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1.
Sensors (Basel) ; 24(13)2024 Jul 03.
Article in English | MEDLINE | ID: mdl-39001098

ABSTRACT

The quartz tuning fork (QTF) is a promising instrument for biosensor applications due to its advanced properties such as high sensitivity to physical quantities, cost-effectiveness, frequency stability, and high-quality factor. Nevertheless, the fork's small size and difficulty in modifying the prongs' surfaces limit its wide use in experimental research. Our study presents the development of a QTF immunosensor composed of three active layers: biocompatible natural melanin nanoparticles (MNPs), glutaraldehyde (GLU), and anti-IgG layers, for the detection of immunoglobulin G (IgG). Frequency shifts of QTFs after MNP functionalization, GLU activation, and anti-IgG immobilization were measured with an Asensis QTF F-master device. Using QTF immunosensors that had been modified under optimum conditions, the performance of QTF immunosensors for IgG detection was evaluated. Accordingly, a finite element method (FEM)-based model was produced using the COMSOL Multiphysics software program (COMSOL License No. 2102058) to simulate the effect of deposited layers on the QTF resonance frequency. The experimental results, which demonstrated shifts in frequency with each layer during QTF surface functionalization, corroborated the simulation model predictions. A modelling error of 0.05% was observed for the MNP-functionalized QTF biosensor compared to experimental findings. This study validated a simulation model that demonstrates the advantages of a simulation-based approach to optimize QTF biosensors, thereby reducing the need for extensive laboratory work.


Subject(s)
Biosensing Techniques , Immunoglobulin G , Melanins , Nanoparticles , Quartz , Immunoglobulin G/chemistry , Immunoglobulin G/immunology , Biosensing Techniques/methods , Biosensing Techniques/instrumentation , Nanoparticles/chemistry , Melanins/chemistry , Quartz/chemistry , Immunoassay/methods , Immunoassay/instrumentation , Computer Simulation , Antibodies, Anti-Idiotypic/immunology , Antibodies, Anti-Idiotypic/chemistry , Humans
2.
Mikrochim Acta ; 191(8): 453, 2024 07 06.
Article in English | MEDLINE | ID: mdl-38970675

ABSTRACT

An electrochemical biosensor has been developed for detection of Escherichia coli O157 by integrating lateral flow with screen-printed electrodes. The screen-printed electrodes were attached under the lateral flow detection line, and organic-inorganic nanoflowers prepared from E. coli O157-specific antibodies as an organic component were attached to the lateral flow detection line. In the presence of E. coli O157, an organic-inorganic nanoflower-E. coli O157-antimicrobial peptide-labelled ferrocene sandwich structure is formed on the lateral flow detection line. Differential pulse voltammetry is applied using a smartphone-based device to monitor ferrocene on the detection line. The resulting electrochemical biosensor could specifically detect E. coli O157 with a limit of detection of 25 colony-forming units mL-1. Through substitution of antibodies of organic components in organic-inorganic nanoflowers, biosensors have great potential for the detection of other pathogens in biomedical research and clinical diagnosis.


Subject(s)
Biosensing Techniques , Electrochemical Techniques , Escherichia coli O157 , Escherichia coli O157/isolation & purification , Escherichia coli O157/immunology , Biosensing Techniques/methods , Immunoassay/methods , Immunoassay/instrumentation , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Limit of Detection , Nanostructures/chemistry , Electrodes , Ferrous Compounds/chemistry , Antibodies, Immobilized/immunology , Metallocenes/chemistry , Antibodies, Bacterial/chemistry , Antibodies, Bacterial/immunology , Antimicrobial Peptides/chemistry
3.
Biosens Bioelectron ; 262: 116553, 2024 Oct 15.
Article in English | MEDLINE | ID: mdl-39018977

