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新型苯并咪唑丙烯腈作为微管蛋白聚合抑制剂的合成、计算分析及抗增殖活性:第2部分

Synthesis, Computational Analysis, and Antiproliferative Activity of Novel Benzimidazole Acrylonitriles as Tubulin Polymerization Inhibitors: Part 2.

作者信息

Beč Anja, Hok Lucija, Persoons Leentje, Vanstreels Els, Daelemans Dirk, Vianello Robert, Hranjec Marijana

机构信息

Department of Organic Chemistry, Faculty of Chemical Engineering and Technology, University of Zagreb, Marulićev trg 19, HR-10000 Zagreb, Croatia.

Laboratory for the Computational Design and Synthesis of Functional Materials, Division of Organic Chemistry and Biochemistry, Ruđer Bošković Institute, Bijenička cesta 54, HR-10000 Zagreb, Croatia.

出版信息

Pharmaceuticals (Basel). 2021 Oct 17;14(10):1052. doi: 10.3390/ph14101052.

Abstract

We used classical linear and microwave-assisted synthesis methods to prepare novel -substituted, benzimidazole-derived acrylonitriles with antiproliferative activity against several cancer cells in vitro. The most potent systems showed pronounced activity against all tested hematological cancer cell lines, with favorable selectivity towards normal cells. The selection of lead compounds was also tested in vitro for tubulin polymerization inhibition as a possible mechanism of biological action. A combination of docking and molecular dynamics simulations confirmed the suitability of the employed organic skeleton for the design of antitumor drugs and demonstrated that their biological activity relies on binding to the colchicine binding site in tubulin. In addition, it also underlined that higher tubulin affinities are linked with (i) bulkier alkyl and aryl moieties on the benzimidazole nitrogen and (ii) electron-donating substituents on the phenyl group that allow deeper entrance into the hydrophobic pocket within the tubulin's β-subunit, consisting of Leu255, Leu248, Met259, Ala354, and Ile378 residues.

摘要

我们采用经典线性合成法和微波辅助合成法,制备了新型的、具有抗增殖活性的、苯并咪唑衍生的丙烯腈类化合物,该化合物在体外对多种癌细胞具有活性。最有效的体系对所有测试的血液癌细胞系均表现出显著活性,且对正常细胞具有良好的选择性。还在体外测试了先导化合物对微管蛋白聚合的抑制作用,以此作为一种可能的生物学作用机制。对接和分子动力学模拟相结合,证实了所采用的有机骨架适用于抗肿瘤药物的设计,并表明它们的生物活性依赖于与微管蛋白中的秋水仙碱结合位点结合。此外,研究还强调,较高的微管蛋白亲和力与以下因素有关:(i)苯并咪唑氮上体积更大的烷基和芳基部分;(ii)苯环上的供电子取代基,这些取代基能够更深地进入微管蛋白β亚基内由Leu255、Leu248、Met259、Ala354和Ile378残基组成的疏水口袋。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9105/8540608/b2c8718b6cdc/pharmaceuticals-14-01052-g001.jpg

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