Institute of Biochemistry, Vilnius University, Vilnius LT-08662, Lithuania.
Langmuir. 2013 Jul 9;29(27):8645-56. doi: 10.1021/la401132c. Epub 2013 Jun 26.
The self-assembled monolayers (SAMs) of new lipidic anchor molecule HC18 [Z-20-(Z-octadec-9-enyloxy)-3,6,9,12,15,18,22-heptaoxatetracont-31-ene-1-thiol] and mixed HC18/β-mercaptoethanol (βME) SAMs were studied by spectroscopic ellipsometry, contact angle measurements, reflection-absorption infrared spectroscopy, and electrochemical impedance spectroscopy (EIS) and were evaluated in tethered bilayer lipid membranes (tBLMs). Our data indicate that HC18, containing a double bond in the alkyl segments, forms highly disordered SAMs up to anchor/βME molar fraction ratios of 80/20 and result in tBLMs that exhibit higher lipid diffusion coefficients relative to those of previous anchor compounds with saturated alkyl chains, as determined by fluorescence correlation spectroscopy. EIS data shows the HC18 tBLMs, completed by rapid solvent exchange or vesicle fusion, form more easily than with saturated lipidic anchors, exhibit excellent electrical insulating properties indicating low defect densities, and readily incorporate the pore-forming toxin α-hemolysin. Neutron reflectivity measurements on HC18 tBLMs confirm the formation of complete tBLMs, even at low tether compositions and high ionic lipid compositions. Our data indicate that HC18 results in tBLMs with improved physical properties for the incorporation of integral membrane proteins (IMPs) and that 80% HC18 tBLMs appear to be optimal for practical applications such as biosensors where high electrical insulation and IMP/peptide reconstitution are imperative.
新型脂类锚定分子 HC18 [Z-20-(Z-十八烯氧基)-3,6,9,12,15,18,22-七氧杂二十六烷-31-烯-1-硫醇]的自组装单层(SAMs)和混合 HC18/β-巯基乙醇(βME)SAMs 通过光谱椭圆光度法、接触角测量、反射吸收红外光谱和电化学阻抗谱(EIS)进行了研究,并在固定双层脂质膜(tBLM)中进行了评估。我们的数据表明,含有双键的烷基段的 HC18 可以形成高度无序的 SAM,直至锚定/βME 摩尔分数比为 80/20,并导致 tBLM 的脂质扩散系数高于以前具有饱和烷基链的锚定化合物,这是通过荧光相关光谱法确定的。EIS 数据表明,HC18 tBLM 通过快速溶剂交换或囊泡融合形成更容易,与饱和脂类锚定相比,具有更好的电绝缘性能,表明缺陷密度低,并且容易掺入孔形成毒素α-溶血素。HC18 tBLM 的中子反射测量证实了完整 tBLM 的形成,即使在低连接物组成和高离子脂质组成下也是如此。我们的数据表明,HC18 导致 tBLM 的物理性质得到改善,可用于整合膜蛋白(IMP)的掺入,并且 80%的 HC18 tBLM 似乎对于需要高电绝缘性和 IMP/肽重组的实际应用(如生物传感器)是最佳的。