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Nanomaterial-Based Electrochemical Immunosensors for Clinically Significant Biomarkers

机译:基于纳米材料的电化学免疫传感器在临床上具有重要的生物标志物

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摘要

Nanotechnology has played a crucial role in the development of biosensors over the past decade. The development, testing, optimization, and validation of new biosensors has become a highly interdisciplinary effort involving experts in chemistry, biology, physics, engineering, and medicine. The sensitivity, the specificity and the reproducibility of biosensors have improved tremendously as a result of incorporating nanomaterials in their design. In general, nanomaterials-based electrochemical immunosensors amplify the sensitivity by facilitating greater loading of the larger sensing surface with biorecognition molecules as well as improving the electrochemical properties of the transducer. The most common types of nanomaterials and their properties will be described. In addition, the utilization of nanomaterials in immunosensors for biomarker detection will be discussed since these biosensors have enormous potential for a myriad of clinical uses. Electrochemical immunosensors provide a specific and simple analytical alternative as evidenced by their brief analysis times, inexpensive instrumentation, lower assay cost as well as good portability and amenability to miniaturization. The role nanomaterials play in biosensors, their ability to improve detection capabilities in low concentration analytes yielding clinically useful data and their impact on other biosensor performance properties will be discussed. Finally, the most common types of electroanalytical detection methods will be briefly touched upon.
机译:在过去的十年中,纳米技术在生物传感器的发展中发挥了至关重要的作用。新的生物传感器的开发,测试,优化和验证已成为涉及化学,生物学,物理学,工程学和医学领域的专家的一项高度跨学科的工作。由于在设计中采用了纳米材料,生物传感器的灵敏度,特异性和可重复性得到了极大的提高。通常,基于纳米材料的电化学免疫传感器通过促进更大的传感表面生物识别分子的负载以及改善换能器的电化学性能来放大灵敏度。将描述纳米材料的最常见类型及其性质。另外,将讨论在免疫传感器中用于生物标志物检测的纳米材料的利用,因为这些生物传感器具有无数临床用途的巨大潜力。电化学免疫传感器提供了一种特定而简单的分析替代方法,其较短的分析时间,廉价的仪器,较低的测定成本以及良好的便携性和小型化能力证明了这一点。我们将讨论纳米材料在生物传感器中的作用,提高低浓度分析物检测能力以产生临床有用数据的能力以及它们对其他生物传感器性能的影响。最后,将简要介绍最常见的电分析检测方法。

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