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分子内氢键:改善药物化学设计的机会。

Intramolecular hydrogen bonding: An opportunity for improved design in medicinal chemistry.

机构信息

Molecular Biotechnology and Health Sciences Department, University of Torino, Torino, Italy.

Department of Chemistry - BMC, Uppsala University, Uppsala, Sweden.

出版信息

Med Res Rev. 2019 Sep;39(5):1707-1729. doi: 10.1002/med.21562. Epub 2019 Jan 19.

Abstract

Recent literature shows that intramolecular hydrogen bond (IMHB) formation can positively impact upon the triad of permeability, solubility, and potency of drugs and candidates. IMHB modulation can be applied to compounds in any chemical space as a means for discovering drug candidates with both acceptable potency and absorption, distribution, metabolism, and excretion-Tox profiles. Integrating IMHB formation in design of drugs is, therefore, an exciting and timely challenge for modern medicinal chemistry. In this review, we first provide some background about IMHBs from the medicinal chemist's point of view and highlight some IMHB-associated misconceptions. Second, we propose a classification of IMHBs for drug discovery purposes, review the most common in silico tactics to include IMHBs in lead optimization and list some experimental physicochemical descriptors, which quantify the propensity of compounds to form IMHBs. By focusing on the compounds size and the number of IMHBs that can potentially be formed, we also outline the major difficulties encountered when designing compounds based on the inclusion of IMHBs. Finally, we discuss recent case studies illustrating the application of IMHB to optimize cell permeability and physicochemical properties of small molecules, cyclic peptides and macrocycles.

摘要

近期文献表明,分子内氢键(IMHB)的形成能积极影响药物和候选物的通透性、溶解度和效力三效关系。IMHB 调节可应用于任何化学空间的化合物,作为发现具有可接受效力和吸收、分布、代谢和排泄毒性特征的候选药物的一种手段。因此,将 IMHB 形成纳入药物设计是现代药物化学中一个令人兴奋且及时的挑战。在这篇综述中,我们首先从药物化学家的角度提供一些关于 IMHB 的背景信息,并强调一些与 IMHB 相关的误解。其次,我们提出了一种用于药物发现的 IMHB 分类,回顾了在先导优化中包含 IMHB 的最常见的计算策略,并列出了一些量化化合物形成 IMHB 倾向的实验物理化学描述符。通过关注化合物的大小和可能形成的 IMHB 的数量,我们还概述了在基于包含 IMHB 设计化合物时遇到的主要困难。最后,我们讨论了一些案例研究,说明了 IMHB 在优化小分子、环肽和大环化合物的细胞通透性和物理化学性质方面的应用。

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