| Literature DB >> 32912236 |
Christoph Ruppert1,2,3, Lars Kaiser1,2,4, Lisa Johanna Jacob1,2, Stefan Laufer3, Matthias Kohl5,6, Hans-Peter Deigner7,8,9,10.
Abstract
Fast point-of-care (POC) diagnostics represent an unmet medical need and include applications such as lateral flow assays (LFAs) for the diagnosis of sepsis and consequences of cytokine storms and for the treatment of COVID-19 and other systemic, inflammatory events not caused by infection. Because of the complex pathophysiology of sepsis, multiple biomarkers must be analyzed to compensate for the low sensitivity and specificity of single biomarker targets. Conventional LFAs, such as gold nanoparticle dyed assays, are limited to approximately five targets-the maximum number of test lines on an assay. To increase the information obtainable from each test line, we combined green and red emitting quantum dots (QDs) as labels for C-reactive protein (CRP) and interleukin-6 (IL-6) antibodies in an optical duplex immunoassay. CdSe-QDs with sharp and tunable emission bands were used to simultaneously quantify CRP and IL-6 in a single test line, by using a single UV-light source and two suitable emission filters for readout through a widely available BioImager device. For image and data processing, a customized software tool, the MultiFlow-Shiny app was used to accelerate and simplify the readout process. The app software provides advanced tools for image processing, including assisted extraction of line intensities, advanced background correction and an easy workflow for creation and handling of experimental data in quantitative LFAs. The results generated with our MultiFlow-Shiny app were superior to those generated with the popular software ImageJ and resulted in lower detection limits. Our assay is applicable for detecting clinically relevant ranges of both target proteins and therefore may serve as a powerful tool for POC diagnosis of inflammation and infectious events.Entities:
Keywords: Conjugation chemistry; Duplex lateral flow assay; Image processing; Multiplexing; Nanoparticles; Point-of-care diagnostics; Quantum dots; R-package; Sandwich immunoassay; Shiny app
Mesh:
Substances:
Year: 2020 PMID: 32912236 PMCID: PMC7481553 DOI: 10.1186/s12951-020-00688-1
Source DB: PubMed Journal: J Nanobiotechnology ISSN: 1477-3155 Impact factor: 10.435
Fig. 1Illustration of a lateral flow sandwich immunoassay. Antibodies to CRP/IL-6 bound to the test line, and the control line with secondary antibody (anti-mouse/-goat)
Fig. 2Binding reaction on the lateral flow strip. a Model system: CRP/IL-6-Biotin conjugates bind streptavidin bound to the test line. b Sandwich immunoassay: antibodies to CRP/IL-6 bound to the test line. c Control line reaction with secondary antibody (anti-mouse)
Sample preparation and processing of LFAs
| Streptavidin assay | Sandwich assay 0–20 nM | Clinical range assay | |
|---|---|---|---|
| QD-antibody conjugate | 10 µL CANdot-530-anti-CRP; 10 µL CANdot-610-anti-IL-6, both undiluted | 10 µL Qdot-525-anti-CRP; 10 µL Qdot-605-anti-IL-6, both undiluted | 10 µL Qdot-525-anti-CRP, diluted 1:1 with 0.3 µg/mL anti-CRP (mouse); 5 µL Qdot-605-anti-IL-6, undiluted |
| LFA-test strips | Test line, polystreptavidin; control line, anti-mouse secondary antibody | Test line, anti CRP (rabbit)/anti IL-6 (goat); control line, anti-mouse- secondary antibody; membrane CN95 | Test line, anti CRP (rabbit)/anti IL-6 (goat); control line, anti-mouse- secondary antibody; membrane CN150 |
| Sample composition | 20 µL QD-conjugate 10 µL CRP/IL-6 (biotinylated), 0–20 nM in 1× PBS (pH 7.4) 70 µL running buffer | 20 µL QD conjugate 10 µL CRP/IL-6, 0–20 nM in 1× PBS (1% serum, pH 7.4) 70 µL running buffer | 15 µL QD conjugate 50 µL CRP (0–1000 nM)/IL-6, (0–60 pM) in 1× PBS (10% serum, pH 7.4) 55 µL running buffer |
| Assay time | 1 min incubation of sample mix 10 min run time 10 min drying Imaging ≤ 2 min | 1 min incubation of sample mix 10 min run time 10 min drying Imaging ≤ 2 min | 1 min incubation of sample mix 20 min run time 10 min drying Imaging ≤ 2 min |
Fig. 3Calibration curves of the LFA sandwich assay (0–20 nM)
Key measures for the sandwich LFA
| Sandwich assay 0–20 nM | Green channel | Red channel | ||
|---|---|---|---|---|
| Image processing software | ImageJ | MultiFlow app | ImageJ | MultiFlow app |
| LOB | Negative | 0.33 | Negative | 0.46 |
| LOD | 2.28 | 1.27 | 1.38 | 2.28 |
| LOQ | 11.12 | 5.52 | 9.49 | 7.33 |
| R2 of linear fit | 0.89 | 0.95 | 0.83 | 0.97 |
Fig. 4CRP/IL-6 duplex LFA strips (0–1000 nM CRP/0–60 pM IL-6); top, CRP-assay (readout 513–557 nm bandpass filter); bottom, IL-6-assay (readout 565–625 nm bandpass filter); cl control line, tl test line. Brightness and contrast were adjusted for better visibility of lines
Fig. 5Calibration curves of the clinical range LFA assay: CRP range, 0–1000 nM; IL-6 range, 0–60 pM
Key measures for the clinical range LFA
| Clinical range assay | Green channel | Red channel | ||
|---|---|---|---|---|
| Image processing software | ImageJ | MultiFlow app | ImageJ | MultiFlow app |
| LOB | 7.9 | 22.8 | 2.8 | Negative |
| LOD | 52.9 | 42.5 | 4.5 | 0.21 |
| LOQ | 556.4 | 527.7 | 15.3 | 16.4 |
| R2 of linear fit | 0.96 | 0.95 | 0.95 | 0.95 |
Fig. 6Screenshot of the MultiFlow-Shiny app: left, cropping and segmentation; right, result report generation