Glass nanopore sensor for detecting. OH and preparation and application of glass nanopore sensor

A nanopore sensor and nanopore technology, which can be used in instruments, measuring devices, scientific instruments, etc., can solve the problems of high reactivity, low detection selectivity, and it is difficult to achieve substantial breakthroughs in detection technology, so as to achieve a wide range of applications and improve The effect of preparation efficiency

Active Publication Date: 2020-06-12
EAST CHINA NORMAL UNIVERSITY
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

However, OH has high reactivity and poor stability (the average lifespan is only 10 -6 s), the steady-state concentration in the cell is extremely low, and there are also interferences from various oxides and antioxidants in the cell
[0004] Traditional methods for detecting OH mainly include electron spin resonance, chromatography, and fluorescence methods, but few of them can achieve non-destructive detection in a sin

Method used

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  • Glass nanopore sensor for detecting. OH and preparation and application of glass nanopore sensor
  • Glass nanopore sensor for detecting. OH and preparation and application of glass nanopore sensor
  • Glass nanopore sensor for detecting. OH and preparation and application of glass nanopore sensor

Examples

Experimental program
Comparison scheme
Effect test

Embodiment 1

[0069] Embodiment 1 Utilizes the Fenton reaction to detect the OH produced in the aqueous solution

[0070] (1) Preparation of glass nanoporous sensors

[0071] Use drawing instrument to draw out aperture 70nm, the glass conical nanopore of conical nanopore angle 5 °, inject the ethanol solution (V of 8mmol / L chloroauric acid 氯金酸 :V 乙醇 =3:2) 10 μL, irradiated for 2 hours under a 254 nm ultraviolet lamp, washed the nanopore with ethanol, dried at room temperature, and baked at 100° C. for 1 hour, so that the gold film was firmly covered on the inner wall of the nanopore. Then configure 10 -2 mol / L ethanol solution of cysteamine hydrochloride, inject 10 μL into the nanopore, and let it stand at room temperature for 8 hours, so that the sulfhydryl group in the cysteamine molecule can bind to the gold film through the Au-S bond, and then wash with ethanol to remove excess or weakly bound cysteamine. Finally, take the protoporphyrin solution (10 -5 mol / L), (get commercially av...

Embodiment 2

[0077] Example 2 uses drugs to stimulate and inhibit cells, and detects OH in cells

[0078] (1) Preparation of glass nanoporous sensors

[0079] The preparation method is the same as in Example (1).

[0080] (2) Detection of OH in cells

[0081] Before detection, inject 10 into the glass nanopore sensor -4 mol / L Zn 2+ Solution, at room temperature (25°C±3°C), let it stand for 8 hours to remove unbound or weakly bound Zn 2+ solution and washed with distilled water. Then inject pH7.0 electrolyte solution (containing 0.1mol / L KCl, pH7.0, 10mmol / L HEPES buffer solution) into the hole.

[0082] RAW264.7 mouse mononuclear macrophages in cell culture medium (composition includes 10% bovine serum albumin, 100unit / mL penicillin, 100ug / mL streptomycin), 37 ℃, 5% CO 2 On the day before the test, the cells were transferred to a petri dish with a diameter of 35 mm and a height of 14 mm, allowing the cells to adhere and grow freely for 24 hours. Before the test, under a confocal mic...

Embodiment 3

[0086] Example 3 Non-destructive cell insertion experiment

[0087] (1) Preparation of glass nanoporous sensors

[0088] The preparation method is the same as in Example (1).

[0089] (2) Non-destructive cell insertion experiment

[0090] Before detection, inject 10 into the glass nanopore sensor -4 mol / L Zn 2+ Solution, at room temperature, let it stand for 8 hours, remove unbound or weakly bound Zn 2+ solution and washed with distilled water. Then inject pH7.0 electrolyte solution (containing 0.1mol / L KCl, pH7.0, 10mmol / L HEPES buffer solution) into the hole.

[0091] In this example, Helacell cells were used, and the culture method was the same as that of the mouse mononuclear macrophage RAW264.7 in Example 2. Before the experiment, the cells were stained with fluorescent dyes: Calcein-AM was used to stain live cells and PI was used to stain dead cells. Insert the glass nanopore sensor into the cell for 15 minutes and then take it out, and compare the changes in the ...

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Abstract

The invention belongs to the technical field of sensing detection of glass nanopores, and particularly relates to a glass nanopore sensor for detecting. OH, preparation of the glass nanopore sensor and an electrochemical analysis method based on an ion rectification principle. The method for preparing the nanopore sensor comprises the following steps: firstly drawing a glass conical nanopore by using a drawing instrument, uniformly plating a layer of gold film on the inner wall of the nanopore, and finally sequentially modifying cysteamine molecules and protoporphyrin molecules on the gold film through strong interaction and amide reaction of Au-S bonds, thereby finally obtaining the functionalized glass nanopore sensor. The invention is simple in technological process, expensive reagentsand large instruments are not needed, high-selectivity and high-sensitivity rapid response to. OH can be achieved in a complex system, and a portable and efficient detection platform and method designare provided for. OH detection in the fields of food safety, medical treatment and public health, environmental monitoring and the like.

Description

technical field [0001] The invention belongs to the technical field of sensing and detection of glass nanopores, and in particular relates to a glass nanopore sensor for detecting hydroxyl radicals (OH) and its preparation and an electrochemical analysis method for OH based on the principle of ion rectification. Background technique [0002] Glass nanopore is a nanoscale tip formed by drawing a glass capillary with a drawing device. The opening shape and pore size at the tip of the nanopore can be adjusted by setting different heating temperatures, speeds, delay times, and pulling force values ​​for the drawing device. parameters to adjust. Place the prepared nanopore in an electrochemical workstation to build a three-electrode system, apply a symmetrical voltage to the nanopore, and an asymmetric current will be obtained. This I-V curve is called ionic current rectification (ICR). It is found that the degree and direction of ion rectification depend on the surface charge d...

Claims

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Application Information

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IPC IPC(8): G01N27/36G01N27/327
CPCG01N27/3278G01N27/36
Inventor 陈文婷朱安伟施国跃
Owner EAST CHINA NORMAL UNIVERSITY
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