范德瓦尔斯力
化学
氢键
分子动力学
分子
植物甾醇
结晶学
非共价相互作用
对接(动物)
化学物理
有机化学
计算化学
色谱法
医学
护理部
作者
Γεώργιος Δάλκας,Andrew B. Matheson,H. Vass,A. Gromov,Gareth O. Lloyd,Vasileios Koutsos,Paul S. Clegg,Stephen R. Euston
出处
期刊:Langmuir
[American Chemical Society]
日期:2018-07-02
卷期号:34 (29): 8629-8638
被引量:36
标识
DOI:10.1021/acs.langmuir.8b01208
摘要
In this work, we have employed docking and atomistic molecular dynamics (MD) simulations supported by complementary experiments using atomic force microscopy, rheology, and spectroscopy to investigate the self-assembled structure of β-sitosterol and γ-oryzanol molecules into cylindrical tubules in a nonaqueous solvent. Docking models of several phytosterols, including sitosterol, with oryzanol and other sterol esters demonstrate that for systems to form tubules, the phytosterol sterane group must be stacked in a wedge shape with the ester sterane group and a hydrogen bond must form between the hydroxyl group of the phytosterol and the carbonyl group of the ester. MD of the self-assembled structure were initiated with the molecules in a roughly cylindrical configuration, as suggested from previous experimental studies, and the configurations were found to be stable during 50 ns simulations. We performed MD simulations of two tubules in proximity to better understand the aggregation of these fibrils and how the fibrils interact in order to stick together. We found that an interfibril network of noncovalent bonds, in particular van der Waals and π–π contacts, which is formed between the ferulic acid groups of oryzanol through the hydroxyl, methoxy, and aromatic groups, is responsible for the surface-to-surface interactions between fibrils; an observation supported by molecular spectroscopy. We believe that these interactions are of primary importance in creating a strong organogel network.
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