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硅涂层金纳米棒的生物功能化用于局域表面等离子体共振(LSPR)生物传感。

Silica-coated gold nanorods biofunctionalization for localized surface plasmon resonance (LSPR) biosensing.

机构信息

Sorbonne Université, CNRS, Laboratoire de Réactivité de Surface (LRS), F-75005, Paris, France; Sorbonne Université, CNRS, Institut Parisien de Chimie Moléculaire (IPCM), F-75005, Paris, France.

Sorbonne Université, CNRS, Laboratoire de Réactivité de Surface (LRS), F-75005, Paris, France.

出版信息

Talanta. 2023 Apr 1;255:124245. doi: 10.1016/j.talanta.2022.124245. Epub 2022 Dec 30.

Abstract

We introduce here the engineering of nanobiosensors designed from gold nanorods coated with an ultrathin layer of silica (AuNR@SiO) and biofunctionalized with antibodies for the Localized Surface Plasmon Resonance (LSPR) biosensing of proteins. Despite the outstanding properties of AuNRs, their use for LSPR biosensing is limited due to the presence of the surfactant cetyltrimethylammonium bromide (CTAB) - mandatory for their synthesis - which forms a strongly-bounded and positively-charged bilayer at their surface and significantly complicates their bio-functionalization. When coated with a thin layer of silica, these nanomaterials exhibit an improved sensitivity to refractive index change which augurs for better analytical performances. Here, we undertook an in-depth investigation of the biofunctionalization of AuNR@SiOvia three different routes to design and test a label-free LSPR biosensor operating in solution. In the first route, we took advantage of the negatively charged external silica shell to immobilize anti-rabbit IgG antibody by electrostatic physisorption. In the second and third routes, the silica surface was reacted with thiol or aldehyde terminated silanes, subsequently utilized to covalently attach anti-rabbit IgG antibody to the surface. The resulting nanoprobes were characterized by a wide range of physical methods (TEM, XPS, DLS, ELS and UV-Visible spectroscopy) then tested for the biosensing of rabbit-IgG. The three nanobiosensors maintain an excellent colloidal stability after analyte recognition and exhibit extremely high analytical performances in terms of specificity and dynamic range, with an LoD down to 12 ng/mL.

摘要

我们在这里介绍了纳米生物传感器的工程设计,这些传感器由涂有超薄二氧化硅层的金纳米棒(AuNR@SiO)制成,并通过抗体进行生物功能化,用于局部表面等离子体共振(LSPR)生物传感蛋白质。尽管 AuNRs 具有出色的性能,但由于其合成所需的表面活性剂十六烷基三甲基溴化铵(CTAB)的存在,它们在 LSPR 生物传感中的应用受到限制 - CTAB 在其表面形成强结合的正电荷双层,并且显著增加了其生物功能化的复杂性。当这些纳米材料涂覆有一层薄薄的二氧化硅时,它们对折射率变化的灵敏度得到了改善,这预示着更好的分析性能。在这里,我们通过三种不同的途径深入研究了 AuNR@SiO 的生物功能化,以设计和测试一种在溶液中运行的无标记 LSPR 生物传感器。在第一种途径中,我们利用带负电荷的外部二氧化硅壳通过静电物理吸附固定抗兔 IgG 抗体。在第二种和第三种途径中,二氧化硅表面与硫醇或醛基封端的硅烷反应,随后将其用于将抗兔 IgG 抗体共价连接到表面。所得到的纳米探针通过多种物理方法进行了表征(TEM、XPS、DLS、ELS 和 UV-Visible 光谱学),然后用于检测兔 IgG。在分析物识别后,这三种纳米生物传感器保持了出色的胶体稳定性,并且在特异性和动态范围方面表现出极高的分析性能,检测限低至 12ng/mL。

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