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1,5-和 1,8-取代的 10H-蒽-9-酮与带有 10-亚苄基或 10-(2-氧代-2-苯乙基)部分的化合物的合成、抗增殖活性和微管蛋白聚合抑制作用。

Synthesis, antiproliferative activity and inhibition of tubulin polymerization by 1,5- and 1,8-disubstituted 10H-anthracen-9-ones bearing a 10-benzylidene or 10-(2-oxo-2-phenylethylidene) moiety.

机构信息

Institute of Pharmaceutical and Medicinal Chemistry, Westphalian Wilhelms-University, Hittorfstrasse 58-62, D-48149 Münster, Germany.

出版信息

Eur J Med Chem. 2010 Aug;45(8):3420-38. doi: 10.1016/j.ejmech.2010.04.032.

Abstract

A novel series of 1,5- and 1,8-disubstituted 10-benzylidene-10H-anthracen-9-ones and 10-(2-oxo-2-phenylethylidene)-10H-anthracen-9-ones was synthesized to assess the substituent effects on biological activity. The 3-hydroxy-2,4-dimethoxy-benzylidene analogue 16 h displayed strong antiproliferative activity against several tumor cell lines, including multi-drug resistant phenotypes. Flow cytometric studies showed that KB/HeLa cells treated by elected compounds were arrested in the G2/M phases of the cell cycle. Among the compounds tested for inhibition of tubulin polymerization, 14 compounds proved to be exceptionally active with IC(50) values < 1 microM. In the 1,5-dichloro-derived series of benzylideneanthracenones, E/Z isomers were separated and biological effects were monitored. We found that the olefinic geometry had no significant effect on biological activity. Furthermore, the E isomeric 1,5-dichloro-substituted phenacylidenes entirely proved to be more potent inhibitors of tubulin polymerization than the recently described 10-(2-oxo-2-phenylethylidene)-10H-anthracen-9-ones. In conclusion, the present study improves understanding of the action of anthracenone-based tubulin polymerization inhibitors and contributes to the design of further potent anti-tubulin drugs.

摘要

合成了一系列新型的 1,5-和 1,8-取代的 10-亚苄基-10H-蒽-9-酮和 10-(2-氧代-2-苯乙基)亚苄基-10H-蒽-9-酮,以评估取代基对生物活性的影响。3-羟基-2,4-二甲氧基-亚苄基类似物 16 h 对多种肿瘤细胞系表现出强烈的抗增殖活性,包括多药耐药表型。流式细胞术研究表明,所选化合物处理的 KB/HeLa 细胞被阻滞在细胞周期的 G2/M 期。在测试的抑制微管蛋白聚合的化合物中,有 14 种化合物表现出异常的活性,IC50 值<1μM。在 1,5-二氯取代的苯甲酰基蒽酮系列中,分离了 E/Z 异构体并监测了生物效应。我们发现烯烃几何形状对生物活性没有显著影响。此外,E 异构体的 1,5-二氯取代的苯乙酮完全被证明是比最近描述的 10-(2-氧代-2-苯乙基)亚苄基-10H-蒽-9-酮更有效的微管蛋白聚合抑制剂。总之,本研究提高了对基于蒽酮的微管蛋白聚合抑制剂作用的认识,并有助于设计进一步有效的抗微管蛋白药物。

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