Sharma Vinayak, Javed Bilal, Byrne Hugh J, Tian Furong
School of Food Science and Environmental Health, College of Sciences and Health Technological University Dublin, D07 H6K8 Dublin, Ireland.
Nanolab Research Centre, Physical to Life Sciences Research Hub, Technological University Dublin, D08 CKP1 Dublin, Ireland.
Biosensors (Basel). 2025 Aug 1;15(8):495. doi: 10.3390/bios15080495.
The lateral flow immunoassay (LFIA) is a widely utilized, rapid diagnostic technique characterized by its short analysis duration, cost efficiency, visual result interpretation, portability and suitability for point-of-care applications. However, conventional LFIAs have limited sensitivity, a challenge that can be overcome by the introduction of gold nanoparticles, which provide enhanced sensitivity and selectivity (compared, for example, to latex beads or carbon nanoparticles) for the detection of target analytes, due to their optical properties, chemical stability and ease of functionalization. In this work, gold nanoparticle-based LFIAs are developed for the detection of aflatoxin B1, and the relative performance of different morphology particles is evaluated. LFIA using gold nano-labels allowed for aflatoxin B1 detection over a range of 0.01 ng/mL-100 ng/mL. Compared to spherical gold nanoparticles and gold nano-flowers, star-shaped gold nanoparticles show increased antibody binding efficiency of 86% due to their greater surface area. Gold nano-stars demonstrated the highest sensitivity, achieving a limit of detection of 0.01ng/mL, surpassing the performance of both spherical gold nanoparticles and gold nano-flowers. The use of star-shaped particles as nano-labels has demonstrated a five-fold improvement in sensitivity, underscoring the potential of integrating diverse nanostructures into LFIA for significantly improving analyte detection. Moreover, the robustness and feasibility of gold nano-stars employed as labels in LFIA was assessed in detecting aflatoxin B1 in a wheat matrix. Improved sensitivity with gold nano-stars holds promise for applications in food safety monitoring, public health diagnostics and rapid point-of-care diagnostics. This work opens the pathway for further development of LFIA utilizing novel nanostructures to achieve unparallel precision in diagnostics and sensing.
侧向流动免疫分析(LFIA)是一种广泛应用的快速诊断技术,其特点是分析时间短、成本效益高、结果可直观解读、便于携带且适用于即时检测应用。然而,传统的LFIA灵敏度有限,而引入金纳米颗粒可以克服这一挑战。由于金纳米颗粒的光学性质、化学稳定性和易于功能化的特点,与乳胶珠或碳纳米颗粒相比,它们在检测目标分析物时具有更高的灵敏度和选择性。在这项工作中,开发了基于金纳米颗粒的LFIA用于检测黄曲霉毒素B1,并评估了不同形态颗粒的相对性能。使用金纳米标记的LFIA能够在0.01 ng/mL - 100 ng/mL的范围内检测黄曲霉毒素B1。与球形金纳米颗粒和金纳米花相比,星形金纳米颗粒由于其更大的表面积,抗体结合效率提高了86%。金纳米星表现出最高的灵敏度,检测限达到0.01ng/mL,超过了球形金纳米颗粒和金纳米花的性能。使用星形颗粒作为纳米标记物已证明灵敏度提高了五倍,突出了将多种纳米结构整合到LFIA中以显著提高分析物检测的潜力。此外,还评估了在小麦基质中检测黄曲霉毒素B时,金纳米星作为LFIA标记物的稳健性和可行性。金纳米星提高的灵敏度在食品安全监测、公共卫生诊断和快速即时检测诊断中具有应用前景。这项工作为进一步开发利用新型纳米结构的LFIA开辟了道路,以在诊断和传感中实现无与伦比的精度。