首页> 美国卫生研究院文献>ACS Omega >Aptasensor Based on Hierarchical Core–ShellNanocomposites of Zirconium Hexacyanoferrate Nanoparticles and MesoporousmFe3O4@mC: Electrochemical Quantitation of EpithelialTumor Marker Mucin-1
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Aptasensor Based on Hierarchical Core–ShellNanocomposites of Zirconium Hexacyanoferrate Nanoparticles and MesoporousmFe3O4@mC: Electrochemical Quantitation of EpithelialTumor Marker Mucin-1

机译:基于分层核心-外壳的自适应传感器六氰基高铁酸锆纳米颗粒和介孔纳米复合材料mFe3O4 @ mC:上皮的电化学定量肿瘤标记物Mucin-1

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摘要

A novel nanostructured hierarchical core–shell nanocomposite of zirconium hexacyanoferrate (ZrHCF) and a mesoporous nanomaterial composed of Fe3O4 and carbon nanospheres (denoted as ZrHCF@mFe3O4@mC) was prepared and used as a novel platform for an aptasensor to detect the epithelial tumor marker mucin-1 (MUC1) sensitively and selectively. The prepared ZrHCF@mFe3O4@mC nanocomposite exhibited good chemical functionality, water stability, and high specific surface area. Therefore, large amounts of aptamer molecules resulted in high sensitivity of the developed electrochemical aptasensor toward traces of MUC1. The constructed sensor also showed a good linear relationship with the logarithm of MUC1 concentration in the broad range of 0.01 ng·mL–1 to 1.0 μg·mL–1, with a low detection limit of 0.90 pg·mL–1. The fabricated ZrHCF@mFe3O4@mC-based aptasensor exhibited not only high selectivity because of the formation of aptamer–MUC1 complex but also good stability, acceptable reproducibility, and applicability. The proposed novel strategy based on a newly prepared hierarchical core–shell nanocomposite demonstrated outstanding biosensingperformance and presents potential applications in biomedical fields.
机译:制备了一种新的纳米结构的六氰合铁酸锆(ZrHCF)纳米核-壳纳米复合材料以及由Fe3O4和碳纳米球组成的介孔纳米材料(表示为ZrHCF @ mFe3O4 @ mC),并将其用作检测上皮肿瘤标志物的新型传感器平台mucin-1(MUC1)敏感且选择性。制备的ZrHCF @ mFe3O4 @ mC纳米复合材料具有良好的化学功能,水稳定性和高比表面积。因此,大量的适体分子导致发达的电化学适体传感器对痕量的MUC1的高灵敏度。所构建的传感器与MUC1浓度的对数在0.01 ng·mL –1 至1.0μg·mL –1 的宽范围内也显示出良好的线性关系。最低检测限为0.90 pg·mL –1 。基于ZrHCF @ mFe3O4 @ mC的适体传感器不仅由于形成适体-MUC1复合物而显示出高选择性,而且具有良好的稳定性,可接受的重现性和适用性。基于新制备的分层核-壳纳米复合材料的拟议新策略显示了出色的生物传感性能,并提出了在生物医学领域的潜在应用。

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