Bezmialem Vakif University, Faculty of Pharmacy, Department of Pharmaceutical Chemistry, 34093 Istanbul, Turkey.
Bezmialem Vakif University, Faculty of Pharmacy, Department of Pharmaceutical Chemistry, 34093 Istanbul, Turkey.
Bioorg Chem. 2019 Jun;87:838-850. doi: 10.1016/j.bioorg.2019.03.003. Epub 2019 Mar 7.
A series of novel bis-coumarin derivatives containing triazole moiety as a linker between the alkyl chains was synthesized and their inhibitory activity against the human carbonic anhydrase (hCA) isoforms I, II, IX and XII were evaluated. In addition, cytotoxic effects of the synthesized compounds on renal adenocarcinoma (769P), hepatocellular carcinoma (HepG2) and breast adeno carcinoma (MDA-MB-231) cell lines were examined. While the hCA I and II isoforms were inhibited in the micromolar range, the tumor-associated isoform hCA IX and XII were inhibited in the high nanomolar range. 4-methyl-7-((1-(12-((2-oxo-2H-chromen-7-yl)oxy)dodecyl)-1H-1,2,3-triazol-4-yl)methoxy)-2H-chromen-2-one (5p) showed the strongest inhibitory activity against hCA IX with the K of 144.6 nM and 4-methyl-7-((1-(10-((2-oxo-2H-chromen-7-yl)oxy)decyl)-1H-1,2,3-triazol-4-yl)methoxy)-2H-chromen-2-one (5n) exhibited the highest hCA XII inhibition with the K of 71.5 nM. In order to better understand the inhibitory profiles of studied molecules, multiscale molecular modelling approaches were applied. Low energy docking poses of studied molecules at the binding sites of targets have been predicted. In addition, electrostatic potential surfaces (ESP) for binding sites were also generated to understand interactions between proteins and active ligands.
合成了一系列新型的双香豆素衍生物,其中含有三唑部分作为烷基链之间的连接物,并评估了它们对人碳酸酐酶(hCA)同工型 I、II、IX 和 XII 的抑制活性。此外,还研究了合成化合物对肾腺癌(769P)、肝癌(HepG2)和乳腺癌(MDA-MB-231)细胞系的细胞毒性作用。虽然 hCA I 和 II 同工型在微摩尔范围内被抑制,但与肿瘤相关的同工型 hCA IX 和 XII 在高纳摩尔范围内被抑制。4-甲基-7-((1-(12-((2-氧代-2H-色烯-7-基)氧基)十二烷基)-1H-1,2,3-三唑-4-基)甲氧基)-2H-色烯-2-酮(5p)对 hCA IX 的抑制活性最强,K 为 144.6 nM,4-甲基-7-((1-(10-((2-氧代-2H-色烯-7-基)氧基)癸基)-1H-1,2,3-三唑-4-基)甲氧基)-2H-色烯-2-酮(5n)对 hCA XII 的抑制活性最高,K 为 71.5 nM。为了更好地理解研究分子的抑制谱,应用了多尺度分子建模方法。预测了研究分子在靶标结合位点的低能量对接构象。此外,还生成了结合位点的静电势能表面(ESP),以了解蛋白质和活性配体之间的相互作用。