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喹唑啉衍生物的合成与生物评价-新型 ABCG2 抑制剂的构效关系研究。

Synthesis and biological evaluation of quinazoline derivatives - A SAR study of novel inhibitors of ABCG2.

机构信息

Pharmaceutical Institute, University of Bonn, An der Immenburg 4, 53121, Bonn, Germany.

Pharmaceutical Institute, University of Bonn, An der Immenburg 4, 53121, Bonn, Germany.

出版信息

Eur J Med Chem. 2019 Jan 1;161:506-525. doi: 10.1016/j.ejmech.2018.10.026. Epub 2018 Oct 13.

Abstract

Multidrug resistance (MDR) is a major obstacle for effective chemotherapeutic treatment of cancer frequently leading to failure of the therapy. MDR is often associated with the overexpression of ABC transport proteins like ABCB1 or ABCG2 which efflux harmful substances out of cells at the cost of ATP hydrolysis. One way to overcome MDR is to apply potent inhibitors of ABC transporters to restore the sensitivity of the cells toward cytostatic agents. This study focusses on the synthesis and evaluation of novel 2,4-disubstituted quinazoline derivatives regarding the structure-activity-relationship (SAR), their ability to reverse MDR and their mode of interaction with ABCG2. Hence, the inhibitory potency and selectivity toward ABCG2 was determined. Moreover, the intrinsic cytotoxicity and the reversal of MDR were investigated. Interaction type studies with the substrate Hoechst 33342 and conformational analyses of ABCG2 with 5D3 monoclonal antibody were performed for a better understanding of the underlying mechanisms. In our study we could further enhance the inhibitory effect against ABCG2 (compound 31, IC: 55 nM) and identify the structural features that are crucial for inhibitory potency, the impact on transport activity and binding to the protein.

摘要

多药耐药性(MDR)是癌症有效化疗治疗的主要障碍,经常导致治疗失败。MDR 通常与 ABC 转运蛋白的过度表达有关,如 ABCB1 或 ABCG2,这些蛋白以 ATP 水解为代价将有害物质从细胞中排出。克服 MDR 的一种方法是应用有效的 ABC 转运蛋白抑制剂来恢复细胞对细胞毒性药物的敏感性。本研究专注于合成和评估新型 2,4-取代喹唑啉衍生物,研究其结构-活性关系(SAR)、逆转 MDR 的能力及其与 ABCG2 的相互作用模式。因此,测定了对 ABCG2 的抑制效力和选择性。此外,还研究了内在细胞毒性和逆转 MDR 的能力。为了更好地理解潜在的机制,进行了与底物 Hoechst 33342 的相互作用类型研究和用 5D3 单克隆抗体进行的 ABCG2 构象分析。在我们的研究中,我们能够进一步增强对 ABCG2 的抑制作用(化合物 31,IC:55 nM),并确定对抑制效力、对转运活性的影响以及与蛋白质结合至关重要的结构特征。

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