Department of Chemistry and Biochemistry, University of California, Santa Barbara, California 93106, United States.
Molecular Engineering Laboratory, Department of Applied Science and Technology, Politecnico di Torino, 24 corso Duca degli Abruzzi, Torino 10129, Italy.
J Phys Chem B. 2021 Jul 15;125(27):7397-7405. doi: 10.1021/acs.jpcb.1c04033. Epub 2021 Jul 1.
Cyclodextrins are cyclic oligosaccharides, widely used as drug carriers, solubilizers, and excipients. Among cyclodextrins, the functionalized derivative known as hydroxypropyl-β-cyclodextrin (HPβCD) offers several advantages due to its unique structural features. Its optimal use in pharmaceutical and medical applications would benefit from a molecular-level understanding of its behavior, as can be offered by molecular dynamics simulations. Here, we propose a set of parameters for all-atom simulations of HPβCD, based on the ADD force field for sugars developed in our group, and compare it to the original CHARMM36 description. Using Kirkwood-Buff integrals of binary HPβCD-water mixtures as target experimental data, we show that the ADD-based description results in a considerably improved prediction of HPβCD self-association and interaction with water. We then use the new set of parameters to characterize the behavior of HPβCD toward the different amino acids. We observe pronounced interactions of HPβCD with both polar and nonpolar moieties, with a special preference for the aromatic rings of tyrosine, phenylalanine, and tryptophan. Interestingly, our simulations further highlight a preferential orientation of HPβCD's hydrophobic cavity toward the backbone atoms of amino acids, which, coupled with a favorable interaction of HPβCD with the peptide backbone, suggest a propensity for HPβCD to denature proteins.
环糊精是环状低聚糖,广泛用作药物载体、增溶剂和赋形剂。在环糊精中,功能化衍生物羟丙基-β-环糊精(HPβCD)由于其独特的结构特征而具有许多优势。为了在药物和医疗应用中最佳使用 HPβCD,需要从分子动力学模拟提供的角度来理解其行为。在这里,我们根据我们小组开发的用于糖的 ADD 力场,为 HPβCD 的全原子模拟提出了一组参数,并将其与原始 CHARMM36 描述进行了比较。使用二元 HPβCD-水混合物的 Kirkwood-Buff 积分作为目标实验数据,我们表明,基于 ADD 的描述可大大改善 HPβCD 自组装和与水相互作用的预测。然后,我们使用新的参数集来描述 HPβCD 对不同氨基酸的行为。我们观察到 HPβCD 与极性和非极性部分之间存在明显的相互作用,对酪氨酸、苯丙氨酸和色氨酸的芳环具有特殊偏好。有趣的是,我们的模拟进一步强调了 HPβCD 的疏水性空腔相对于氨基酸的骨架原子的优先取向,这与 HPβCD 与肽骨架的有利相互作用相结合,表明 HPβCD 有使蛋白质变性的倾向。