ABSTRACT

A spatial-resolved and self-calibrated photoelectrochemical (PEC) biosensor has been fabricated by a multifunctional CeO2/CdS heterostructure, achieving portable and sensitive detection of carcinoembryonic antigen (CEA) using a homemade 3D printing device. The CeO2/CdS heterostructure with matched band structure is prepared to construct the dual-photoelectrodes to improve the PEC response of CeO2. In particular, as the photoactive nanomaterial, the CeO2 also plays the role of peroxidase mimetic nanozymes. Therefore, the catalytic performance of CeO2 with different morphologies (e.g., nano-cubes, nano-rods and nano-octahedra) have been studied, and CeO2 nano-cubes (c-CeO2) achieve the optimal catalytic activity. Upon introducing CEA, the sandwich-type immunocomplex is formed in the microplate using GOx-AuNPs-labeled second antibody as detection antibody. As a result, H2O2 can be produced from the catalytic oxidization of glucose substrate by GOx, which is further catalyzed by CeO2 to form •OH, thus in situ etching CdS and decreasing the photocurrents. The self-calibration is achieved by the dual-channel photoelectrodes on the homemade 3D printing device to obtain the photocurrents ratio, thus effectively normalizing the fluctuations of external factors to enhance the accuracy. This integrated biosensor with a detection limit as low as 0.057 ng mL-1 provides a promising way for ultrasensitive immunoassay in clinic application in complex environments.


Subject(s)
Biosensing Techniques , Cadmium Compounds , Carcinoembryonic Antigen , Cerium , Electrochemical Techniques , Printing, Three-Dimensional , Sulfides , Biosensing Techniques/instrumentation , Cerium/chemistry , Immunoassay/instrumentation , Immunoassay/methods , Carcinoembryonic Antigen/blood , Cadmium Compounds/chemistry , Sulfides/chemistry , Humans , Limit of Detection , Gold/chemistry , Antibodies, Immobilized/chemistry , Metal Nanoparticles/chemistry
4.
J Vis Exp ; (208)2024 Jun 28.
Article in English | MEDLINE | ID: mdl-39007561

ABSTRACT

Quantum dots, also known as semiconductor nanocrystals, are novel fluorescent labels for biological imaging and sensing. However, quantum dot-antibody conjugates with small dimensions (~10 nm), prepared through laborious purification procedures, exhibit limited sensitivity in detecting certain trace disease markers using lateral flow immunoassay strips. Herein, we present a method for the preparation of quantum dot nanobeads (QDNB) using a one-step emulsion evaporation method. Using the as-prepared QDNB, a fluorescent lateral flow immunoassay was fabricated to detect disease biomarkers using C-reactive protein (CRP) as an example. Unlike single quantum dot nanoparticles, quantum dot nanobead-antibody conjugates are more sensitive as immunoassay labels due to signal amplification by encapsulating hundreds of quantum dots in one polymer composite nanobead. Moreover, the larger size of QDNBs facilitates easier centrifugation separation when conjugating QDNBs with antibodies. The fluorescent lateral flow immunoassay based on QDNBs was fabricated, and the CRP concentration in the sample was measured in 15 min. The test results can be qualitatively assessed under UV light illumination and quantitatively measured using a fluorescent reader within 15 min.


Subject(s)
C-Reactive Protein , Quantum Dots , Quantum Dots/chemistry , Immunoassay/methods , Immunoassay/instrumentation , C-Reactive Protein/analysis , Humans , Fluorescent Dyes/chemistry
5.
Lab Chip ; 24(15): 3651-3657, 2024 Jul 23.
Article in English | MEDLINE | ID: mdl-38952211

ABSTRACT

Paper-based rapid diagnostic tests (RDTs) are an essential component of modern healthcare, particularly for the management of infectious diseases. Despite their utility, these capillary-driven RDTs are compromised by high failure rates, primarily caused by user error. This limits their utility in complex assays that require multiple user operations. Here, we demonstrate how this issue can be directly addressed through continuous electrochemical monitoring of reagent flow inside an RDT using embedded graphenized electrodes. Our method relies on applying short voltage pulses and measuring variations in capacitive discharge currents to precisely determine the flow times of injected samples and reagents. This information is reported to the user, guiding them through the testing process, highlighting failure cases and ultimately decreasing errors. Significantly, the same electrodes can be used to quantify electrochemical signals from immunoassays, providing an integrated solution for both monitoring assays and reporting results. We demonstrate the applicability of this approach in a serology test for the detection of anti-SARS-CoV-2 IgG in clinical serum samples. This method paves the way towards "smart" RDTs able to continuously monitor the testing process and improve the robustness of point-of-care diagnostics.


