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Polyacrylamide hydrogel encapsulated E. coli expressing metal-sensing green fluorescent protein as a potential tool for copper ion determination

机译:聚丙烯酰胺水凝胶封装的大肠杆菌表达金属感测绿色荧光蛋白可作为测定铜离子的潜在工具

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摘要

A simple, inexpensive and field applicable metal determination system would be a powerful tool for the efficient control of metal ion contamination in various sources e.g. drinking-water, water reservoir and waste discharges. In this study, we developed a cell-based metal sensor for specific and real-time detection of copper ions. E. coli expressing metal-sensing green fluorescent protein (designated as TG1/(CG)6GFP and TG1/H6CdBP4GFP) were constructed and served as a metal analytical system. Copper ions were found to exert a fluorescence quenching effect, while zinc and cadmium ions caused minor fluorescence enhancement in the engineered bacterial suspension. To construct a user-friendly and reagentless metal detection system, TG1/H6CdBP4GFP and TG1/(CG)6GFP were encapsulated in polyacrylamide hydrogels that were subsequently immobilized on an optical fiber equipped with a fluorescence detection module. The sensor could be applied to measure metal ions by simply dipping the encapsulated bacteria into a metal solution and monitoring fluorescence changes in real time as a function of the metal concentration in solution. The sensor system demonstrated high specificity toward copper ions. The fluorescence intensities of the encapsulated TG1/(CG)6GFP and TG1/H6CdBP4GFP were quenched by approximately 70 % and 80 % by a high-dose of copper ions (50 mM), respectively. The level of fluorescence quenching exhibited a direct correlation with the copper concentration, with a linear correlation coefficient (r) of 0.99. The cell-based metal sensor was able to efficiently monitor copper concentrations ranging between 5 M and 50 mM, encompassing the maximum allowed copper contamination in drinking water (31.15 M) established by the WHO. Furthermore, the cell-based metal sensor could undergo prolonged storage for at least 2 weeks without significantly influencing the copper sensitivity.
机译:一个简单,便宜且可在现场应用的金属测定系统将是有效控制各种来源(如金属)中金属离子污染的有力工具。饮用水,水库和废物排放。在这项研究中,我们开发了一种基于电池的金属传感器,用于特定且实时的铜离子检测。构建了表达金属敏感绿色荧光蛋白(分别命名为TG1 /(CG)6GFP和TG1 / H6CdBP4GFP)的大肠杆菌,并将其用作金属分析系统。发现铜离子起荧光猝灭作用,而锌和镉离子在工程菌悬液中引起较小的荧光增强。为了构建用户友好的无试剂金属检测系统,将TG1 / H6CdBP4GFP和TG1 /(CG)6GFP封装在聚丙烯酰胺水凝胶中,然后将其固定在配备有荧光检测模块的光纤上。该传感器可通过简单地将封装的细菌浸入金属溶液中并实时监测荧光随溶液中金属浓度的变化而用于测量金属离子。该传感器系统显示出对铜离子的高度特异性。封装的TG1 /(CG)6GFP和TG1 / H6CdBP4GFP的荧光强度分别被高剂量的铜离子(50 mM)淬灭了约70%和80%。荧光猝灭的水平显示出与铜浓度的直接相关,线性相关系数(r)为0.99。基于电池的金属传感器能够有效地监测5 M至50 mM之间的铜浓度,其中包括WHO所确定的饮用水中允许的最大铜污染(31.15 M)。此外,基于电池的金属传感器可以长时间存储至少2周,而不会显着影响铜的灵敏度。

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