ManickamAchari Vijayan, Bryce Richard A, Hashim Rauzah
Department of Chemistry, University of Malaya, Kuala Lumpur, Malaysia; Kavli Institute of Theoretical Physics China, Chinese Academy of Sciences, Beijing, China.
Manchester Pharmacy School, University of Manchester, Manchester, United Kingdom.
PLoS One. 2014 Jun 30;9(6):e101110. doi: 10.1371/journal.pone.0101110. eCollection 2014.
The rational design of a glycolipid application (e.g. drug delivery) with a tailored property depends on the detailed understanding of its structure and dynamics. Because of the complexity of sugar stereochemistry, we have undertaken a simulation study on the conformational dynamics of a set of synthetic glycosides with different sugar groups and chain design, namely dodecyl β-maltoside, dodecyl β-cellobioside, dodecyl β-isomaltoside and a C12C10 branched β-maltoside under anhydrous conditions. We examined the chain structure in detail, including the chain packing, gauche/trans conformations and chain tilting. In addition, we also investigated the rotational dynamics of the headgroup and alkyl chains. Monoalkylated glycosides possess a small amount of gauche conformers (∼20%) in the hydrophobic region of the lamellar crystal (LC) phase. In contrast, the branched chain glycolipid in the fluid Lα phase has a high gauche population of up to ∼40%. Rotational diffusion analysis reveals that the carbons closest to the headgroup have the highest correlation times. Furthermore, its value depends on sugar type, where the rotational dynamics of an isomaltose was found to be 11-15% and more restrained near the sugar, possibly due to the chain disorder and partial inter-digitation compared to the other monoalkylated lipids. Intriguingly, the present simulation demonstrates the chain from the branched glycolipid bilayer has the ability to enter into the hydrophilic region. This interesting feature of the anhydrous glycolipid bilayer simulation appears to arise from a combination of lipid crowding and the amphoteric nature of the sugar headgroups.
具有定制特性的糖脂应用(如药物递送)的合理设计取决于对其结构和动力学的详细了解。由于糖立体化学的复杂性,我们对一组具有不同糖基和链设计的合成糖苷(即十二烷基β - 麦芽糖苷、十二烷基β - 纤维二糖苷、十二烷基β - 异麦芽糖苷和一种C12C10支链β - 麦芽糖苷)在无水条件下的构象动力学进行了模拟研究。我们详细研究了链结构,包括链堆积、gauche/反式构象和链倾斜。此外,我们还研究了头基和烷基链的旋转动力学。单烷基化糖苷在层状晶体(LC)相的疏水区域中具有少量的gauche构象体(约20%)。相比之下,流体Lα相中的支链糖脂具有高达约40%的高gauche构象比例。旋转扩散分析表明,最靠近头基的碳原子具有最长的相关时间。此外,其值取决于糖的类型,其中发现异麦芽糖的旋转动力学在糖附近受到11 - 15%或更多的限制,这可能是由于与其他单烷基化脂质相比,链的无序性和部分相互交错。有趣的是,目前的模拟表明支链糖脂双层中的链能够进入亲水区域。无水糖脂双层模拟的这一有趣特征似乎源于脂质拥挤和糖头基的两性性质的结合。