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5-乙炔基咪唑-4-甲酰胺(EICA)核苷酸前药的合成及抗登革热病毒活性。

Synthesis and Anti-dengue Virus Activity of 5-Ethynylimidazole-4-carboxamide (EICA) Nucleotide Prodrugs.

机构信息

Graduate School of Pharmaceutical Science, Tokushima University.

Drug Discovery and Disease Research Laboratory, Shionogi & Co., Ltd.

出版信息

Chem Pharm Bull (Tokyo). 2022 Mar 1;70(3):220-225. doi: 10.1248/cpb.c21-01038. Epub 2021 Dec 25.

Abstract

We previously showed that 5-ethynyl-(1-β-D-ribofuranosyl)imidazole-4-carboxamide (1; EICAR) is a potent anti-dengue virus (DENV) compound but is cytotoxic to some cell lines, while its 4-thio derivative, 5-ethynyl-(4-thio-1-β-D-ribofuranosyl)imidazole-4-carboxamide (2; 4'-thioEICAR), has less cytotoxicity but also less anti-DENV activity. Based on the hypothesis that the lower anti-DENV activity of 2 is due to reduced susceptibility to phosphorylation by cellular kinase(s), we investigated whether a monophosphate prodrug of 2 can improve its activity. Here, we first prepared two types of prodrug of 1, which revealed that the S-acyl-2-thioethyl (SATE) prodrug had stronger anti-DENV activity than the aryloxyphosphoramidate (so-called ProTide) prodrug. Based on these findings, we next prepared the SATE prodrug of 4'-thioEICAR 18. As expected, the resulting 18 showed potent anti-DENV activity, which was comparable to that of 1; however, its cytotoxicity was also increased relative to 2. Our findings suggest that prodrugs of 4'-thioribonucleoside derivatives such as EICAR (1) represent an effective approach to developing potent biologically active compounds; however, the balance between antiviral activity and cytotoxicity remains to be addressed.

摘要

我们之前曾表明,5-乙炔基-(1-β-D-呋喃核糖基)咪唑-4-甲酰胺(1;EICAR)是一种有效的抗登革热病毒(DENV)化合物,但对某些细胞系具有细胞毒性,而其 4-硫代衍生物,5-乙炔基-(4-硫代-1-β-D-呋喃核糖基)咪唑-4-甲酰胺(2;4'-硫代 EICAR),细胞毒性较小,但抗 DENV 活性也较低。基于这样的假设,即 2 的抗 DENV 活性较低是由于其对细胞激酶的磷酸化敏感性降低所致,我们研究了 2 的单磷酸前药是否可以提高其活性。在这里,我们首先制备了 1 的两种类型的前药,结果表明 S-酰基-2-硫代乙基(SATE)前药比芳氧基磷酰胺(所谓的 ProTide)前药具有更强的抗 DENV 活性。基于这些发现,我们接下来制备了 4'-硫代 EICAR 18 的 SATE 前药。不出所料,得到的 18 显示出很强的抗 DENV 活性,与 1 相当;然而,其细胞毒性也相对于 2 增加了。我们的研究结果表明,EICAR(1)等 4'-硫代核苷衍生物的前药代表了开发有效生物活性化合物的有效方法;然而,抗病毒活性和细胞毒性之间的平衡仍有待解决。

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