Carrell Cody S, Wydallis Rachel M, Bontha Mridula, Boehle Katherine E, Beveridge J Ross, Geiss Brian J, Henry Charles S
Department of Chemistry, Colorado State University USA
Department of Computer Science, Colorado State University USA.
RSC Adv. 2019 Sep 17;9(50):29078-29086. doi: 10.1039/c9ra07106g. eCollection 2019 Sep 13.
Foodborne pathogens are responsible for hundreds of thousands of deaths around the world each year. Rapid screening of agricultural products for these pathogens is essential to reduce and/or prevent outbreaks and pinpoint contamination sources. Unfortunately, current detection methods are laborious, expensive, time-consuming and require a central laboratory. Therefore, a rapid, sensitive, and field-deployable pathogen-detection assay is needed. We previously developed a colorimetric sandwich immunoassay utilizing immuno-magnetic separation (IMS) and chlorophenol red-β-d-galactopyranoside for detection on a paper-based analytical device (μPAD); however, the assay required many sample preparation steps prior to the μPAD as well as laboratory equipment, which decreased user-friendliness for future end-users. As a step towards overcoming these limitations in resource-limited settings, we demonstrate a reusable 3D-printed rotational manifold that couples with disposable μPAD layers for semi-automated reagent delivery, washing, and detection in 65 minutes. After IMS to clean the sample, the manifold performs pipette-free reagent delivery and washing steps in a sequential order with controlled volumes, followed by enzymatic amplification and colorimetric detection using automated image processing to quantify color change. was used as the target pathogen in this project and was detected with the manifold in growth media and milk with detection limits of 4.4 × 10 and 6.4 × 10 CFU mL respectively. The manifold increases user friendliness and simplifies immunoassays resulting in a practical product for in-field use and commercialization.
食源性病原体每年在全球导致数十万例死亡。对农产品中的这些病原体进行快速筛查对于减少和/或预防疫情爆发以及查明污染源至关重要。不幸的是,目前的检测方法费力、昂贵、耗时且需要中央实验室。因此,需要一种快速、灵敏且可现场部署的病原体检测方法。我们之前开发了一种比色夹心免疫分析法,利用免疫磁分离(IMS)和氯酚红-β-D-吡喃半乳糖苷在纸基分析装置(μPAD)上进行检测;然而,该分析方法在μPAD之前需要许多样品制备步骤以及实验室设备,这降低了对未来终端用户的友好性。作为在资源有限环境中克服这些限制的一步,我们展示了一种可重复使用的3D打印旋转流路,它与一次性μPAD层耦合,用于在65分钟内进行半自动试剂输送、洗涤和检测。在进行IMS清洁样品后,流路按顺序进行无移液器的试剂输送和洗涤步骤,控制体积,随后进行酶扩增和比色检测,使用自动图像处理来量化颜色变化。在本项目中,[具体病原体名称未给出]被用作目标病原体,并使用该流路在生长培养基和牛奶中进行检测,检测限分别为4.4×10[具体数值未给出]和6.4×10[具体数值未给出]CFU/mL。该流路提高了用户友好性并简化了免疫分析,从而产生了一种适用于现场使用和商业化的实用产品。