Glucose oxidase nanocapsule sensor and preparation and application thereof
A technology of glucose oxidase and nanocapsules, which is applied in the field of biosensors and analysis and detection, and can solve the problems of undiscovered enzyme molecule nanocapsules
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Embodiment 1
[0046] Preparation of Glucose Oxidase Molecular Nanocapsules (nGOx)
[0047] Glucose oxidase molecular nanocapsules (nGOx) can be prepared by methods such as in situ free radical polymerization, and its preparation includes two typical processes. figure 1 A typical flow chart for the preparation of glucose oxidase molecular nanocapsules is given in . First, in the first step, in a buffered saline solution (or organic solvent) of glucose oxidase at an appropriate concentration, the organic molecule monomer (such as N-propylene) with a double bond (alkenyl) is absorbed by adsorption, covalent cross-linking, etc. base succinimide) to the surface of the enzyme molecule to make the enzyme a single molecule of enzyme with a polymerizable group (double bond) (the enzyme wrapped by small molecules is distributed in a single molecule in the solution); then in the second step, add at least An organic monomer molecule with a double bond (such as acrylamide, etc.) and / or a cross-linking...
Embodiment 2
[0051] Fabrication of nGOx-based biosensors
[0052] In this study, bio(nano)sensors (modified electrodes) based on nGOx and GOx were prepared by the drop coating method, and the typical preparation scheme is as follows: figure 2 shown. figure 2 The scenario presented is one of many possible scenarios and is only an example. In actual operation, various procedures, methods and components can be used to prepare biosensors. For example, a mixed solution of various components can be used directly for the preparation of modified electrodes (without the need for figure 2 The modified electrode is also prepared by a step-by-step method), or the modified electrode is prepared by screen printing, 3D printing, etc.; the electrode substrate can sample many materials such as glassy carbon electrodes, glass electrodes, metal electrodes, and test paper electrodes; the sampled nanomaterials play a role To improve the sensitivity, you can choose many nanomaterials such as ordinary carbo...
Embodiment 3
[0056] Structure and morphology characterization of nGOx
[0057] The particle size distribution and zeta potential (zeta potential) of nGOx and native GOx molecules were measured by dynamic light scattering (DLS) method. The natural GOx molecule presents a negative charge of −9.6 mV, and the particle size distribution is centered at about 10.1 nm. The average particle size distribution of the as-prepared nGOx molecules was 15.6 nm, confirming the successful formation of a thin polymer protective layer with a thickness of about 2–3 nm around each GOx molecule ( image 3 A). The nGOx molecules exhibit less negative charge of −6.0 mV due to the encapsulation of the polymer layer.
[0058] image 3 B The transmission electron micrograph (TEM) shows that the nGOx nanocapsules have a spherical shape, and the average particle size is about 16nm, which is consistent with the test results of the DLS method. also, image 3 The UV-vis spectra of nGOx and GOx are given in C. The GO...
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