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Critical Comparison between Large and Mini Vertical Flow Immunoassay Platforms for Yersinia Pestis Detection
Jasmine Pramila Devadhasan1, Jian Gu1,2, Peng Chen1
1Center for Applied NanoBioscience and Medicine, College of Medicine, University of Arizona, Phoenix, Arizona 85004, United States.
Abstract:
Yersinia pestis is a Gram-negative bacterium that is the causative agent of plague and is widely recognized as a potential biological weapon. Due to the high fatality rate of plague when diagnosis is delayed, the development of rapid, sensitive, specific, and cost-effective methods is needed for its diagnosis. The Y. pestis low calcium response V (LcrV) protein has been identified as a potential microbial biomarker for the diagnosis of plague. In this paper, we present a highly sensitive, paper-based, vertical flow immunoassay (VFI) prototype for the detection of LcrV and the diagnosis of plague. An antigen-capture assay using monoclonal antibodies is employed to capture and detect the LcrV protein, using a colorimetric approach. In addition, the effect of miniaturizing the VFI device is explored based on two different sizes of VFI platforms, denoted as "large VFI" and "mini VFI." Also, a comparative analysis is performed between the VFI platform and a lateral flow immunoassay (LFI) platform to exhibit the improved assay sensitivity suitable for point-of-care (POC) diagnostics. The analytical sensitivity or limit of detection (LOD) in the mini VFI is approximately 0.025 ng/mL, that is, 10 times better than that of the large VFI platform or 80 times over a standard lateral flow configuration. The low LOD of the LcrV VFI appears to be highly suitable for testing clinical samples and potentially diagnosing plague at earlier time points. In addition, optimization of the gold nanoparticle (AuNP) concentration, nanomaterial plasmonic properties, and flow velocity analysis could improve the performance of the VFI. Furthermore, we developed automated image analysis software that shows potential for integrating the diagnostic system into a smartphone. These methods and findings demonstrate that the VFI platform is a highly sensitive device for detecting the LcrV and potentially many other biomarkers.
Insights
A new paper-based assay detects the plague biomarker LcrV protein. This rapid, sensitive vertical flow immunoassay (VFI) shows promise for early plague diagnosis at the point-of-care.
Area of Science:
- Biotechnology
- Microbiology
- Immunology
Background:
- * Yersinia pestis causes plague, a disease with high fatality if diagnosis is delayed.
- * Rapid, sensitive, specific, and cost-effective diagnostic methods are crucial.
- * The Yersinia pestis low calcium response V (LcrV) protein is a potential plague biomarker.
Purpose of the Study:
- * To develop a highly sensitive, paper-based vertical flow immunoassay (VFI) for Yersinia pestis LcrV protein detection.
- * To evaluate the performance of miniaturized VFI platforms for plague diagnosis.
- * To compare VFI sensitivity with traditional lateral flow immunoassay (LFI) for point-of-care applications.
Main Methods:
- * An antigen-capture assay utilizing monoclonal antibodies to detect LcrV protein via a colorimetric approach.
- * Development and testing of two VFI platform sizes: "large VFI" and "mini VFI."
- * Comparative analysis of VFI and LFI platforms, including limit of detection (LOD) determination.
Main Results:
- * The mini VFI achieved an analytical sensitivity (LOD) of approximately 0.025 ng/mL.
- * Mini VFI sensitivity was 10 times better than large VFI and 80 times better than standard LFI.
- * Automated image analysis software was developed for potential smartphone integration.
Conclusions:
- * The VFI platform demonstrates high sensitivity for LcrV detection, suitable for early plague diagnosis.
- * Miniaturized VFI offers improved sensitivity for point-of-care diagnostics.
- * The VFI technology has potential for detecting various biomarkers beyond LcrV.
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