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3-芳基喹喔啉-2-甲腈 1,4-二-N-氧化物衍生物的合成及作为低氧选择性抗肿瘤剂的生物评价。

Synthesis and biological evaluation of 3-aryl-quinoxaline-2-carbonitrile 1,4-di-N-oxide derivatives as hypoxic selective anti-tumor agents.

机构信息

ZJU-ENS Joint Laboratory of Medicinal Chemistry, Zhejiang University, Hangzhou 310058, China.

出版信息

Molecules. 2012 Aug 13;17(8):9683-96. doi: 10.3390/molecules17089683.

Abstract

A series of 3-aryl-2-quinoxaline-carbonitrile 1,4-di-N-oxide derivatives were designed, synthesized and evaluated for hypoxic and normoxic cytotoxic activity against human SMMC-7721, K562, KB, A549 and PC-3 cell lines. Many of these new compounds displayed more potent hypoxic cytotoxic activity compared with TX-402 and TPZ in the tumor cells based evaluation, which confirmed our hypothesis that the replacement of the 3-amine with the substituted aryl ring of TX-402 increases the hypoxic anti-tumor activity. The preliminary SAR revealed that 3-chloro was a favorable substituent in the phenyl ring for hypoxic cytotoxicity and 7-methyl or 7-methoxy substituted derivatives exhibited better hypoxic selectivity against most of the tested cell lines. The most potent compound, 7-methyl-3-(3-chlorophenyl)-quinoxaline-2-carbonitrile 1,4-dioxide (9h) was selected for further anti-tumor evaluation and mechanistic study. It also exhibited significant cytotoxic activity against BEL-7402, HepG2, HL-60, NCI-H460, HCT-116 and CHP126 cell lines in hypoxia with IC₅₀ values ranging from 0.31 to 3.16 μM, and preliminary mechanism study revealed that 9h induced apoptosis in a caspase-dependent pathway.

摘要

设计、合成并评价了一系列 3-芳基-2-喹喔啉-1,4-二腈 1,4-二氧化物衍生物,以评估它们对人 SMMC-7721、K562、KB、A549 和 PC-3 细胞系的缺氧和常氧细胞毒性。这些新化合物中的许多在肿瘤细胞基于评价中显示出比 TX-402 和 TPZ 更强的缺氧细胞毒性,这证实了我们的假设,即 3-胺被 TX-402 的取代芳环取代会增加缺氧抗肿瘤活性。初步 SAR 表明,苯环上的 3-氯是一个有利于缺氧细胞毒性的取代基,7-甲基或 7-甲氧基取代的衍生物对大多数测试的细胞系表现出更好的缺氧选择性。最有效的化合物,7-甲基-3-(3-氯苯基)-喹喔啉-2-甲腈 1,4-二氧化物(9h)被选为进一步的抗肿瘤评价和机制研究。它在缺氧条件下对 BEL-7402、HepG2、HL-60、NCI-H460、HCT-116 和 CHP126 细胞系也表现出显著的细胞毒性活性,IC₅₀ 值范围为 0.31 至 3.16 μM,初步机制研究表明 9h 通过半胱天冬酶依赖性途径诱导细胞凋亡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5aaf/6268107/9ce612ee55c1/molecules-17-09683-g001.jpg

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