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新型吡喃并[3,2-c]咔唑衍生物作为通过抑制微管蛋白聚合诱导凋亡的抗肿瘤剂的合成及生物学评价

Synthesis and biological evaluation of novel pyrano[3,2-c]carbazole derivatives as anti-tumor agents inducing apoptosis via tubulin polymerization inhibition.

作者信息

Padmaja Pannala, Koteswara Rao Garikapati, Indrasena Adisherla, Subba Reddy Basireddy V, Patel Nibedita, Shaik Anver Basha, Reddy Narayana, Dubey Pramod K, Bhadra Manika Pal

机构信息

Department of Chemistry, JNTUH College of Engineering, Kukatpally, Hyderabad (T.S), 500 085, India.

出版信息

Org Biomol Chem. 2015 Feb 7;13(5):1404-14. doi: 10.1039/c4ob02015d.

Abstract

A series of novel pyrano[3,2-c]carbazole derivatives have been synthesized by a simple one-pot, three component reaction of aromatic aldehydes, malononitrile-ethyl cyanoacetate and 4-hydroxycarbazoles catalyzed by triethylamine. The antiproliferative activity of the derivatives on various cancer cell lines such as MDA-MB-231, K562, A549 and HeLa was investigated. Among 9a-p, congeners 9a, 9c, 9g and 9i showed profound antiproliferative activity with IC50 values ranging from 0.43 to 8.05 μM and induced apoptosis significantly by inhibiting tubulin polymerization. Cell-based biological assays demonstrated that treatment of cell lines with compounds 9a, 9c, 9g and 9i results in G2/M phase arrest of the cell cycle. Moreover the derivatives significantly disrupted the microtubule network, produced an elevation of cyclinB1 protein levels and induced apoptosis by increasing the caspase-3 levels. In particular, 9i strongly inhibited tubulin assembly compared to the positive control CA-4. Molecular docking studies demonstrated that all the lead compounds selectively occupy the colchicine binding site of the tubulin polymer.

摘要

通过三乙胺催化的芳香醛、丙二腈 - 氰基乙酸乙酯和4 - 羟基咔唑的简单一锅三组分反应,合成了一系列新型吡喃并[3,2 - c]咔唑衍生物。研究了这些衍生物对多种癌细胞系(如MDA - MB - 231、K562、A549和HeLa)的抗增殖活性。在9a - p同系物中,9a、9c、9g和9i表现出显著的抗增殖活性,IC50值在0.43至8.05 μM范围内,并通过抑制微管蛋白聚合显著诱导细胞凋亡。基于细胞的生物学分析表明,用化合物9a、9c、9g和9i处理细胞系会导致细胞周期的G2/M期阻滞。此外,这些衍生物显著破坏微管网络,使细胞周期蛋白B1水平升高,并通过增加半胱天冬酶 - 3水平诱导细胞凋亡。特别是,与阳性对照CA - 4相比,9i强烈抑制微管蛋白组装。分子对接研究表明,所有先导化合物都选择性地占据微管蛋白聚合物的秋水仙碱结合位点。

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