Peluso Paola, Dallocchio Roberto, Dessì Alessandro, Salgado Antonio, Chankvetadze Bezhan, Scriba Gerhard K E
Istituto di Chimica Biomolecolare, Consiglio Nazionale delle Ricerche, Traversa La Crucca, 3 - Regione Baldinca - Li Punti, 07100 Sassari, Italy.
Istituto di Chimica Biomolecolare, Consiglio Nazionale delle Ricerche, Traversa La Crucca, 3 - Regione Baldinca - Li Punti, 07100 Sassari, Italy.
Carbohydr Polym. 2024 Dec 15;346:122483. doi: 10.1016/j.carbpol.2024.122483. Epub 2024 Jul 14.
A computational study was performed to unravel mechanisms underlying capillary electrophoresis enantioseparations of daclatasvir and its (R,R,R,R)-enantiomer with native and methylated β-cyclodextrins (β-CDs) as chiral selectors. Considering the enantioseparation results as benchmark, the structures of β-CD and seven methylated β-CDs were optimized by quantum mechanics, and their topography and computed molecular properties were compared. Furthermore, the electron charge density distribution of the macrocycles was also evaluated by calculating the molecular electrostatic potential of pivotal regions of native and methylated β-CDs. The function of hydrogen bonds in the complexation process of daclatasvir and the CDs was derived from quantum mechanics analysis and confirmed by molecular dynamics, as orthogonal computational techniques. The presence of a round-shaped cavity in the CDs used as chiral selector appeared as a necessary requirement for the enantioseparation of daclatasvir and its (R,R,R,R)-enantiomer. In this regard, it was confirmed that the round shape of the CDs is sustained by hydrogen bonds formed between adjacent glucopyranose units and blocking rotation of the linking glycosidic bonds. The presence of hydroxy groups at the 6-position of the glucopyranose units and the concurrent absence of hydroxy groups at the 2-position were evidenced as important factors for enantioseparation of daclatasvir and its enantiomer by methylated β-CDs.
进行了一项计算研究,以揭示以天然和甲基化β-环糊精(β-CD)作为手性选择剂时,达卡他韦及其(R,R,R,R)-对映体在毛细管电泳对映体分离中的潜在机制。以对映体分离结果为基准,通过量子力学对β-CD和七种甲基化β-CD的结构进行了优化,并比较了它们的拓扑结构和计算得到的分子性质。此外,还通过计算天然和甲基化β-CD关键区域的分子静电势,评估了大环的电子电荷密度分布。达卡他韦与环糊精络合过程中氢键的作用源自量子力学分析,并通过分子动力学得到证实,这两种方法是相互补充的计算技术。用作手性选择剂的环糊精中存在圆形空腔似乎是达卡他韦及其(R,R,R,R)-对映体对映体分离的必要条件。在这方面,证实了环糊精的圆形形状是由相邻吡喃葡萄糖单元之间形成的氢键维持的,并且阻止了连接糖苷键的旋转。吡喃葡萄糖单元6位上羟基的存在以及2位上羟基的同时缺失被证明是甲基化β-CD对达卡他韦及其对映体进行对映体分离的重要因素。