Laboratory for X-ray Nanoscience and Technologies, 5232 Villigen, Switzerland.
Swiss Nanoscience Institute, University of Basel, 4056 Basel, Switzerland.
ACS Sens. 2024 May 24;9(5):2455-2464. doi: 10.1021/acssensors.4c00153. Epub 2024 Apr 30.
In this study, we demonstrate whole blood immunoassays using a microfluidic device optimized for conducting rapid and multiplexed fluorescence-linked immunoassays. The device is capable of handling whole blood samples without any preparatory treatment. The three-dimensional channels in poly(methyl methacrylate) are designed to passively load bodily fluids and, due to their linearly tapered profile, facilitate size-dependent immobilization of biofunctionalized particles. The channel geometry is optimized to allow for the unimpeded flow of cellular constituents such as red blood cells (RBCs). Additionally, to make the device easier to operate, the biofunctionalized particles are pretrapped in a first step, and the channel is dried under vacuum, after which it can be loaded with the biological sample. This novel approach and design eliminated the need for traditionally laborious steps such as filtering, incubation, and washing steps, thereby substantially simplifying the immunoassay procedures. Moreover, by leveraging the shallow device dimensions, we show that sample loading to read-out is possible within 5 min. Our results also show that the presence of RBCs does not compromise the sensitivity of the assays when compared to those performed in a pure buffer solution. This highlights the practical adaptability of the device for simple and rapid whole-blood assays. Lastly, we demonstrate the device's multiplexing capability by pretrapping particles of different sizes, each functionalized with a different antigen, thus enabling the performance of multiplexed on-chip whole-blood immunoassays, showcasing the device's versatility and effectiveness toward low-cost, simple, and multiplexed sensing of biomarkers and pathogens directly in whole blood.
在本研究中,我们展示了一种使用微流控设备进行全血免疫分析的方法,该设备经过优化,可用于快速进行多重荧光免疫分析。该设备能够处理未经任何预处理的全血样本。聚甲基丙烯酸甲酯中的三维通道被设计用于被动加载体液,并且由于其线性渐缩的形状,有利于生物功能化颗粒的尺寸依赖性固定化。通道几何形状经过优化,可允许细胞成分(如红细胞 (RBC))无障碍地流动。此外,为了使设备更易于操作,在第一步中预先捕获生物功能化颗粒,并在真空下干燥通道,然后可以用生物样品加载通道。这种新方法和设计消除了传统上繁琐的步骤,例如过滤、孵育和洗涤步骤,从而大大简化了免疫分析程序。此外,通过利用浅的设备尺寸,我们表明,与在纯缓冲溶液中进行的分析相比,在 5 分钟内即可完成样品加载和读出。我们的结果还表明,与在纯缓冲溶液中进行的分析相比,红细胞的存在并不影响分析的灵敏度。这突出了该设备在简单快速的全血分析中的实际适应性。最后,我们通过预先捕获不同尺寸的颗粒来展示设备的多重检测能力,每个颗粒都用不同的抗原进行了功能化,从而能够在芯片上进行多重全血免疫分析,展示了该设备在低成本、简单和多重生物标志物和病原体的直接全血检测方面的多功能性和有效性。