School of Chemical Sciences, National Centre for Sensor Research, Dublin City University, Dublin 9, Ireland.
School of Chemical Sciences, National Centre for Sensor Research, Dublin City University, Dublin 9, Ireland.
Bioelectrochemistry. 2016 Dec;112:16-23. doi: 10.1016/j.bioelechem.2016.07.002. Epub 2016 Jul 7.
Microcavity supported lipid bilayers, MSLBs, were applied to an electrochemical investigation of ionophore mediated ion transport. The arrays comprise of a 1cm(2) gold electrode imprinted with an ordered array of uniform spherical-cap pores of 2.8μm diameter prepared by gold electrodeposition through polystyrene templating spheres. The pores were pre-filled with aqueous buffer prior to Langmuir-Blodgett assembly of a 1,2-dioleoyl-sn-glycero-3-phosphocholine bilayer. Fluorescence lifetime correlation spectroscopy enabled by the micron dimensions of the pores permitted study of lipid diffusion across single apertures, yielding a diffusion coefficient of 12.58±1.28μm(2)s(-1) and anomalous exponent of 1.03±0.02, consistent with Brownian motion. From FLCS, the MSLBs were stable over 3days and electrochemical impedance spectroscopy of the membrane with and without ionic gradient over experimental windows of 6h showed excellent stability. Two ionophores were studied at the MSLBs; Valinomycin, a K(+) uniporter and Nigericin, a K(+)/H(+) antiporter. Ionophore reconstituted into the DOPC bilayer resulted in a decrease and increase in membrane resistance and capacitance respectively. Significant increases in Valinomycin and Nigericin activity were observed, reflected in large decreases in membrane resistance when K(+) was present in the contacting buffer and in the presence of H(+) ionic gradient across the membrane respectively.
微腔支撑的脂质双层(MSLBs)被应用于电化学研究离子载体介导的离子传输。该阵列由一个 1cm(2) 的金电极组成,电极上印有一种有序排列的、直径为 2.8μm 的均匀球形帽孔,这些孔是通过在聚苯乙烯模板球上进行金电沉积制备的。在单分子层脂双层的朗缪尔-布洛杰特组装之前,这些孔被预先填充水缓冲液。由于孔的微米尺寸,荧光寿命相关光谱学能够研究脂质跨单个孔的扩散,得到扩散系数为 12.58±1.28μm(2)s(-1)和异常指数为 1.03±0.02,与布朗运动一致。从 FLCS 来看,MSLBs 在 3 天内保持稳定,并且在实验窗口为 6 小时的情况下,对具有和不具有离子梯度的膜进行电化学阻抗谱测量,显示出极好的稳定性。在 MSLBs 上研究了两种离子载体;缬氨霉素,一种 K(+)单载体和尼可霉素,一种 K(+)/H(+)反向载体。将离子载体重新组装到 DOPC 双层中,分别导致膜电阻和电容减小和增大。当接触缓冲液中存在 K(+)时,以及当 H(+)离子梯度跨膜存在时,观察到缬氨霉素和尼可霉素活性显著增加,这反映在膜电阻的大幅降低上。