Cheu Catherine, Yang Lin, Nieh Mu-Ping
Polymer Program, Institute of Materials Science, University of Connecticut, Storrs, CT 06269, USA.
Brookhaven National Laboratory, PO Box 5000, Upton, NY 11973-5000, USA.
Chem Phys Lipids. 2020 Sep;231:104945. doi: 10.1016/j.chemphyslip.2020.104945. Epub 2020 Jul 1.
The internal profile across the bilayer reveals important structural information regarding the crystallinity of acyl chains or the positions of encapsulated species. Here, we demonstrate that a simple five-layer-core-shell discoidal model can be employed to best fit the extended-q small angle X-ray scattering (SAXS) data and resolve the bilayer internal structure (with sub-nanometer resolution) of a nanoscale discoidal system comprised of a mixture of long- and short- chain lipids (known as "bicelles"). In contrast to the traditional core-shell discoidal model, the detailed structure in the hydrophobic core such as the methylene and methyl groups can be distinguished via this model. The refined model is validated by the SAXS data of bicelles whose electron scattering length density of the hydrophobic core is adjusted by the addition of a long-chain lipid with a fluorine-end group. The higher resolution of the bilayer internal structure can be employed to advance our understanding of the interaction and conformation of the membrane and associated molecules, such as membrane-associated proteins and locations of entrapped species in the lipid nanoparticles.
跨双层的内部轮廓揭示了有关酰基链结晶度或包封物质位置的重要结构信息。在此,我们证明了一个简单的五层核壳盘状模型可用于最佳拟合扩展q小角X射线散射(SAXS)数据,并解析由长链和短链脂质混合物(称为“双分子层”)组成的纳米级盘状系统的双层内部结构(具有亚纳米分辨率)。与传统的核壳盘状模型不同,通过该模型可以区分疏水核中的详细结构,如亚甲基和甲基。通过添加具有氟端基的长链脂质来调节疏水核的电子散射长度密度的双分子层的SAXS数据验证了改进后的模型。双层内部结构的更高分辨率可用于增进我们对膜与相关分子(如膜相关蛋白和脂质纳米颗粒中包封物质的位置)之间相互作用和构象的理解。