磁性纳米颗粒在生物传感和生物测定中的合成与改性研究进展

IF 3.7 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL Chemosensors Pub Date : 2023-10-10 DOI:10.3390/chemosensors11100533
Soledad Carinelli, Maximina Luis-Sunga, José Luis González-Mora, Pedro A. Salazar-Carballo
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引用次数: 0

摘要

生物传感器是一种利用生物相互作用来检测和量化单分子、临床生物标志物、污染物、过敏原和微生物的分析设备。通过将生物受体与传感器(如核酸或蛋白质)耦合,生物传感器将生物相互作用转化为电信号。电化学和光学转导是应用最广泛的方法,因为它们具有较高的检测能力和小型化的兼容性。生物传感器在分析化学中很有价值,特别是在健康诊断中,因为它们提供了简单和灵敏度。尽管它们很有用,但在传感器表面固定生物识别元素方面仍然存在挑战,导致灵敏度和选择性丧失等问题。为了解决这些问题,纳米材料,特别是磁性纳米颗粒(MNPs)和磁珠的引入已经实施。MNPs将其磁性与其他有趣的特性相结合,例如它们的小尺寸,高表面体积比,易于操作和出色的生物相容性,从而提高了特异性和敏感性,减少了基质效应。它们可以根据特定的应用进行定制,并已广泛应用于包括生物传感和临床诊断在内的各个领域。此外,MNPs通过磁分离分离目标分析物,简化了样品制备,从而减少了分析时间和干扰现象,提高了检测的分析性能。MNPs的合成和修饰对于调整其不同用途的性能起着至关重要的作用。本文综述了磁性纳米颗粒的合成和表面修饰,以及它们对生物传感器和生物检测的发展及其在不同领域的应用的贡献。MNP合成和整合分析的未来挑战主要集中在其稳定性、多重检测、测试平台的简化和可移植性、体内应用以及其他发展领域。
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Synthesis and Modification of Magnetic Nanoparticles for Biosensing and Bioassay Applications: A Review
Biosensors are analytical devices that use biological interactions to detect and quantify single molecules, clinical biomarkers, contaminants, allergens, and microorganisms. By coupling bioreceptors with transducers, such as nucleic acids or proteins, biosensors convert biological interactions into electrical signals. Electrochemical and optical transductions are the most widely used methods due to their high detection capability and compatibility with miniaturization. Biosensors are valuable in analytical chemistry, especially for health diagnostics, as they offer simplicity and sensitivity. Despite their usefulness, challenges persist in immobilizing biorecognition elements on the transducer surface, leading to issues such as loss of sensitivity and selectivity. To address these problems, the introduction of nanomaterials, in particular magnetic nanoparticles (MNPs) and magnetic beads, has been implemented. MNPs combine their magnetic properties with other interesting characteristics, such as their small size, high surface-to-volume ratio, easy handling, and excellent biocompatibility, resulting in improved specificity and sensitivity and reduced matrix effects. They can be tailored to specific applications and have been extensively used in various fields, including biosensing and clinical diagnosis. In addition, MNPs simplify sample preparation by isolating the target analytes via magnetic separation, thus reducing the analysis time and interference phenomena and improving the analytical performance of detection. The synthesis and modification of MNPs play a crucial role in adjusting their properties for different applications. This review presents an overview of the synthesis and surface modifications of magnetic nanoparticles and their contributions to the development of biosensors and bioassays for their applications across different areas. The future challenges of MNP synthesis and integration in assays are focused on their stability, multiplex detection, simplification and portability of test platforms, and in vivo applications, among other areas of development.
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来源期刊
Chemosensors
Chemosensors Chemistry-Analytical Chemistry
CiteScore
5.00
自引率
9.50%
发文量
450
审稿时长
11 weeks
期刊介绍: Chemosensors (ISSN 2227-9040; CODEN: CHEMO9) is an international, scientific, open access journal on the science and technology of chemical sensors published quarterly online by MDPI.
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