School of Life Sciences, Northwestern Polytechnical University, Xi'an, 710072, P.R. China.
Key Laboratory for Space Bioscience and Biotechnology, Northwestern Polytechnical University, Xi'an, 710072, P.R. China.
Sci Rep. 2017 May 2;7(1):1360. doi: 10.1038/s41598-017-01558-x.
Hepatitis B virus (HBV) infection is a serious public health problem, which can be transmitted through various routes (e.g., blood donation) and cause hepatitis, liver cirrhosis and liver cancer. Hence, it is necessary to do diagnostic screening for high-risk HBV patients in these transmission routes. Nowadays, protein-based technologies have been used for HBV testing, which however involve the issues of large sample volume, antibody instability and poor specificity. Nucleic acid hybridization-based lateral flow assay (LFA) holds great potential to address these limitations due to its low-cost, rapid, and simple features, but the poor analytical sensitivity of LFA restricts its application. In this study, we developed a low-cost, simple and easy-to-use method to improve analytical sensitivity by integrating sponge shunt into LFA to decrease the fluid flow rate. The thickness, length and hydrophobicity of the sponge shunt were sequentially optimized, and achieved 10-fold signal enhancement in nucleic acid testing of HBV as compared to the unmodified LFA. The enhancement was further confirmed by using HBV clinical samples, where we achieved the detection limit of 10 copies/ml as compared to 10 copies/ml in unmodified LFA. The improved LFA holds great potential for diseases diagnostics, food safety control and environment monitoring at point-of-care.
乙型肝炎病毒 (HBV) 感染是一个严重的公共卫生问题,可以通过多种途径(例如献血)传播,并导致肝炎、肝硬化和肝癌。因此,有必要对这些传播途径中的高危 HBV 患者进行诊断筛查。目前,基于蛋白质的技术已被用于 HBV 检测,但这些技术存在样本体积大、抗体不稳定和特异性差等问题。基于核酸杂交的侧向流动分析(LFA)由于其低成本、快速和简单的特点,具有很大的应用潜力,可以解决这些局限性,但 LFA 的分析灵敏度较差限制了其应用。在本研究中,我们开发了一种低成本、简单易用的方法,通过将海绵分流器集成到 LFA 中以降低流体流速来提高分析灵敏度。我们依次优化了海绵分流器的厚度、长度和疏水性,与未经修饰的 LFA 相比,在 HBV 的核酸检测中实现了 10 倍的信号增强。通过使用 HBV 临床样本进一步证实了这种增强,在未经修饰的 LFA 中检测限为 10 拷贝/ml,而在改进后的 LFA 中检测限为 10 拷贝/ml。改进后的 LFA 在疾病诊断、食品安全控制和现场环境监测方面具有很大的应用潜力。