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用于高效病原体富集和基因传感的Fe3O4/万古霉素/聚乙二醇磁性纳米载体的构建

Construction of Fe3O4/Vancomycin/PEG Magnetic Nanocarrier for Highly Efficient Pathogen Enrichment and Gene Sensing.

作者信息

Zhu Minjun, Liu Weipeng, Liu Hongxing, Liao Yuhui, Wei Jitao, Zhou Xiaoming, Xing Da

出版信息

ACS Appl Mater Interfaces. 2015 Jun 17;7(23):12873-81. doi: 10.1021/acsami.5b02374. Epub 2015 Jun 2.

Abstract

Infectious diseases, especially pathogenic bacterial infections, pose a growing threat to public health worldwide. As pathogenic bacteria usually exist in complex experimental matrixes at very low concentrations, developing a technology for rapid and biocompatible sample enrichment is essential for sensitive diagnosis. In this study, an Fe3O4/Vancomycin/PEG magnetic nanocarrier was constructed for efficient sample enrichment and in situ nucleic acid preparation of pathogenic bacteria for subsequent gene sensing. We attached Vancomycin, a well-known broad-spectrum antibiotic, to the surface of Fe3O4 nanoparticles as a universal molecular probe to target bacterial cells. Polyethylene glycol (PEG) was introduced to enhance the nanocarrier's water solubility and biocompatibility. Results show that the proposed nanocarrier achieved a 90% capture efficiency even if at a Listeria monocytogenes concentration of 1×10(2) cfu/mL. Contributing to the good water solubility achieved by the employment of modified PEG, highly efficient enrichment (enrichment factor 10 times higher than PEG-free nanocarrier) can be completed in 30 min. Moreover, PEG would also develop the nanoparticles' biocompatibility by passivating the positively charged unreacted amines on the magnetic nanoparticles, thus helping to release the negatively charged bacterial genome from the nanocarrier/bacteria complexes when an in situ nucleic acids extraction step was executed. The outstanding bacterial capture capability and biocompatibility of this nanocarrier enabled the implementation of a highly sensitive gene-sensing strategy of pathogens. By employing an electrochemiluminescence-based gene-sensing assay, L. monocytogenes can be rapidly detected with a limit of detection of 10 cfu/mL, which shows great potential for clinical applications.

摘要

传染病,尤其是致病性细菌感染,对全球公共卫生构成了日益严重的威胁。由于致病细菌通常以极低浓度存在于复杂的实验基质中,因此开发一种用于快速且生物相容的样品富集技术对于灵敏诊断至关重要。在本研究中,构建了一种Fe3O4/万古霉素/聚乙二醇磁性纳米载体,用于致病性细菌的高效样品富集和原位核酸制备,以便后续进行基因传感。我们将著名的广谱抗生素万古霉素附着在Fe3O4纳米颗粒表面,作为靶向细菌细胞的通用分子探针。引入聚乙二醇(PEG)以提高纳米载体的水溶性和生物相容性。结果表明,即使在单核细胞增生李斯特菌浓度为1×10(2) cfu/mL的情况下,所提出的纳米载体仍能实现90%的捕获效率。由于采用改性PEG实现了良好的水溶性,高效富集(富集因子比无PEG纳米载体高10倍)可在30分钟内完成。此外,PEG还会通过钝化磁性纳米颗粒上带正电荷的未反应胺来提高纳米颗粒的生物相容性,从而在执行原位核酸提取步骤时,有助于从纳米载体/细菌复合物中释放带负电荷的细菌基因组。这种纳米载体出色的细菌捕获能力和生物相容性使得能够实施一种高度灵敏的病原体基因传感策略。通过采用基于电化学发光的基因传感测定法,可快速检测单核细胞增生李斯特菌,检测限为10 cfu/mL,这在临床应用中显示出巨大潜力。

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