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具有荧光pH色离子载体和可调动态范围的微型钠选择性离子交换光极

Miniature sodium-selective ion-exchange optode with fluorescent pH chromoionophores and tunable dynamic range.

作者信息

Shortreed M, Bakker E, Kopelman R

机构信息

Department of Chemistry, University of Michigan, Ann Arbor 48109-1055, USA.

出版信息

Anal Chem. 1996 Aug 1;68(15):2656-62. doi: 10.1021/ac960035a.

Abstract

An extension into the fluorescence mode of ion-exchange optodes is described, allowing miniaturization and its concomitant benefits. A micrometer-size, fluorescent fiber-optic sodium sensor is described, based on a highly sodium-selective, crown ether-capped calix[4]arene ionophore, capable of ratiometric operation. Three sensor configurations are given, employing different lipophilic, fluorescent pH chromoionophores (Nile Blue derivatives), demonstrating the ability to improve the detection limit and tune the dynamic range to the desired region of interest. Two of the sensors are of special interest in that their working ranges lie within those desired for measuring intracellular cytosolic or blood levels of sodium at the respective physiological pH. These optodes have excellent sodium selectivity, with other physiologically relevant cations (e.g., potassium, calcium, and magnesium) being highly discriminated. Three simple mathematical relationships are given for the three experimentally used fluorescent signal mechanisms (intensity, intensity ratios, and inner-filter or energy transfer effects), permitting visualization on a single graph and enabling direct comparison of the different sensors' optical responses on a common platform. Finally, these optodes measure the sample's sodium activity, rather than the concentration, provided that the sample's pH is measured simultaneously by another sensor, such as a glass electrode.

摘要

本文描述了离子交换光极向荧光模式的扩展,实现了小型化及其带来的诸多益处。文中介绍了一种基于高度钠选择性的冠醚封端杯[4]芳烃离子载体的微米级荧光光纤钠传感器,该传感器能够进行比率操作。给出了三种传感器配置,采用了不同的亲脂性荧光pH色离子载体(尼罗蓝衍生物),展示了改善检测限并将动态范围调整到所需感兴趣区域的能力。其中两种传感器特别值得关注,因为它们的工作范围处于在各自生理pH下测量细胞内胞质或血液中钠水平所需的范围内。这些光极具有出色的钠选择性,能高度区分其他生理相关阳离子(如钾、钙和镁)。针对三种实验中使用的荧光信号机制(强度、强度比以及内滤光或能量转移效应)给出了三个简单的数学关系,可在单个图表上进行可视化,并能在通用平台上直接比较不同传感器的光学响应。最后,只要通过另一个传感器(如玻璃电极)同时测量样品的pH值,这些光极就能测量样品的钠活度而非浓度。

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