Department of Electrical and Computer Engineering, University of Minnesota, Minneapolis, Minnesota 55455, United States.
Department of Chemical Engineering and Material Science, University of Minnesota, Minneapolis, Minnesota 55455, United States.
ACS Appl Mater Interfaces. 2021 Feb 24;13(7):7966-7976. doi: 10.1021/acsami.0c21040. Epub 2021 Feb 10.
Nowadays, there is an increasing demand for more accessible routine diagnostics for patients with respect to high accuracy, ease of use, and low cost. However, the quantitative and high accuracy bioassays in large hospitals and laboratories usually require trained technicians and equipment that is both bulky and expensive. In addition, the multistep bioassays and long turnaround time could severely affect the disease surveillance and control especially in pandemics such as influenza and COVID-19. In view of this, a portable, quantitative bioassay device will be valuable in regions with scarce medical resources and help relieve burden on local healthcare systems. Herein, we introduce the MagiCoil diagnostic device, an inexpensive, portable, quantitative, and rapid bioassay platform based on the magnetic particle spectrometer (MPS) technique. MPS detects the dynamic magnetic responses of magnetic nanoparticles (MNPs) and uses the harmonics from oscillating MNPs as metrics for sensitive and quantitative bioassays. This device does not require trained technicians to operate and employs a fully automatic, one-step, and wash-free assay with a user friendly smartphone interface. Using a streptavidin-biotin binding system as a model, we show that the detection limit of the current portable device for streptavidin is 64 nM (equal to 5.12 pmole). In addition, this MPS technique is very versatile and allows for the detection of different diseases just by changing the surface modifications on MNPs. Although MPS-based bioassays show high sensitivities as reported in many literatures, at the current stage, this portable device faces insufficient sensitivity and needs further improvements. It is foreseen that this kind of portable device can transform the multistep, laboratory-based bioassays to one-step field testing in nonclinical settings such as schools, homes, offices, etc.
如今,人们对患者的常规诊断提出了更高的准确性、易用性和低成本要求。然而,大型医院和实验室中的定量和高精度生物分析通常需要经过培训的技术人员和既庞大又昂贵的设备。此外,多步骤的生物分析和较长的周转时间可能会严重影响疾病监测和控制,尤其是在流感和 COVID-19 等大流行期间。有鉴于此,一种便携式、定量的生物分析设备将在医疗资源匮乏的地区具有很高的价值,并有助于减轻当地医疗系统的负担。在这里,我们介绍 MagiCoil 诊断设备,这是一种基于磁性粒子光谱仪 (MPS) 技术的廉价、便携、定量和快速生物分析平台。MPS 检测磁性纳米粒子 (MNP) 的动态磁响应,并使用振荡 MNP 的谐波作为敏感和定量生物分析的指标。该设备不需要经过培训的技术人员来操作,采用全自动、一步法和免洗分析,并具有用户友好的智能手机界面。我们使用链霉亲和素-生物素结合系统作为模型,展示了当前便携式设备检测链霉亲和素的检测限为 64 nM(相当于 5.12 pmole)。此外,这种 MPS 技术非常通用,只需改变 MNP 的表面修饰,就可以检测不同的疾病。尽管基于 MPS 的生物分析如许多文献所报道的那样具有很高的灵敏度,但在当前阶段,这种便携式设备面临灵敏度不足的问题,需要进一步改进。可以预见,这种便携式设备可以将多步骤的、基于实验室的生物分析转变为非临床环境(如学校、家庭、办公室等)中的一步现场测试。