化学
连接器
生物物理学
小脑
分子内力
细胞通透性
立体化学
组合化学
生物化学
泛素
泛素连接酶
计算机科学
生物
基因
操作系统
作者
Vasanthanathan Poongavanam,Yoseph Atilaw,Stephan Siegel,Anja Giese,Lutz Lehmann,Daniel Meibom,Máté Erdélyi,Jan Kihlberg
标识
DOI:10.1021/acs.jmedchem.2c00877
摘要
Proteolysis-targeting chimeras (PROTACs) must be cell permeable to reach their target proteins. This is challenging as the bivalent structure of PROTACs puts them in chemical space at, or beyond, the outer limits of oral druggable space. We used NMR spectroscopy and molecular dynamics (MD) simulations independently to gain insights into the origin of the differences in cell permeability displayed by three flexible cereblon PROTACs having closely related structures. Both methods revealed that the propensity of the PROTACs to adopt folded conformations with a low solvent-accessible 3D polar surface area in an apolar environment is correlated to high cell permeability. The chemical nature and the flexibility of the linker were essential for the PROTACs to populate folded conformations stabilized by intramolecular hydrogen bonds, π–π interactions, and van der Waals interactions. We conclude that MD simulations may be used for the prospective ranking of cell permeability in the design of cereblon PROTACs.
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