嘌呤核苷作为选择性丁酰胆碱酯酶抑制剂的多学科研究。

IF 2.7 3区 化学 Q1 CHEMISTRY, ORGANIC
Vasco Cachatra, Alice Martins, Maria Conceição Oliveira, Maria Cristina Oliveira, Lurdes Gano, António Paulo, Óscar López, José G. Fernández-Bolaños, Marialessandra Contino, Nicola Antonio Colabufo, David Evans, Teresa Man and Amélia Pilar Rauter
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引用次数: 0

摘要

对纳米摩尔嘌呤核苷BuChE选择性抑制剂最相关的相互作用的计算研究表明,2位的苄基和嘌呤乙酰氨基是活性所必需的。此外,6-碘放射性标记类似物的合成和体内生物利用度的研究表明,1小时后大脑的吸收百分比很低。这些结果鼓励了一小部分新化合物的合成,重点关注其他位置的脱氧,旨在获得活性的和更多生物可利用的结构。在第4位和第3,4位脱氧得到对两种胆碱酯酶均具有较低抑制作用的新核苷,而在第6位和lyxopyranosyl基团脱氧得到两种活性最高的化合物(IC50范围为3.7 ~ 7.8 μM);其中一种在生物活性浓度下无细胞毒性,而另一种在生物活性浓度下有轻微的细胞毒性。有趣的是,这些结构表现出相同的异构立体化学,并且与嘌呤n7相连,与先导化合物3相似(IC50 = 50 nM),从而证实了αDN7嘌呤核苷结构的重要性。因此,通过改变反应温度、改变异构离去基或改变路易斯酸,对嘌呤核苷的合成工艺进行了优化。在25℃条件下,原始n -糖基化条件下,αDN7嘌呤核苷的收率最高,为25%,而αDN7嘌呤核苷的收率为8%,N7的区域选择性也有所提高,总N7核苷收率从36%提高到52%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Purine nucleosides as selective inhibitors of butyrylcholinesterase – a multidisciplinary study†

Purine nucleosides as selective inhibitors of butyrylcholinesterase – a multidisciplinary study†

The computational study of the most relevant interactions of the nanomolar purine nucleoside BuChE selective inhibitor has shown that the benzyl group at position 2 and the purine acetamido group are required for activity. In addition, the synthesis of a 6-iodinated radiolabelled analogue and the study of in vivo bioavailability have shown a low percentage of uptake by the brain after 1 hour. These results encouraged the synthesis of a small library of new compounds, focussing on deoxygenation at other positions aiming to access active and more bioavailable structures. Deoxygenation at positions 4 and 3,4 afforded new nucleosides that displayed low inhibition of both cholinesterases, while deoxygenation at position 6 and the lyxopyranosyl group afforded the two most active compounds (IC50 ranging from 3.7 to 7.8 μM); one of them was not cytotoxic at the bioactive concentration, while the other one showed a slight cytotoxicity. Interestingly, these structures exhibited the same anomeric stereochemistry and were purine N7-linked, similar to the lead compound 3 (IC50 = 50 nM), thus confirming the importance of the αDN7 purine nucleoside structure. Thus, optimization of the purine nucleoside synthetic procedure was carried out by changing the reaction temperature, the anomeric leaving group or the Lewis acid. The most satisfactory reaction yields and regioselectivity were obtained by using the original N-glycosylation conditions at 25 °C, which afforded the highest yield of 25% when compared to the 8% of the αDN7 purine nucleoside, and an increase in N7 regioselectivity, with the total N7 nucleoside yield increasing from 36% to 52%.

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来源期刊
Organic & Biomolecular Chemistry
Organic & Biomolecular Chemistry 化学-有机化学
CiteScore
5.50
自引率
9.40%
发文量
1056
审稿时长
1.3 months
期刊介绍: Organic & Biomolecular Chemistry is an international journal using integrated research in chemistry-organic chemistry. Founded in 2003 by the Royal Society of Chemistry, the journal is published in Semimonthly issues and has been indexed by SCIE, a leading international database. The journal focuses on the key research and cutting-edge progress in the field of chemistry-organic chemistry, publishes and reports the research results in this field in a timely manner, and is committed to becoming a window and platform for rapid academic exchanges among peers in this field. The journal's impact factor in 2023 is 2.9, and its CiteScore is 5.5.
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