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首页> 外文期刊>Australian Journal of Chemistry >A Novel Piezoelectric Immunosensor for CA125 Using a Hydroxyapatite/Chitosan Nanocomposite-Based Biomolecular Immobilization Method
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A Novel Piezoelectric Immunosensor for CA125 Using a Hydroxyapatite/Chitosan Nanocomposite-Based Biomolecular Immobilization Method

机译:基于羟基磷灰石/壳聚糖纳米复合物的生物分子固定方法的CA125新型压电免疫传感器

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摘要

The ideal immobilization methods that are suitable for binding immunoactive materials with high efficiency onto a sensing surface are the key target to pursue in current biosensor design. In the present paper, the formation of a hydroxyapatite/chitosan (HA/CS) hybrid nanocomposite is described and a general design strategy for immunosensing platforms is proposed on the basis of HA/CS nanocomposite and nanogold particle adsorption of antibodies. A quartz crystal microbalance used as a model transducer and the detection performances of the resulting immunosensor were investigated by using the immuno-system of CA125, an important indicator in the diagnosis of clinical cancers. The hybrid nanocomposite was characterized by scanning electron microscopy and transmission electron microscopy measurements. The frequency response characteristics for the processes of immobilization and immunoreaction of anchored anti-CA125 antibodies were studied in detail. It was found that the developed sensing interface has some advantages, such as activation-free immobilization and high antigen-binding activities of antibodies. The as-prepared immunosensor can allow the determination of CA125 in the concentration range 15.3–440.0 U mL–1. Such an interface design with the hybrid nanocomposite could be tailored as a new alternative used for biosensor design.
机译:适用于将免疫活性材料高效结合到传感表面上的理想固定方法是当前生物传感器设计中追求的关键目标。本文介绍了羟基磷灰石/壳聚糖(HA / CS)杂化纳米复合材料的形成,并基于HA / CS纳米复合材料和抗体的纳米金颗粒吸附,提出了一种通用的免疫传感平台设计策略。利用CA125免疫系统研究了用作模型换能器的石英微天平以及所得免疫传感器的检测性能,CA125是临床癌症诊断中的重要指标。通过扫描电子显微镜和透射电子显微镜测量来表征杂化纳米复合材料。详细研究了锚定抗CA125抗体的固定和免疫反应过程的频率响应特性。发现开发的传感界面具有一些优点,例如无活化的固定和抗体的高抗原结合活性。制备的免疫传感器可以测定浓度范围为15.3–440.0 U mL–1的CA125。与杂化纳米复合材料的这种界面设计可以被定制为用于生物传感器设计的新的替代方案。

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