Fluorescence Resonance Energy Transfer-Enabled Dual-Emission Nanoplatform for Accurate Alpha-Fetoprotein Sensing
So Eun Kim, Hak Yong Kim, Alagan Muthurasu, Jae Chol YoonAbstract
Nanoparticles emerge as alternatives to conventional molecular tags such as fluorophores, owing to their superior optical properties, chemical stability, and long photostability. Herein, we present a fluorescence resonance energy transfer (FRET)-based ratiometric fluorescent probe consisting of nitrogen-doped carbon dots and gold nanoclusters (N-CDs–AuNCs) for the sensitive and selective detection of α-fetoprotein (AFP), a biomarker for early hepatocellular carcinoma. The probe is constructed from a donor–acceptor fluorophore pair, in which blue-emissive N-CDs transfer energy to red-emissive AuNCs, resulting in dual fluorescence at 435 and 710 nm under a single excitation wavelength of 380 nm, enabled by carbodiimide coupling. Blue/red dual-fluorescent nanotags were integrated into a ratiometric fluorescence enzyme-linked immunosorbent assay (RF-ELISA) platform to measure AFP on microplates functionalized with anti-AFP capture antibodies, in combination with a glucose oxidase (GOx)-tagged anti-AFP secondary antibody. After assembly of the sandwich-structured immunocomplex, GOx converted glucose into hydrogen peroxide, thereby quenching the red fluorescence of the AuNCs on the fluorescent nanoprobe. At the same time, the blue emission of the embedded N-CDs remained unchanged, allowing the red/blue fluorescence ratio to serve as a quantitative determination of AFP concentration under optimal conditions. Ratiometric fluorescence at 435:710 nm enabled AFP detection over a concentration range of 0.001 to 45 ng mL–1, with a limit of detection near 1.8 pg mL–1. The method exhibited reliable reproducibility, specificity, and stability. AFP measurements in human serum agreed well with a commercially available ELISA kit.