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Confocal Raman Microscopy for pH-Gradient Preconcentration and Quantitative Analyte Detection in Optically Trapped Phospholipid Vesicles

机译:共聚焦拉曼显微镜用于光学捕获的磷脂囊泡中的pH梯度预浓缩和定量分析物检测

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The ability of a vesicle membrane to preserve a pH gradient, while allowing for diffusion of neutral molecules across the phospholipid bilayer, can provide the isolation and preconcentration of ionizable compounds within the vesicle interior. In this work, confocal Raman microscopy is used to observe (in situ) the pH-gradient preconcentration of compounds into individual optically trapped vesicles that provide sub-femtoliter collectors for small-volume samples. The concentration of analyte accumulated in the vesicle interior is determined relative to a perchlorate-ion internal standard, preloaded into the vesicle along with a high-concentration buffer. As a guide to the experiments, a model for the transfer of analyte into the vesicle based on acid-base equilibria is developed to predict the concentration enrichment as a function of source-phase pH and analyte concentration. To test the concept, the accumulation of benzyldimethylamine (BDMA) was measured within individual 1 mu m phospholipid vesicles having a stable initial pH that is 7 units lower than the source phase. For low analyte concentrations in the source phase (100 nM), a concentration enrichment into the vesicle interior of (5.2 +/- 0.4) x 10(5) was observed, in agreement with the model predictions. Detection of BDMA from a 25 nM source-phase sample was demonstrated, a noteworthy result for an unenhanced Raman scattering measurement. The developed model accurately predicts the fall off of enrichment (and measurement sensitivity) at higher analyte concentrations, where the transfer of greater amounts of BDMA into the vesicle titrates the internal buffer and decreases the pH gradient. The predictable calibration response over 4 orders of magnitude in source-phase concentration makes it suitable for quantitative analysis of ionizable compounds from small-volume samples. The kinetics of analyte accumulation are relatively fast (similar to 15 min) and are consistent with the rate of transfer of a polar aromatic molecule across a gel-phase phospholipid membrane.
机译:囊泡膜保持pH梯度的能力,同时允许中性分子跨过磷脂双层扩散,可提供囊泡内部的可电离化合物的分离和预浓缩。在这项工作中,共聚焦拉曼显微镜用于(原位)观察化合物在各个光学捕获的囊泡中的pH梯度预浓缩,从而为小批量样品提供亚飞升收集器。相对于高氯酸根离子内标物,确定了囊泡内部累积的分析物浓度,该标样与高浓度缓冲液一起预装到囊泡中。作为实验的指导,开发了一种基于酸碱平衡将分析物转移到囊泡中的模型,以预测浓度富集与源相pH和分析物浓度的关系。为了验证这一概念,在单个的1μm磷脂囊泡中测量了苄基二甲基胺(BDMA)的积累,该囊泡的初始pH值比源相低7个单位。对于源相中的低分析物浓度(100 nM),与模型预测相符,观察到囊泡内部的浓度富集为(5.2 +/- 0.4)x 10(5)。演示了从25 nM源相样品中检测到BDMA,这对于未增强的拉曼散射测量结果值得关注。开发的模型可以准确地预测较高分析物浓度时富集(和测量灵敏度)的下降,在这种情况下,大量BDMA转移到囊泡中会滴定内部缓冲液并降低pH梯度。源相浓度在4个数量级上可预测的校准响应使其适合定量分析小体积样品中的可电离化合物。分析物积累的动力学相对较快(约15分钟),并且与极性芳族分子跨凝胶相磷脂膜的转移速率一致。

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