Subject(s)
COVID-19 , Electrochemical Techniques , Paper , SARS-CoV-2 , Humans , Electrochemical Techniques/instrumentation , Electrochemical Techniques/methods , SARS-CoV-2/isolation & purification , SARS-CoV-2/immunology , COVID-19/diagnosis , COVID-19/blood , COVID-19/virology , Immunoglobulin G/blood , Immunoglobulin G/analysis , Antibodies, Viral/blood , Antibodies, Viral/immunology , Electrodes , Immunoassay/instrumentation , Immunoassay/methods , Rapid Diagnostic Tests
6.
Biosens Bioelectron ; 262: 116547, 2024 Oct 15.
Article in English | MEDLINE | ID: mdl-38968775

ABSTRACT

5-formylcytosine (5 fC) and 5-carboxylcytosine (5caC) serve as key intermediates in DNA demethylation process with significant implications for gene regulation and disease progression. In this study, we introduce a novel electrochemical sensing platform specifically designed for the sensitive and selective detection of 5 fC and 5caC in DNA. Protein A-modified magnetic beads (ProtA-MBs) coupled with specific antibodies facilitate the immunorecognition and enrichment of these modified bases. Signal amplification is achieved through several chemical reactions involving the interaction between N3-kethonaxl and guanine, copper-free click chemistry for the attachment of dibenzocyclooctyne (DBCO)-Biotin, and the subsequent recognition by streptavidin-conjugated horseradish peroxidase (SA-HRP). The assay's readout is performed on a disposable laser-induced graphene (LIG) electrode, modified with the bead-antibody-DNA complex in a magnetic field, and analyzed using differential pulse voltammetry in a system employing hydroquinone (HQ) as the redox mediator and H2O2 as the substrate. This immunosensor displayed excellent sensitivity, with detection limits of 14.8 fM for 5 fC across a 0.1-1000 pM linear range and 87.4 fM for 5caC across a 0.5-5000 pM linear range, and maintained high selectivity even in the presence of interferences from other DNA modifications. Successful application in quantifying 5 fC and 5caC in genomic DNA from cell extracts, with recovery rates between 97.7% to 102.9%, underscores its potential for clinical diagnostics. N3-kethoxal was used for the first time in an electrochemical sensor. This work not only broadens the toolkit for detecting DNA modifications but also provides a fresh impetus for the development of point-of-care testing (POCT) technologies.


Subject(s)
Biosensing Techniques , Cytosine , DNA , Electrochemical Techniques , Limit of Detection , DNA/chemistry , Electrochemical Techniques/methods , Cytosine/chemistry , Cytosine/analogs & derivatives , Humans , Immunoassay/methods , Immunoassay/instrumentation , Graphite/chemistry
7.
Biosens Bioelectron ; 262: 116556, 2024 Oct 15.
Article in English | MEDLINE | ID: mdl-38996596

ABSTRACT

The multiple-readout capability of multimodal detection enhances the flexibility, reliability, and accuracy of lateral flow immunoassay (LFIA). The conjugation of two different metal-organic frameworks (MOFs) as a new-generation composite material offers extraordinary opportunities for developing multimodal LFIA. It is anticipated to compensate limitations of traditional single colorimetric signal LFIA and improve the analysis performance. Herein, an ultra-bright fluorescent AIE-MOF was proposed and coupled with an in-situ growth of Prussian blue (PB) nanoparticles strategy to obtain a novel multimodal signal tracer (AIE-MOF@PB). Thereafter, it was successfully applied to develop the multimodal LFIA platform for the detection of nitrofurazone metabolites. The synergy of AIE-MOF and PB endows AIE-MOF@PB with superb water dispersibility, robust fluorescence emission, brilliant colorimetric signal, marvelous photothermal conversion, and enhanced antibody coupling efficiency, all of which facilitate a highly sensitive triple-readout LFIA platform. The detection sensitivity improved by at least 5-fold compared with the colloidal gold-based LFIA. This work not only inspires the rational design of aggregation-induced emission luminogens (AIEgen)-based complex materials but also highlights the promising potential in flexible point-of-care applications.


