Beijing Institute of Radiation Medicine, Beijing 100850, China.
School of Environment and Natural Resources, Renmin University of China, Beijing 100872, China.
Biosens Bioelectron. 2016 May 15;79:661-8. doi: 10.1016/j.bios.2015.12.108. Epub 2015 Dec 31.
SERS biosensor has demonstrated remarkable potential to analyze various bio/chemical targets with ultrahigh sensitivity. However, the development of universal SERS biosensing platforms with a uniform and reproducible structure that can quantitatively detect a broad range of trace analytes remains a significant challenge. The production of SERS nanotags with abundant Raman reporters and rational structure to conjugate with detection biomolecules is another key to design SERS-nanobioprobes. Here, we introduce a facile single magnetic-bead biosensing platform, formed by combining the captured antibodies/antigens conjugated magnetic-beads and the Au@Raman-Reporters@Ag sandwich-based nanorod tags labeled nanobioprobes. The advantage of the robust sandwich-structure-based nanotags is attributed not only to the high density Raman reporters contained inside, with high EF value because of enhanced electromagnetic field density, but also to the flexibility for bioconjugation of the detection biomolecules. The 3-D structure of the functional magnetic-bead provides a perfect platform to rapidly capture and enrich biomolecules. Ultrasensitive detection of two small molecules and a protein was achieved in samples, respectively.
SERS 生物传感器在超灵敏分析各种生物/化学靶标方面表现出了巨大的潜力。然而,开发具有统一和可重复结构的通用 SERS 生物传感平台,以定量检测广泛的痕量分析物,仍然是一个重大挑战。生产具有丰富拉曼报告分子和合理结构的 SERS 纳米标签,以与检测生物分子结合,是设计 SERS-纳米生物探针的另一个关键。在这里,我们介绍了一种简单的单磁珠生物传感平台,它是通过将捕获的抗体/抗原偶联磁珠与基于 Au@Raman-Reporters@Ag 三明治结构的纳米棒标签标记的纳米生物探针结合形成的。基于坚固三明治结构的纳米标签的优势不仅归因于其内部包含的高密度拉曼报告分子,由于增强的电磁场密度而具有高 EF 值,而且还归因于检测生物分子的灵活生物结合。功能磁珠的 3D 结构为快速捕获和富集生物分子提供了一个完美的平台。在样品中分别实现了对两种小分子和一种蛋白质的超灵敏检测。