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Structural and conformational determinants of macrocycle cell permeability

机译:大环细胞通透性的结构和构象决定因素

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摘要

Macrocycles are of increasing interest as chemical probes and drugs for intractable targets like protein-protein interactions, but the determinants of their cell permeability and oral absorption are poorly understood. To enable rational design of cell-permeable macrocycles, we generated an extensive data set under consistent experimental conditions for more than 200 nonpeptidic, de novo-designed macrocycles from the Broad Institute's diversity-oriented screening collection. This revealed how specific functional groups, substituents and molecular properties impact cell permeability. Analysis of energy-minimized structures for stereo- and regioisomeric sets provided fundamental insight into how dynamic, intramolecular interactions in the 3D conformations of macrocycles may be linked to physicochemical properties and permeability. Combined use of quantitative structure-permeability modeling and the procedure for conformational analysis now, for the first time, provides chemists with a rational approach to design cell-permeable non-peptidic macrocycles with potential for oral absorption.
机译:大环作为蛋白质或蛋白质相互作用等顽固靶标的化学探针和药物越来越引起人们的兴趣,但人们对它们的细胞渗透性和口服吸收的决定因素了解甚少。为了能够合理设计可渗透细胞的大环化合物,我们在一致的实验条件下,从Broad Institute面向多样性的筛选集合中,为200多种非肽类从头设计的大环化合物生成了广泛的数据集。这揭示了特定的官能团,取代基和分子性质如何影响细胞通透性。对立体异构体和区域异构体的能量最小化结构的分析提供了有关大环的3D构象中的动态分子内相互作用如何与理化性质和渗透性关联的基本见识。现在,结合使用定量结构-渗透性建模和构象分析程序,第一次为化学家提供了一种合理的方法来设计具有口服吸收潜力的细胞可渗透的非肽类大环化合物。

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