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苯并喹啉化学空间:在抗菌和抗癌药物设计中的有益方法。

Benzoquinoline Chemical Space: A Helpful Approach in Antibacterial and Anticancer Drug Design.

机构信息

Department of Surgery, Emergency Country Clinical Hospital, 800010 Galati, Romania.

Faculty of Chemistry, Alexandru Ioan Cuza University of Iasi, 11 Carol 1st Bvd, 700506 Iasi, Romania.

出版信息

Molecules. 2023 Jan 20;28(3):1069. doi: 10.3390/molecules28031069.

Abstract

Benzoquinolines are used in many drug design projects as starting molecules subject to derivatization. This computational study aims to characterize e benzoquinone drug space to ease future drug design processes based on these molecules. The drug space is composed of all benzoquinones, which are active on topoisomerase II and ATP synthase. Topological, chemical, and bioactivity spaces are explored using computational methodologies based on virtual screening and scaffold hopping and molecular docking, respectively. Topological space is a geometrical space in which the elements composing it can be defined as a set of neighbors (which satisfy a particular axiom). In such space, a chemical space can be defined as the property space spanned by all possible molecules and chemical compounds adhering to a given set of construction principles and boundary conditions. In this chemical space, the potentially pharmacologically active molecules form the bioactivity space. Results show a poly-morphological chemical space that suggests distinct characteristics. The chemical space is correlated with properties such as steric energy, the number of hydrogen bonds, the presence of halogen atoms, and membrane permeability-related properties. Lastly, novel chemical compounds (such as oxadiazole methybenzamide and floro methylcyclohexane diene) with drug-like potential, active on TOPO II and ATP synthase have been identified.

摘要

苯醌类化合物在许多药物设计项目中被用作衍生化的起始分子。本计算研究旨在表征苯醌药物空间,以简化基于这些分子的未来药物设计过程。药物空间由拓扑异构酶 II 和 ATP 合酶上具有活性的所有苯醌组成。拓扑空间、化学空间和生物活性空间分别通过基于虚拟筛选、支架跃迁和分子对接的计算方法进行探索。拓扑空间是一种几何空间,其中组成它的元素可以定义为一组邻居(满足特定公理)。在这样的空间中,可以定义化学空间为由所有可能的分子和化学化合物组成的属性空间,这些分子和化学化合物遵守给定的构建原则和边界条件。在这个化学空间中,潜在的具有药理活性的分子形成了生物活性空间。结果表明,化学空间具有多态性,表现出不同的特征。化学空间与立体能量、氢键数量、卤原子存在以及与膜通透性相关的性质等特性相关联。最后,已经确定了具有潜在药物活性的新型化学化合物(如恶二唑甲基苯甲酰胺和氟甲基环己二烯),它们对 TOPO II 和 ATP 合酶具有活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a32/9921191/bbadca969b0d/molecules-28-01069-sch001.jpg

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