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基于移动全息成像和深度学习的即时检测用定量颗粒凝集检测法。

Quantitative particle agglutination assay for point-of-care testing using mobile holographic imaging and deep learning.

机构信息

Electrical & Computer Engineering Department, University of California, Los Angeles, California 90095, USA.

California NanoSystems Institute (CNSI), University of California, Los Angeles, California 90095, USA.

出版信息

Lab Chip. 2021 Sep 14;21(18):3550-3558. doi: 10.1039/d1lc00467k.

Abstract

Particle agglutination assays are widely adopted immunological tests that are based on antigen-antibody interactions. Antibody-coated microscopic particles are mixed with a test sample that potentially contains the target antigen, as a result of which the particles form clusters, with a size that is a function of the antigen concentration and the reaction time. Here, we present a quantitative particle agglutination assay that combines mobile lens-free microscopy and deep learning for rapidly measuring the concentration of a target analyte; as its proof-of-concept, we demonstrate high-sensitivity C-reactive protein (hs-CRP) testing using human serum samples. A dual-channel capillary lateral flow device is designed to host the agglutination reaction using 4 μL of serum sample with a material cost of 1.79 cents per test. A mobile lens-free microscope records time-lapsed inline holograms of the lateral flow device, monitoring the agglutination process over 3 min. These captured holograms are processed, and at each frame the number and area of the particle clusters are automatically extracted and fed into shallow neural networks to predict the CRP concentration. 189 measurements using 88 unique patient serum samples were utilized to train, validate and blindly test our platform, which matched the corresponding ground truth concentrations in the hs-CRP range (0-10 μg mL) with an value of 0.912. This computational sensing platform was also able to successfully differentiate very high CRP concentrations (, >10-500 μg mL) from the hs-CRP range. This mobile, cost-effective and quantitative particle agglutination assay can be useful for various point-of-care sensing needs and global health related applications.

摘要

粒子聚集检测是一种广泛应用的免疫学检测方法,基于抗原-抗体相互作用。抗体包被的微观粒子与可能含有目标抗原的测试样本混合,结果是粒子形成簇,其大小是抗原浓度和反应时间的函数。在这里,我们提出了一种定量的粒子聚集检测方法,它结合了移动无透镜显微镜和深度学习,用于快速测量目标分析物的浓度;作为其概念验证,我们使用人血清样本演示了高灵敏度 C 反应蛋白(hs-CRP)检测。设计了双通道毛细管侧向流动装置,使用 4 μL 血清样本进行聚集反应,每个测试的材料成本为 1.79 美分。移动无透镜显微镜记录侧向流动装置的时变在线全息图,监测 3 分钟内的聚集过程。这些捕获的全息图经过处理,在每一帧中自动提取粒子簇的数量和面积,并将其输入浅层神经网络以预测 CRP 浓度。使用 88 个独特的患者血清样本进行了 189 次测量,用于训练、验证和盲目测试我们的平台,该平台在 hs-CRP 范围内(0-10 μg mL)与相应的地面真值浓度匹配, 值为 0.912。该移动、经济高效和定量的粒子聚集检测方法可用于各种即时护理传感需求和全球健康相关应用。

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