Subject(s)
Biosensing Techniques , Limit of Detection , Metal-Organic Frameworks , Nitrofurazone , Metal-Organic Frameworks/chemistry , Immunoassay/methods , Immunoassay/instrumentation , Biosensing Techniques/methods , Nitrofurazone/analysis , Nitrofurazone/chemistry , Humans , Ferrocyanides/chemistry , Colorimetry/methods , Fluorescent Dyes/chemistry
8.
Biosens Bioelectron ; 262: 116563, 2024 Oct 15.
Article in English | MEDLINE | ID: mdl-39013359

ABSTRACT

Early and rapid diagnostic of acute myocardial infarction (AMI) during its developing stage is crucial due to its high fatality rate. Heart-type fatty acid binding protein (h-FABP) is an ideal biomarker for the quantitative diagnosis of AMI, surpassing traditional markers such as myoglobin, creatine phosphokinase-MB, and troponin in terms of sensitivity, specificity, and prognostic value. To obtain diagnostic and prognostic information, a precise and fully quantitative measurement of h-FABP is essential, typically achieved through an immunosorbent assay like the enzyme-linked immunosorbent assay. Nevertheless, this method has several limitations, including extended detection time, complex assay procedures, the necessity for skilled technicians, and challenges in implementing automated detection. This research introduces a novel biosensor, utilizing aggregation-induced emission nanoparticles (AIENPs) and integrated with a digital microfluidic (DMF) workstation, designed for the sensitive, rapid, and automated detection of h-FABP in low-volume serum samples. AIENPs and magnetic beads in nanoscale were served as the capture particles and the fluorescent probe, which were linked covalently to anti-h-FABP antibodies respectively. The approach was based on a sandwich immunoassay and performed on a fully automated DMF workstation with assay time by 15 min. We demonstrated the determination of h-FABP in serum samples with detection limit of 0.14 ng/mL using this biosensor under optimal condition. Furthermore, excellent correlations (R2 = 0.9536, n = 50) were obtained between utilizing this biosensor and commercialized ELISA kits in clinical serum detecting. These results demonstrate that our flexible and reliable biosensor is suitable for direct integration into clinical diagnostics, and it is expected to be promising diagnostic tool for early detection and screening tests as well as prognosis evaluation for AMI patients.


Subject(s)
Biosensing Techniques , Fatty Acid Binding Protein 3 , Myocardial Infarction , Nanoparticles , Biosensing Techniques/instrumentation , Humans , Fatty Acid Binding Protein 3/blood , Myocardial Infarction/diagnosis , Myocardial Infarction/blood , Nanoparticles/chemistry , Limit of Detection , Biomarkers/blood , Fatty Acid-Binding Proteins/blood , Fatty Acid-Binding Proteins/analysis , Immunoassay/methods , Immunoassay/instrumentation , Microfluidics/methods , Equipment Design , Antibodies, Immobilized/chemistry , Enzyme-Linked Immunosorbent Assay
9.
Lab Chip ; 24(14): 3536-3545, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38946347

ABSTRACT

Early-stage diagnosis of prostatic carcinoma is essential for successful treatment and, thus, significant prognosis improvement. In laboratory practice, the standard non-invasive diagnostic approach is the immunochemical detection of the associated biomarker, prostate-specific antigen (PSA). Ultrasensitive detection of PSA is essential for both diagnostic and recurrence monitoring purposes. To achieve exceptional sensitivity, we have developed a microfluidic device with a flow-through cell for single-molecule analysis using photon-upconversion nanoparticles (UCNPs) as a detection label. For this purpose, magnetic microparticles (MBs) were first optimized for the capture and preconcentration of PSA and then used to implement a bead-based upconversion-linked immunoassay (ULISA) in the microfluidic device. The digital readout based on counting single nanoparticle-labeled PSA molecules on MBs enabled a detection limit of 1.04 pg mL-1 (36 fM) in 50% fetal bovine serum, which is an 11-fold improvement over the respective analog MB-based ULISA. The microfluidic technique conferred several other advantages, such as easy implementation and the potential for achieving high-throughput analysis. Finally, it was proven that the microfluidic setup is suitable for clinical sample analysis, showing a good correlation with a reference electrochemiluminescence assay (recovery rates between 97% and 105%).


