School of Food and Biological Engineering, Jiangsu University, Zhenjiang 212013, PR China.
Biosens Bioelectron. 2017 Jun 15;92:192-199. doi: 10.1016/j.bios.2017.02.009. Epub 2017 Feb 7.
Surface-enhanced Raman scattering (SERS) biosensors have promising potential in the field of antibiotics detection because of their ultrahigh detection sensitivity. This paper reports a rapid and sensitive SERS-based magnetic nanospheres-targeting strategy for sensing tetracycline (TTC) using aptamer-conjugated magnetite colloid nanocrystal clusters (MCNCs)-polymethacrylic acid (PMAA) magnetic nanospheres (MNs) as the recognition and the Au/PATP/SiO (APS) as the labels. Initially, MNs were fabricated and conjugated with the aptamers through condensation reaction. MNs possessed high saturation magnetization (Ms) value of 71.5emu/g and excellent biocompatibility, which facilitated the rapid and easy magnetic separation. Then, complementary DNA (cDNA) were loaded on the APS nanocarrier to produce a large amplification factor of Raman signals. The MNs-targeting aptasensor was thus fabricated by immobilizing the APS to the MNs' surfaces via the hybrid reaction between cDNA and aptamers. Sequel, TTC bound successfully to the aptamer upon its addition with the subsequent release of some cDNA-APS into the bulk solution. Under magnet attraction, the nanospheres were deposited together. Consequently, a display of strong SERS signals by supernatants of the resulting mixtures with increasing TTC concentrations was observed. The proposed aptasensor showed excellent performances for TTC detection along with wide linear range of 0.001-100ng/mL, low detection limit 0.001ng/mL, high sensitivity, and good selectivity to the general coexisted interferences.
表面增强拉曼散射(SERS)生物传感器由于其超高的检测灵敏度,在抗生素检测领域具有广阔的应用前景。本研究报道了一种基于 SERS 的快速灵敏磁纳米球靶向策略,用于基于适配体偶联的磁性胶体纳米晶簇(MCNC)-聚甲基丙烯酸(PMAA)磁纳米球(MNs)作为识别物,利用金/PATP/SiO(APS)作为标记物来检测四环素(TTC)。首先,制备 MNs 并通过缩合反应将其与适配体偶联。MNs 具有高饱和磁化强度(Ms)值为 71.5emu/g 和优异的生物相容性,这有利于快速简便的磁分离。然后,将互补 DNA(cDNA)加载到 APS 纳米载体上,以产生大量拉曼信号的放大因子。通过 cDNA 和适配体之间的杂交反应将 APS 固定到 MNs 表面,从而制备 MNs 靶向适体传感器。接着,TTC 与适配体成功结合,随后一些 cDNA-APS 被释放到溶液中。在磁场的吸引下,纳米球被一起沉积下来。因此,观察到随着 TTC 浓度的增加,混合物上清液中显示出强的 SERS 信号。该适体传感器对 TTC 检测具有优异的性能,线性范围为 0.001-100ng/mL,检测限低至 0.001ng/mL,灵敏度高,对常见共存干扰物具有良好的选择性。