Nanomaterials Research Institute, Department of Materials and Chemistry, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba Central 5, 1-1-1 Higashi, Tsukuba, Ibaraki, 305-8565, Japan.
Department of Chemistry, Faculty of Science, Tokyo University of Science, 1-3 Kagurazaka, Shinjuku-ku, Tokyo, 162-8601, Japan.
Small. 2018 Apr;14(15):e1800030. doi: 10.1002/smll.201800030. Epub 2018 Mar 13.
A series of nanotubes with a dense layer of short poly(ethylene glycol) (PEG) chains on the inner surface are prepared by means of a coassembly process using glycolipids and PEG derivatives. Dehydration of the PEG chains by heating increases the hydrophobicity of the nanotube channel and fluorescent-dye-labeled amino acids are extracted from bulk solution. Rehydration of the PEG chains by cooling results in back-extraction of the amino acids into the bulk solution. Because of the supramolecular chirality of the nanotubes, amino acid enantiomers can be separated in the back-extraction procedure, which is detectable with the naked eye as a change in fluorescence as the amino acids are released from the nanotubes. The efficiency and selectivity of the chiral separation are enhanced by tuning the chemical features and inner diameter of the nanotube channels. For example, compared with wide nanotube channels (8 nm), narrow nanotube channels (4 nm) provide more effective electrostatic attraction and hydrogen bond interaction environments for the transporting amino acids. Introduction of branched alkyl chains to the inner surface of the nanotubes enables chiral separation of peptides containing hydrophobic amino acids. The system described here provides a simple, quick, and on-site chiral separation in biological and medical fields.
通过使用糖脂和 PEG 衍生物的共组装过程,制备了一系列在内表面具有密集的短聚乙二醇 (PEG) 链层的纳米管。通过加热使 PEG 链脱水会增加纳米管通道的疏水性,并从体相溶液中提取荧光染料标记的氨基酸。冷却使 PEG 链重新水合会导致氨基酸重新进入体相溶液中。由于纳米管的超分子手性,可以在反萃取过程中分离氨基酸对,当氨基酸从纳米管中释放出来时,这可以用肉眼检测到荧光的变化来检测。通过调整纳米管通道的化学特征和内径,可以提高手性分离的效率和选择性。例如,与宽纳米管通道(8nm)相比,窄纳米管通道(4nm)为运输氨基酸提供了更有效的静电吸引和氢键相互作用环境。在纳米管的内表面引入支链烷基链,可以实现含有疏水性氨基酸的肽的手性分离。这里描述的系统为生物和医学领域提供了一种简单、快速和现场的手性分离方法。