Lee Bobin, Park Byungho, Kim Daeun, Jung Chaewon, Park Jun Hyeok, Park Ji-Ho, Lee Young Eun, Shin Myung Geun, Kim Min-Gon, Yu Nan Ei, Kim Joon Heon, Kim Kihyeun
Advanced Photonics Research Institute (APRI), Gwangju Institute of Science and Technology (GIST), Gwangju, 61005, Republic of Korea.
Department of Biotechnology and Bioengineering, Chonnam National University, Gwangju, 61186, Republic of Korea.
Nat Commun. 2025 Apr 9;16(1):3377. doi: 10.1038/s41467-025-58663-z.
The lateral flow immunoassay (LFIA) is one of the most successful sensing platforms for real-world point-of-care (POC) testing. However, achieving PCR-level sensitivity without compromising the inherent advantages of LFIA, such as rapid and robust operation, affordability, and naked-eye detection, has remained a primary challenge. In this study, a plasmonic scattering-utilising LFIA was proposed, created by transparentising a nitrocellulose membrane and placing a light-absorbing backing card under the membrane. This LFIA minimised the background signal from its matrix, leading to substantially enhanced sensitivity and enabling naked-eye detection of the plasmonic scattering signal from gold nanoparticles without optics. Our plasmonic scattering-utilising LFIA showed an approximately 2600-4400 times higher detection limit compared with that of commercial LFIAs in influenza A assays. In addition, it exhibited 90% sensitivity in clinical validation, approaching PCR-level sensitivity, while commercial LFIAs showed 23-30% sensitivity. The plasmonic scattering-utilising LFIA plays a ground-breaking role in POC diagnostics and significantly boosts follow-up research.
侧向流动免疫分析(LFIA)是用于实际即时检测(POC)的最成功的传感平台之一。然而,在不损害LFIA固有优势(如操作快速且稳健、价格低廉和可裸眼检测)的情况下实现PCR级别的灵敏度,仍然是一个主要挑战。在本研究中,提出了一种利用等离子体散射的LFIA,通过使硝酸纤维素膜透明化并在膜下放置吸光背卡来实现。这种LFIA将其基质的背景信号降至最低,从而显著提高了灵敏度,并能够在无需光学器件的情况下裸眼检测金纳米颗粒的等离子体散射信号。在甲型流感检测中,我们利用等离子体散射的LFIA的检测限比商业LFIA高出约2600 - 4400倍。此外,它在临床验证中表现出90%的灵敏度,接近PCR级别的灵敏度,而商业LFIA的灵敏度为23 - 30%。利用等离子体散射的LFIA在即时诊断中发挥了开创性作用,并显著推动了后续研究。