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烯丙位应变在药物化学中的构象控制作用。

The Role of Allylic Strain for Conformational Control in Medicinal Chemistry.

机构信息

Medicinal Chemistry, Research and Early Development, Respiratory and Immunology (R&I), BioPharmaceuticals R&D, AstraZeneca, Gothenburg 43183, Sweden.

Medicinal Chemistry, Research and Early Development, Cardiovascular, Renal and Metabolism, BioPharmaceuticals R&D, AstraZeneca, Gothenburg 43183, Sweden.

出版信息

J Med Chem. 2023 Jun 22;66(12):7730-7755. doi: 10.1021/acs.jmedchem.3c00446. Epub 2023 Jun 7.

Abstract

It is axiomatic in medicinal chemistry that optimization of the potency of a small molecule at a macromolecular target requires complementarity between the ligand and target. In order to minimize the conformational penalty on binding, both enthalpically and entropically, it is therefore preferred to have the ligand preorganized in the bound conformation. In this Perspective, we highlight the role of allylic strain in controlling conformational preferences. Allylic strain was originally described for carbon-based allylic systems, but the same principles apply to other types of structure with sp or pseudo-sp arrangements. These systems include benzylic (including heteroaryl methyl) positions, amides, -aryl groups, aryl ethers, and nucleotides. We have derived torsion profiles from small molecule X-ray structures for these systems. Through multiple examples, we show how these effects have been applied in drug discovery and how they can be used prospectively to influence conformation in the design process.

摘要

在药物化学中,有一个公理,即小分子在大分子靶标上的效力优化需要配体和靶标之间的互补性。为了在结合时最小化构象惩罚(无论是焓变还是熵变),因此最好使配体预先组织在结合构象中。在这篇观点文章中,我们强调了烯丙基应变在控制构象偏好中的作用。烯丙基应变最初是针对基于碳的烯丙基系统描述的,但相同的原则适用于具有 sp 或拟 sp 排列的其他类型的结构。这些系统包括苄基(包括杂芳基甲基)位置、酰胺、-芳基、芳基醚和核苷酸。我们已经为这些系统的小分子 X 射线结构导出了扭转轮廓。通过多个例子,我们展示了这些效应如何在药物发现中得到应用,以及它们如何在设计过程中前瞻性地用于影响构象。

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