Kepplinger Christian, Höfer Ines, Steinem Claudia
Institute for Organic and Biomolecular Chemistry, University of Göttingen, Tammannstr. 2, 37077 Göttingen, Germany.
Chem Phys Lipids. 2009 Aug;160(2):109-13. doi: 10.1016/j.chemphyslip.2009.05.001. Epub 2009 May 14.
Nano-black lipid membranes (nano-BLMs) were obtained by functionalization of highly ordered porous alumina substrates with an average pore diameter of 60nm based on a self-assembled alkanethiol submonolayer followed by spreading of 1,2-diphytanoyl-sn-glycero-3-phosphocholine dissolved in n-decane on the hydrophobic substrate. By means of impedance spectroscopy, we analyzed the influence of the self-assembled alkanethiol submonolayer on the electrical properties of the nano-BLMs as well as their long-term stability. We were able to stably integrate nano-BLMs into a flow through system, which allowed us to readily exchange buffer solutions several times and accounts for mass transport phenomena. The ionophore valinomycin was successfully inserted into nano-BLMs and its transport activity monitored as a function of different potassium and sodium ion concentrations reflecting the specificity of valinomycin for potassium ions.
通过基于自组装链烷硫醇亚单层对平均孔径为60nm的高度有序多孔氧化铝基底进行功能化,随后将溶解于正癸烷中的1,2 - 二植酰 - sn - 甘油 - 3 - 磷酸胆碱铺展在疏水基底上,从而获得纳米黑色脂质膜(nano - BLMs)。借助阻抗谱,我们分析了自组装链烷硫醇亚单层对纳米黑色脂质膜电学性质及其长期稳定性的影响。我们能够将纳米黑色脂质膜稳定地整合到流通系统中,这使我们能够轻松地多次更换缓冲溶液,并考虑质量传输现象。离子载体缬氨霉素成功插入纳米黑色脂质膜中,并监测其转运活性随不同钾离子和钠离子浓度的变化,这反映了缬氨霉素对钾离子的特异性。