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用于医学诊断和治疗的金属纳米结构辅助生物传感器的最新进展

Recent Advances in Metallic Nanostructures-assisted Biosensors for Medical Diagnosis and Therapy.

作者信息

Tiryaki Ecem, Zorlu Tolga

机构信息

Nanomaterials for Biomedical Applications, Italian Institute of Technology, 16163, Genova, Italy.

Department of Bioengineering, Faculty of Chemical and Metallurgical Engineering, Yildiz Technical University, 34220, Esenler, Istanbul, Turkey.

出版信息

Curr Top Med Chem. 2024;24(11):930-951. doi: 10.2174/0115680266282489240109050225.

Abstract

The field of nanotechnology has witnessed remarkable progress in recent years, particularly in its application to medical diagnosis and therapy. Metallic nanostructures-assisted biosensors have emerged as a powerful and versatile platform, offering unprecedented opportunities for sensitive, specific, and minimally invasive diagnostic techniques, as well as innovative therapeutic interventions. These biosensors exploit the molecular interactions occurring between biomolecules, such as antibodies, enzymes, aptamers, or nucleic acids, and metallic surfaces to induce observable alterations in multiple physical attributes, encompassing electrical, optical, colorimetric, and electrochemical signals. These interactions yield measurable data concerning the existence and concentration of particular biomolecules. The inherent characteristics of metal nanostructures, such as conductivity, plasmon resonance, and catalytic activity, serve to amplify both sensitivity and specificity in these biosensors. This review provides an in-depth exploration of the latest advancements in metallic nanostructures-assisted biosensors, highlighting their transformative impact on medical science and envisioning their potential in shaping the future of personalized healthcare.

摘要

近年来,纳米技术领域取得了显著进展,尤其是在其应用于医学诊断和治疗方面。金属纳米结构辅助生物传感器已成为一个强大且多功能的平台,为灵敏、特异且微创的诊断技术以及创新的治疗干预提供了前所未有的机遇。这些生物传感器利用生物分子(如抗体、酶、适配体或核酸)与金属表面之间发生的分子相互作用,在包括电学、光学、比色和电化学信号等多种物理属性上诱导可观察到的变化。这些相互作用产生了有关特定生物分子的存在和浓度的可测量数据。金属纳米结构的固有特性,如导电性、等离子体共振和催化活性,有助于增强这些生物传感器的灵敏度和特异性。本综述深入探讨了金属纳米结构辅助生物传感器的最新进展,强调了它们对医学科学的变革性影响,并展望了它们在塑造个性化医疗未来方面的潜力。

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