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4-氨基喹啉-嘌呤杂合物作为潜在抗疟原虫剂的设计、合成与评价

Design, synthesis and evaluation of 4-aminoquinoline-purine hybrids as potential antiplasmodial agents.

作者信息

Reddy P Linga, Khan Shabana I, Ponnan Prija, Tripathi Mohit, Rawat Diwan S

机构信息

Department of Chemistry, University of Delhi, Delhi 110007, India.

National Centre for Natural Products Research, University of Mississippi, MS 38677, USA.

出版信息

Eur J Med Chem. 2017 Jan 27;126:675-686. doi: 10.1016/j.ejmech.2016.11.057. Epub 2016 Dec 1.

DOI:10.1016/j.ejmech.2016.11.057
PMID:27936446
Abstract

A novel series of 4-aminoquinoline-purine hybrids were synthesized and assessed for their antiplasmodial activity against CQ-sensitive and CQ-resistant strains of P. falciparum. It was envisaged that linking of the 4-aminoquinoline pharmacophore (targeting heme-detoxification pathway of malarial parasite) with the purine functionality (targeting plasmodial HG(X)PRT enzyme) will produce a hybrid antiplasmodial agent with increased potency. The synthesized hybrids displayed good antiplasmodial activities against both the sensitive and resistant strains of P. falciparum with up to six-fold better activity (compound 10i, IC: 0.08 μM) compared to the reference drug CQ (IC: 0.5 μM) against the resistant strain. The synthesized compounds were also checked for their cytotoxicity towards mammalian cells and with the exception of two compounds out of the twenty synthesized hybrids, all others were non-cytotoxic up to 11.86 μM concentration. Mechanistic heme-binding studies were performed to identify the mechanism of action of the synthesized molecules and good binding interactions were observed. Computational docking studies showed that the most active hybrids dock well within the binding site of HGPRT protein. In silico ADME predictions of the most active hybrids showed that these compounds possess good pharmacokinetic behavior.

摘要

合成了一系列新型的4-氨基喹啉-嘌呤杂合物,并评估了它们对恶性疟原虫氯喹敏感株和氯喹耐药株的抗疟活性。设想将4-氨基喹啉药效基团(靶向疟原虫的血红素解毒途径)与嘌呤官能团(靶向疟原虫的HG(X)PRT酶)连接起来,将产生一种效力增强的杂合抗疟剂。合成的杂合物对恶性疟原虫的敏感株和耐药株均显示出良好的抗疟活性,与参考药物氯喹(IC:0.5 μM)相比,对耐药株的活性提高了六倍(化合物10i,IC:0.08 μM)。还检测了合成化合物对哺乳动物细胞的细胞毒性,除了二十种合成杂合物中的两种化合物外,所有其他化合物在浓度高达11.86 μM时均无细胞毒性。进行了血红素结合机制研究以确定合成分子的作用机制,并观察到良好的结合相互作用。计算对接研究表明,活性最高的杂合物在HGPRT蛋白的结合位点内对接良好。对活性最高的杂合物进行的计算机辅助ADME预测表明,这些化合物具有良好的药代动力学行为。

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