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利用杂环化合物进行被动渗透宏观环支架的属性驱动开发。

Property-Driven Development of Passively Permeable Macrocyclic Scaffolds Using Heterocycles.

机构信息

Davenport Research Laboratories, University of Toronto, 80 St. George St, Toronto, Ontario, M5S 3H6, Canada.

出版信息

Angew Chem Int Ed Engl. 2022 Aug 15;61(33):e202206866. doi: 10.1002/anie.202206866. Epub 2022 Jul 7.

Abstract

Passive membrane permeability is a fundamental challenge in the development of bioactive macrocycles. To achieve this objective, chemists have resorted to various strategies, the most common of which is deployment of N-methylated amino acids and/or D-amino acids. Here we investigate the effect of heterocyclic grafts on the passive membrane permeability of macrocycles and report the structural consequences of iterative amino acid replacement by azole rings. Through stepwise substitution of amino acid residues for heterocycles, we show that lipophilicity and PAMPA permeability of a macrocycle can be vastly improved. Overall, changes in permeability do not scale linearly as more heterocycles are incorporated, underscoring the subtleties of conformation-property relationships in this class of molecule. NMR analysis and molecular dynamics simulations provide insights into the structural consequences of the added heterocycles and these frameworks can now be applied as macrocyclic scaffolds for drug discovery.

摘要

被动膜通透性是生物活性大环化合物发展的一个基本挑战。为了实现这一目标,化学家们采用了各种策略,其中最常见的是使用 N-甲基化氨基酸和/或 D-氨基酸。在这里,我们研究了杂环嫁接对大环化合物被动膜通透性的影响,并报告了通过唑环迭代取代氨基酸对结构的影响。通过逐步用杂环取代氨基酸残基,我们表明大环的亲脂性和 PAMPA 通透性可以得到极大的改善。总的来说,随着更多杂环的加入,通透性的变化并不是线性的,这突出了这类分子构象-性质关系的微妙之处。NMR 分析和分子动力学模拟提供了对添加杂环后结构影响的深入了解,现在这些框架可以作为药物发现的大环支架应用。

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