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喹唑酮,药物研发的制胜之选。

Quinazolinones, the Winning Horse in Drug Discovery.

机构信息

Department of Pharmaceutical Chemistry, College of Pharmacy, King Saud University, Riyadh 11564, Saudi Arabia.

Department of Pharmacognosy, College of Pharmacy, King Saud University, Riyadh 11564, Saudi Arabia.

出版信息

Molecules. 2023 Jan 18;28(3):978. doi: 10.3390/molecules28030978.

Abstract

Quinazolines are nitrogen-containing heterocycles that consist of a benzene ring fused with a pyrimidine ring. Quinazolinones, oxidized quinazolines, are promising compounds with a wide range of biological activities. In the pharmaceutical field, quinazolinones are the building blocks of more than 150 naturally occurring alkaloids isolated from different plants, microorganisms, and animals. Scientists give a continuous interest in this moiety due to their stability and relatively easy methods for preparation. Their lipophilicity is another reason for this interest as it helps quinazolinones in penetration through the blood-brain barrier which makes them suitable for targeting different central nervous system diseases. Various modifications to the substitutions around the quinazolinone system changed their biological activity significantly due to changes in their physicochemical properties. Structure-activity relationship (SAR) studies of quinazolinone revealed that positions 2, 6, and 8 of the ring systems are significant for different pharmacological activities. In addition, it has been suggested that the addition of different heterocyclic moieties at position 3 could increase activity. In this review, we will highlight the chemical properties of quinazolinones, including their chemical reactions and different methods for their preparation. Moreover, we will try to modify some of the old SAR studies according to their updated biological activities in the last twelve years.

摘要

喹唑啉是一种含氮杂环化合物,由苯并咪唑与嘧啶稠合而成。氧化喹唑啉是一种具有广泛生物活性的有前途的化合物。在制药领域,喹唑啉酮是 150 多种天然存在的生物碱的构建模块,这些生物碱分别从不同的植物、微生物和动物中分离得到。由于其稳定性和相对简单的制备方法,科学家们对这一部分化合物持续感兴趣。其亲脂性也是引起人们关注的另一个原因,因为它有助于喹唑啉酮穿透血脑屏障,使其适合针对不同的中枢神经系统疾病。喹唑啉酮系统周围取代基的各种修饰会显著改变其生物活性,这是由于其物理化学性质的变化。喹唑啉酮的构效关系(SAR)研究表明,环系统的 2、6 和 8 位对于不同的药理活性很重要。此外,有人认为在 3 位添加不同的杂环基团可以提高活性。在这篇综述中,我们将重点介绍喹唑啉酮的化学性质,包括它们的化学反应和不同的制备方法。此外,我们将根据过去 12 年中它们更新的生物活性,尝试修改一些旧的 SAR 研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6681/9919317/674071d67a72/molecules-28-00978-g002.jpg

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