Institute of Biological Information Processing (IBI-3), Bioelectronics, Forschungszentrum Jülich, 52425, Jülich, Germany.
Department of Physics "E. Pancini", University of Naples "Federico II", Via Cintia 26, 80126, Naples, Italy.
Nat Commun. 2020 Dec 1;11(1):6134. doi: 10.1038/s41467-020-19755-0.
Development of plasmonic biosensors combining reliability and ease of use is still a challenge. Gold nanoparticle arrays made by block copolymer micelle nanolithography (BCMN) stand out for their scalability, cost-effectiveness and tunable plasmonic properties, making them ideal substrates for fluorescence enhancement. Here, we describe a plasmon-enhanced fluorescence immunosensor for the specific and ultrasensitive detection of Plasmodium falciparum lactate dehydrogenase (PfLDH)-a malaria marker-in whole blood. Analyte recognition is realized by oriented antibodies immobilized in a close-packed configuration via the photochemical immobilization technique (PIT), with a top bioreceptor of nucleic acid aptamers recognizing a different surface of PfLDH in a sandwich conformation. The combination of BCMN and PIT enabled maximum control over the nanoparticle size and lattice constant as well as the distance of the fluorophore from the sensing surface. The device achieved a limit of detection smaller than 1 pg/mL (<30 fM) with very high specificity without any sample pretreatment. This limit of detection is several orders of magnitude lower than that found in malaria rapid diagnostic tests or even commercial ELISA kits. Thanks to its overall dimensions, ease of use and high-throughput analysis, the device can be used as a substrate in automated multi-well plate readers and improve the efficiency of conventional fluorescence immunoassays.
开发兼具可靠性和易用性的等离子体生物传感器仍然是一个挑战。通过嵌段共聚物胶束纳米光刻(BCMN)制备的金纳米粒子阵列因其可扩展性、成本效益和可调谐等离子体特性而脱颖而出,使其成为荧光增强的理想基底。在这里,我们描述了一种等离子体增强荧光免疫传感器,用于特异性和超灵敏检测全血中的恶性疟原虫乳酸脱氢酶(PfLDH)-一种疟疾标志物。通过光化学固定技术(PIT)将定向抗体固定在紧密堆积的构型中实现分析物识别,顶部生物受体是识别 PfLDH 不同表面的核酸适体,形成三明治构型。BCMN 和 PIT 的结合使我们能够最大程度地控制纳米粒子的尺寸和晶格常数以及荧光团与传感表面的距离。该设备的检测限小于 1 pg/mL(<30 fM),具有非常高的特异性,无需任何样品预处理。该检测限比疟疾快速诊断测试甚至商业 ELISA 试剂盒低几个数量级。由于其整体尺寸、易用性和高通量分析,该设备可用作自动化多微孔板读取器的基底,并提高传统荧光免疫分析的效率。