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嘧啶并[1,2,4,5]四嗪、[1,2,4]三嗪并[1,2,4]三嗪和[1,2,4,5]四嗪的合成及其在抗癌、DFT 和分子对接研究中的应用。

Synthesis of pyrido-annelated [1,2,4,5]tetrazines, [1,2,4]triazepine, and [1,2,4,5]tetrazepines for anticancer, DFT, and molecular docking studies.

机构信息

Department of Chemistry, Organic Chemistry, Faculty of Science (Girls), Al-Azhar University, Youssef Abbas Street, Nasr City, Cairo, Egypt.

Department of Pharmaceutical Organic Chemistry, Faculty of Pharmacy (Girls), Al-Azhar University, Youssef Abbas Street, Nasr City, Cairo, Egypt.

出版信息

Sci Rep. 2023 Apr 5;13(1):5585. doi: 10.1038/s41598-023-32421-x.

Abstract

In this strategy, we attempt to design various novel nitrogen-rich heterocycles in one molecule. Green, simple, and efficient aza-annulations of an active, versatile building block, 1-amino-4-methyl-2-oxo-6-phenyl-1,2-dihydropyridine-3-carbonitrile (1), with different bifunctional reagents were developed under solvent-free conditions, resulting in the bridgehead tetrazines and azepines (triazepine and tetrazepines). Pyrido[1,2,4,5]tetrazines have been synthesized through two pathways; [3 + 3]- and [5 + 1]-annulations. In addition, pyrido-azepines have been developed by applying [4 + 3]-and [5 + 2]-annulations. This protocol establishes an efficient technique for synthesizing essential biological derivatives of 1,2,4,5-tetrazines, 1,2,4-triazepines, and 1,2,4,5-tetrazepine, tolerating a diverse variety of functionalities without the need for catalysis and fast reaction rates in high yields. The National Cancer Institute (NCI, Bethesda, USA) examined twelve compounds produced at a single high dosage (10 M). Compounds 4, 8, and 9 were discovered to have potent anticancer action against certain cancer cell types. To explain NCI results, the density of states was calculated to conduct a better description of the FMOs. The molecular electrostatic potential maps were created to explain a molecule's chemical reactivity. In silico ADME experiments were performed to better understand their pharmacokinetic characteristics. Finally, the molecular docking investigations on Janus Kinase-2 (PDB ID: 4P7E) were carried out to study the binding mechanism, binding affinity, and non-bonding contacts.

摘要

在这项策略中,我们试图在一个分子中设计各种新型富氮杂环。在无溶剂条件下,开发了一种活性、多功能构建块 1-氨基-4-甲基-2-氧代-6-苯基-1,2-二氢吡啶-3-甲腈(1)与不同双功能试剂的绿色、简单、高效的氮杂环加成反应,得到桥环四嗪和氮杂环庚烷(三氮杂庚烷和四氮杂庚烷)。通过两种途径[3+3]-和[5+1]-环加成合成了吡啶并[1,2,4,5]四嗪。此外,通过[4+3]-和[5+2]-环加成开发了吡啶氮杂环庚烷。该方案建立了一种高效的合成 1,2,4,5-四嗪、1,2,4-三氮杂庚烷和 1,2,4,5-四氮杂庚烷等重要生物衍生物的技术,可耐受多种不同的官能团,无需催化且在高产率下具有较快的反应速率。美国国立癌症研究所(NCI,贝塞斯达)在单一高剂量(10 μM)下测试了 12 种化合物。发现化合物 4、8 和 9 对某些癌细胞类型具有很强的抗癌作用。为了解释 NCI 的结果,计算了态密度以更好地描述 FMO。创建分子静电势图以解释分子的化学反应性。进行了计算机辅助药物代谢动力学实验以更好地了解它们的药代动力学特征。最后,对 Janus Kinase-2(PDB ID:4P7E)进行了分子对接研究,以研究结合机制、结合亲和力和非键接触。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/63af/10076274/f1605f5d3564/41598_2023_32421_Fig1_HTML.jpg

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