分子内力
化学
溶解度
氢键
细胞通透性
磁导率
酰胺
水溶液
分子
结晶学
立体化学
化学位移
核磁共振波谱
系列(地层学)
线性关系
分子构象
作者
Mohit Tyagi,Vasanthanathan Poongavanam,Stefanie Zich,Marika Lindhagen,Ioannis Asproudis,Okky Dwichandra Putra,Jie Yang,Zackary J. R. Ashworth,A Guadagni,Luca J. Hagemeyer,Alessandro Oliva,Peter Sjö,Stefan Schießer,Jan Kihlberg
标识
DOI:10.1021/acs.jmedchem.6c00830
摘要
High Resolution Image Download MS PowerPoint Slide Macrocycles are a highly interesting modality to modulate difficult-to-drug targets, but often reside in chemical space where obtaining sufficient cell permeability and solubility is challenging. We have determined permeability across Caco-2 cells, aqueous solubility and log D for four series of semipeptidic macrocycles and one series of linear matched molecular pairs. By using X-ray crystallography, NMR spectroscopy, and computational chemistry, unexpected permeability differences between series and matched pairs were explained by differences in conformational preferences that determine the formation of intramolecular interactions. Macrocycles that formed intramolecular NH–π interactions and hydrogen bonds were more permeable than matched pairs unable to form such interactions. The elevated permeability of linear compounds was concluded to result from their greater conformational flexibility, allowing them to shield amide bonds and expose nonpolar groups to a greater extent than their macrocyclic matched pairs. Solubility was less dependent on specific intramolecular interactions and was predominantly low at log D >2.5.
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