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不同纳米壳厚度的Ni@SiO2纳米管作为牛血红蛋白良好蛋白质分离载体的构建及生物学评价

Construction and Biological Evaluation of Different Nanoshell Thickness Ni@SiO2 Nanotubes as Good Protein Separation Carriers for Bovine Hemoglobin.

作者信息

Cheng Xiaomei, Liu Chang, Cai Yuanyuan, Li Xiangzi, Zhao Ruirui, Feng Yan, Wang Meifang

机构信息

Institute of Synthesis and Application of Medical Materials, School of Pharmacy, Wannan Medical College, Wuhu, 241002, China.

出版信息

Curr Med Chem. 2024 Aug 7. doi: 10.2174/0109298673307793240802062318.

Abstract

BACKGROUND

Nickel nanomaterials play an important role in biological applications, but they have high toxicity and poor biocompatibility. To overcome these defects, we coated the surface of Ni nanotubes with different thicknesses of SiO2 to reduce cytotoxicity, improve biocompatibility, and broaden their biological application value.

OBJECTIVE

This study aimed to construct Ni nanotubes with different thicknesses of SiO2 nanoshells; investigate the effects of silicon layer thickness, incubation time, and cell line category on the cytotoxicity of the as-synthesized materials, and evaluate the biocompatibility of the materials by biological enzymes. The Ni@SiO2-NH2 was selected for use as an adsorbent for the adsorption and purification of histidine-rich proteins, such as Bovine Hemoglobin (BHb).

METHODS

Magnetic Ni nanotubes were prepared by the template-chemical deposition method. A modified version of the Stöber process was used for the SiO2 coating of Ni@SiO2 nanotubes, and adjusted by changing the volume of TEOS for different thicknesses of SiO2 nanoshells.

RESULTS

Different cell lines containing tumor cells and normal cells were used in the toxicity experiment, which confirmed the low cytotoxicity and good biocompatibility of Ni@SiO2. To achieve high efficiency of immobilization and purification of histidine- rich proteins, Ni@SiO2-NH2 was obtained by introducing the amino functional group. The Ni@SiO2-NH2 was found to possess lower cytotoxicity and higher adsorption capacity compared to other synthesized materials. Besides, the Ni@SiO2-NH2 also exhibited good selectivity of histidine-rich proteins.

CONCLUSION

This work has not only provided ideas for reducing the cytotoxicity and improving the biocompatibility of biological nanomaterials, but also laid a foundation for subsequent biological applications.

摘要

背景

镍纳米材料在生物应用中发挥着重要作用,但它们具有高毒性和差的生物相容性。为了克服这些缺陷,我们用不同厚度的二氧化硅包覆镍纳米管表面,以降低细胞毒性,提高生物相容性,并拓宽其生物应用价值。

目的

本研究旨在构建具有不同厚度二氧化硅纳米壳的镍纳米管;研究硅层厚度、孵育时间和细胞系类别对合成材料细胞毒性的影响,并通过生物酶评估材料的生物相容性。选择Ni@SiO2-NH2作为吸附剂用于吸附和纯化富含组氨酸的蛋白质,如牛血红蛋白(BHb)。

方法

采用模板化学沉积法制备磁性镍纳米管。使用改良的Stöber工艺对Ni@SiO2纳米管进行二氧化硅包覆,并通过改变正硅酸乙酯的体积来调整二氧化硅纳米壳的不同厚度。

结果

在毒性实验中使用了包含肿瘤细胞和正常细胞的不同细胞系,证实了Ni@SiO2具有低细胞毒性和良好的生物相容性。为了实现对富含组氨酸蛋白质的高效固定化和纯化,通过引入氨基官能团获得了Ni@SiO2-NH2。发现与其他合成材料相比,Ni@SiO2-NH2具有更低的细胞毒性和更高的吸附能力。此外Ni@SiO2-NH2对富含组氨酸的蛋白质也表现出良好的选择性。

结论

这项工作不仅为降低生物纳米材料的细胞毒性和提高生物相容性提供了思路,也为后续的生物应用奠定了基础。

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