Department of Molecular Sciences and §Department of Physics and Astronomy, ARC Centre of Excellence for Nanoscale BioPhotonics , Macquarie University , Sydney 2109 , Australia.
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry , Chinese Academy of Sciences , Changchun 130022 , Jilin , P. R. China.
ACS Sens. 2019 Sep 27;4(9):2507-2514. doi: 10.1021/acssensors.9b01211. Epub 2019 Sep 10.
The sensitive and simultaneous detection of cytokines will provide new insights into the physiological process and disease pathways due to the complex nature of cytokine networks. However, the key challenge is the lack of probes that can simultaneously detect multiple cytokines in a single sample. In this contribution, we proposed an alternative approach for sensitive cytokine detection in a multiplex manner by the use of a new set of surface-enhanced Raman spectroscopy (SERS) nanotags. Typically, the newly designed SERS nanotags are composed of gold nanoparticles as the core, tuneable Raman molecules as the reporters, and a thin silver layer as the shell. As demonstrated through rigorous numerical simulations, enhanced Raman signal is achieved due to a strong localization of light in the 0.2 nm thin, optically deep-subwavelength region between the Au core and the Ag shell. Sensitive detection of cytokines is realized by forming a sandwich immunoassay. The detection limit is down to 4.5 pg mL (/ = 3). The specificity of the assay is proved as negligible signals were detected for the false targets. Furthermore, multiple cytokines are simultaneously detected in a single assay from the secretion of B-lymphocyte cell line (Raji) after concanavalin A (Con A) stimulation. The results indicate that our method holds a significant potential for sensitive and multiplexed detection of cytokines and offers the opportunity for future applications in clinical settings.
由于细胞因子网络的复杂性,细胞因子的敏感和同步检测将为生理过程和疾病途径提供新的见解。然而,关键的挑战是缺乏能够在单个样本中同时检测多种细胞因子的探针。在本研究中,我们提出了一种通过使用一组新的表面增强拉曼光谱(SERS)纳米标签以多重方式进行敏感细胞因子检测的替代方法。通常,新设计的 SERS 纳米标签由金纳米颗粒作为核心、可调谐拉曼分子作为报告分子和薄银层作为壳组成。通过严格的数值模拟证明,由于在 Au 核和 Ag 壳之间的 0.2nm 薄、光学深度亚波长区域中光的强局域化,实现了增强的拉曼信号。通过形成三明治免疫测定实现了细胞因子的敏感检测。检测限低至 4.5pgmL(/=3)。该测定法的特异性已得到证明,因为对于假靶标几乎没有检测到信号。此外,还可以从刀豆蛋白 A(ConA)刺激后的 B 淋巴细胞系(Raji)的分泌中在单个测定中同时检测多种细胞因子。结果表明,我们的方法在细胞因子的敏感和多重检测方面具有很大的潜力,并为未来在临床环境中的应用提供了机会。