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基于原子磁力计的高灵敏度和定量磁性纳米颗粒侧向流动免疫分析。

Highly Sensitive and Quantitative Magnetic Nanoparticle-Based Lateral Flow Immunoassay with an Atomic Magnetometer.

机构信息

Center for Advanced Measurement Science, National Institute of Metrology, Beijing 100029, China.

China Jiliang University, Hangzhou 310018, China.

出版信息

ACS Sens. 2023 Dec 22;8(12):4512-4520. doi: 10.1021/acssensors.3c01028. Epub 2023 Nov 20.

Abstract

Lateral flow immunoassay (LFIA) is a simple point-of-care method for detecting various analytes. However, the lack of test result precision and poor quantification are the main bottlenecks of LFIA. Although magnetic nanoparticles (MNPs) have gained prominence as potent labels in LIFA, the quantitative detection method for trace biomarkers remains to be improved. Here, we propose a promising real-time biosensing platform based on a highly sensitive atomic magnetometer to fulfill the quantitative detection of MNP-based lateral flow immunochromatographic assays. The strategy entails obtaining the residual flux density component spectrum by continuously and linearly scanning the trace MNP label and then resolving the magnetization and quantity from the spectrum. Moreover, we exploit the theoretical model of the magnetic dipole to verify the method's reliability. Regarding carcinoembryonic antigen detection, the atomic magnetometer exhibits a low detection limit of ∼0.01 ng mL with a 100-fold enhancement factor compared to optical detection methods and a more straightforward mechanism than other magnetic detection approaches. Together, these results provide valuable insight for the potential application of atomic magnetometer quantum measurement techniques in intelligent diagnosis and treatment.

摘要

侧向流动免疫分析(LFIA)是一种简单的即时检测方法,可用于检测各种分析物。然而,检测结果精度不足和定量能力差是 LFIA 的主要瓶颈。尽管磁性纳米颗粒(MNPs)已作为 LFIA 中的有效标记物而备受关注,但痕量生物标志物的定量检测方法仍有待改进。在这里,我们提出了一种基于高灵敏度原子磁力计的有前途的实时生物传感平台,以实现基于 MNP 的侧向流动免疫层析分析的定量检测。该策略包括通过连续线性扫描痕量 MNP 标记来获得剩余磁通密度分量谱,然后从谱中解析出磁化强度和数量。此外,我们利用磁偶极子的理论模型来验证该方法的可靠性。在癌胚抗原检测方面,与光学检测方法相比,原子磁力计的检测限低至约 0.01ng/mL,增强倍数为 100 倍,且比其他磁性检测方法具有更简单的机制。总之,这些结果为原子磁力计量子测量技术在智能诊断和治疗中的潜在应用提供了有价值的见解。

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