal epithelial cells) employing the MTT test. Tubulin polymerization test was done by using a commercial kit (Tubulin Polymerization Assay Kit).
Results: In general, the cytotoxicity activities were highly dependent on the aromatic substitution pattern of phenyl ring at β position of β-acetamidoketones. Based upon, compound 4f possessing the same structural elements of colchicine and chalcone 1, revealed the most cytotoxicity more than the other β-acetamidoketone against the cancerous cell lines and showed moderate antitubulin effect. The tubulin inhibitory effect of 4f, colchicine and chalcone 1 were consistent with their antiproliferative activities. Molecular docking studies of 4f, into the colchicine-binding site of tubulin exhibited possible mode of interaction between this compound and tubulin.
Conclusion: The structure activity relationship (SAR) data attained showed that the presence of trimethoxy phenyl attached to carbonyl group of β-acetamidoketones and a methoxy group at para position of the other ring are essential for cytotoxic activity. In general, the cytotoxicity activities were highly dependent on the aromatic substitution pattern of phenyl ring at β position of β-acetamidoketones.

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1. Siegel RL, Miller KD, Jemal A. Cancer Statistics, 2017. CA Cancer J Clin 2017; 67: 7-30.
2. Chinigo GM, Paige M, Grindrod S, Hamel E, Dakshanamurthy S, Chruszcz M, Minor W, Brown ML. Asymmetric synthesis of 2,3-dihydro-2-arylquinazolin-4-ones: methodology and application to a potent fluorescent tubulin inhibitor with anticancer activity. J Med Chem 2008; 51: 4620-4631.
3. Abolhasani H,  Zarghi A,  Abolhasani A,  Hamzeh-Mivehroud M,  Bargahi N, Notash B, Mojarrad JS,  Dastmalchi S. Design, synthesis and in vitro cytotoxicity evaluation of new 3’,4’-bis (3,4,5-trisubstituted)-4’H-spiro[indene-2,5’-isoxazol]-1(3H)-one derivatives as Promising anticancer agents. Lett Drug Des Discov 2014; 11: 1149-1161.
4. Hsieh HP, Liou J.P, Mahindroo N. Pharmaceutical design of antimitotic agents based on combretastatins. Curr Pharm Des 2005; 11: 1655-1677.
5. Nam NH. Combretastatin A-4 analogues as antimitotic antitumor agents. Curr Med Chem 2003; 10: 1697-1722.
6. Tron GC, Pirali T, Sorba G, Pagliai F, Busacca S, Genazzani AA. Medicinal chemistry of combretastatin A4:  present and future directions. J Med Chem 2006; 49: 3033-3044.
7. Kong Y, Wang K, Edler MC, Hamel E, Mooberry SL, Paige MA, Brown M.L. A boronic acid chalcone analog of combretastatin A-4 as a potent anti-proliferation agent. Bioorg Med Chem 2010; 18: 971-977.
8. Mahapatra DK, Bharti SK, Asati V. Anti-cancer chalcones: Structural and molecular target perspectives. Eur J Med Chem 2015; 98: 69-114.
9. Ducki S, Rennisona D, Woo M, Kendall A, Fournier J, Chabert D, Gown ATM, Lawrence NJ. Combretastatin-like chalcones as inhibitors of microtubule polymerization. Part 1: synthesis and biological evaluation of antivascular activity. Bioorg Med Chem 2009; 17: 7698-7710.
10. Kozaka T, Nakagawa-Goto K, Shi Q, Lai CU, Hamel E, Bastow KF, Brossi A, Lee KH. Antitumor agents 273. Design and synthesis of N-alkyl-thiocolchicinoids as potential antitumor agents. Bioorg Med Chem Lett 2010; 20: 4091-4094.
11. Cifuentes M, Schilling B, Ravindr R, Wintera J, Janik ME. Synthesis and biological evaluation of B-ring modified colchicine and isocolchicine analogs. Bioorg Med Chem Lett 2006; 16: 2761-2764.
12. Chabert MFD, Vinader V, Santos AR, Redondo-Horcajo M, Dreneau A, Basak R, Cosentino L, Marston G, Abdel-Rahman H, Loadman PM, Shnyder SD, Díaz JF, Barasoain I, Falconer RA, Pors K. Synthesis and biological evaluation of colchicine C-ring analogues tethered with aliphatic linkers suitable for prodrug derivatisation. Bioorg Med Chem. Lett 2012; 22: 7693.
13. Boyer FD, Dubois J, Thoret S, HuuDau MET, Hanna I. Synthesis and tubulin-binding properties of new allocolchicinoids. Bioorg  Chem 2010; 38: 149-158.
14. Nakagawa-Goto K, Chen CX, Hamel E, Wu CC, Bastow KF,  Brossia A, Lee KH. Antitumor agents. Part 236: Synthesis of water-soluble colchicine derivatives. Bioorg Med Chem Lett 2005; 15: 235.
15. Yang B, Zhu ZC. Goodson HV, Miller MJ. Syntheses and biological evaluation of ring-C modified colchicine analogs. Bioorg Med Chem Lett 2010; 20: 3831-3833.
16. Bhattacbaryya B, Panda D, Gupta, S, Banerjee M. Anti-mitotic activity of colchicine and the structural basis for its interaction with tubulin. Med Res Rev 2008; 28: 155-183.
17. Chaudhuril AR, Seetharamalu P, Schwarz1 PM, Hausheer FH, Luduena RF. The interaction of the B-ring of colchicine with alpha-tubulin: a novel footprinting approach. J Mol Biol 2000; 303: 679-692.
18. Malayeri SO, Abnous K, Arab A, Akaberi M, Mehri S, Zarghi A, Ghodsi, R. Design, synthesis and biological evaluation of 7-(aryl)-2,3-dihydro-[1,4]dioxino[2,3-g]quinoline derivatives as potential Hsp90 inhibitors and anticancer agents. Bioorg Med Chem 2017; 25:1294-302.
19. Ghodsi R, Azizi E, Ferlin MG, Pezzi V, Zarghi A. Design, synthesis and biological Evaluation of 4-(Imidazolylmethyl)-2-Aryl-Quinoline Derivatives as aromatase Inhibitors and anti-breast cancer agents. Lett Drug Des Discov 2016; 13:89-97.
20. Ghodsi R, Azizi E, Zarghi A. Design, synthesis and biological evaluation of4-(Imidazolylmethyl)-2-(4-methylsulfonyl phenyl)-quinoline derivatives as selective COX-2 inhibitors and in vitro anti-breast cancer agents. Iran J Pharm Res 2016; 15:169-77.
21. Jafari F, Baghayi H, Lavaee P, Hadizadeh F, Soltani F, Moallemzadeh H, et al. Design, synthesis and biological evaluation of novel benzo- and tetrahydrobenzo-[h]quinoline derivatives as potential DNA-intercalating antitumor agents. Eur J Med Chem 2019; 164:292-303.
22. Golmakaniyoon S, Askari VR, Abnous K, Zarghi A, Ghodsi R. Synthesis, characterization and in-vitro evaluation of novel naphthoquinone derivatives and related imines: Identification of new anticancer leads. Iran J Pharm Res 2019;18:16-29.
23. Shobeiri N, Rashedi M, Mosaffa F; Zarghi A, Ghandadi M, Ghasemi A, Ghodsi R. Synthesis and biological evaluation of quinoline analogues of flavones as potential anticancer agents and tubulin polymerization inhibitors. Eur J Med Chem 2016; 114:14-23.
24. http://www.cytoskeleton.com/bk011p
25. Bonne D, Heusele C, Simon C, Pantaloni D. 4’, 6-Diamidino-2-phenylindole, a fluorescent probe for tubulin and microtubules. J Biol Chem 1985;  260: 2819-2825.
26. Omid Malayeri S, Tayarani-Najaran Z, Shaebani Behbahani F, Rashidi R, Delpazir S, Ghodsi R. Synthesis and biological evaluation of benzo[b]furo[3,4-e][1,4]diazepin-1-one derivatives as anti-cancer agents. Bioorg Chem 2018; 80:631–638.
27. Selvam, N.P, Perumal, P.T. Cerium (IV) sulfate catalyzed simple and convenient synthesis of
β-acetamidocarbonyl compounds. ARKIVOC, 2009; 10: 265-282.
26. Karimi-Jaberi, Z, Mohammadi, K. One-pot synthesis of using boric acid at room temperature. Sci Word J 2012, Article ID 925617.
28. Zhang XH, Fan L, Liu J, Yang DC. One-pot synthesis of β-acetamido-β-arylpropiophenone employing trifluoroacetic acid as an efficient catalyst. Res Chem Inter med 2011; 37:811-820.
29. Chakraborti A, Sharma L, Sharma U. A mild and chemoselective method for deprotection of aryl acetates and benzoates under non-hydrolytic condition. Tetrahedron. 2001; 57:9343-9346.
30. Abdizadeh T, Kalani MR, Abnous K, Tayarani-Najaran Z, Khashyarmanesh BZ, Abdizadeh R, Ghodsi R, Hadizadeh F. Design, synthesis and biological evaluation of novel coumarin-based benzamides as potent histone deacetylase inhibitors and anticancer agents. Eur J Med Chem 2017; 132:42-62.
31. Aboutorabzadeh SM, Mosaffa F, Hadizadeh F, Ghodsi R. Design, synthesis, and biological evaluation of 6-methoxy-2-arylquinolines as potential P-glycoprotein inhibitors. Iran J Basic Med Sci 2018;21:9-18.