Subject(s)
Prostate-Specific Antigen , Prostate-Specific Antigen/analysis , Prostate-Specific Antigen/blood , Humans , Microfluidic Analytical Techniques/instrumentation , Male , Nanoparticles/chemistry , Immunoassay/instrumentation , Immunoassay/methods , Limit of Detection , Prostatic Neoplasms/diagnosis , Prostatic Neoplasms/blood
10.
Biosens Bioelectron ; 260: 116436, 2024 Sep 15.
Article in English | MEDLINE | ID: mdl-38824701

ABSTRACT

A mid-infrared label-free immunoassay-based biosensor is an effective device to help identify and quantify biomolecules. This biosensor employs a surface-enhanced infrared absorption spectroscopy, which is a highly potent sensing technique for detecting minute quantities of analytes. In this study, a biosensor was constructed using a metamaterial absorber, which facilitated strong coupling effects. For maximum coupling effect, it is necessary to enhance the near-field intensity and the spatial and spectral overlap between the optical cavity resonance and the vibrational mode of the analyte. Due to significant peak splitting, conventional baseline correction methods fail to adequately analyze such a coupling system. Therefore, we employed a coupled harmonic oscillation model to analyze the spectral distortion resulting from the peak splitting induced by the strong coupling effect. The proposed biosensor with a thrombin-binding aptamer-based immunoassay could achieve a limit of detection of 267.4 pM, paving the way for more efficient protein detection in clinical practice.


Subject(s)
Biosensing Techniques , Limit of Detection , Biosensing Techniques/methods , Immunoassay/methods , Immunoassay/instrumentation , Humans , Aptamers, Nucleotide/chemistry , Equipment Design , Spectrophotometry, Infrared , Proteins/analysis , Thrombin/analysis
11.
Sensors (Basel) ; 24(12)2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38931556

ABSTRACT

This paper reports a rapid and sensitive sensor for the detection and quantification of the COVID-19 N-protein (N-PROT) via an electrochemical mechanism. Single-frequency electrochemical impedance spectroscopy was used as a transduction method for real-time measurement of the N-PROT in an immunosensor system based on gold-conjugate-modified carbon screen-printed electrodes (Cov-Ag-SPE). The system presents high selectivity attained through an optimal stimulation signal composed of a 0.0 V DC potential and 10 mV RMS-1 AC signal at 100 Hz over 300 s. The Cov-Ag-SPE showed a log response toward N-PROT detection at concentrations from 1.0 ng mL-1 to 10.0 µg mL-1, with a 0.977 correlation coefficient for the phase (θ) variation. An ML-based approach could be created using some aspects observed from the positive and negative samples; hence, it was possible to classify 252 samples, reaching 83.0, 96.2 and 91.3% sensitivity, specificity, and accuracy, respectively, with confidence intervals (CI) ranging from 73.0 to 100.0%. Because impedance spectroscopy measurements can be performed with low-cost portable instruments, the immunosensor proposed here can be applied in point-of-care diagnostics for mass testing, even in places with limited resources, as an alternative to the common diagnostics methods.


Subject(s)
Biosensing Techniques , COVID-19 , Dielectric Spectroscopy , Gold , SARS-CoV-2 , COVID-19/diagnosis , COVID-19/virology , Biosensing Techniques/methods , Biosensing Techniques/instrumentation , Humans , SARS-CoV-2/isolation & purification , SARS-CoV-2/immunology , Dielectric Spectroscopy/instrumentation , Dielectric Spectroscopy/methods , Gold/chemistry , Electrodes , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Immunoassay/methods , Immunoassay/instrumentation , Coronavirus Nucleocapsid Proteins/immunology , Coronavirus Nucleocapsid Proteins/analysis , Carbon/chemistry , Phosphoproteins/analysis
12.
Sci Rep ; 14(1): 14154, 2024 06 19.
Article in English | MEDLINE | ID: mdl-38898088

ABSTRACT

Earlier access to patients' biomarker status could transform disease management. However, gold-standard techniques such as enzyme-linked immunosorbent assays (ELISAs) are typically not deployed at the point-of-care due to their cumbersome instrumentation and complexity. Electrochemical immunosensors can be disruptive in this sector with their small size and lower cost but, without further modifications, the performance of these sensors in complex media (e.g., blood) has been limited. This paper presents a low-cost fluidic accessory fabricated using widely accessible materials and processes for boosting sensor sensitivity through confinement of the detection media next to the electrode surface. Liquid confinement first highlighted a spontaneous reaction between the pseudoreference electrode and ELISA detection substrate 3,3',5,5'-tetramethylbenzidine (TMB) that decreases the amount of oxTMB available for detection. Different strategies are investigated to limit this and maximize reliability. Next, flow cell integration during the signal amplification step of sensor preparation was shown to substantially enhance the detection of cytokine interleukin-6 (IL-6) with the best sensitivity boost recorded for fresh human plasma (x7 increase compared to x5.8 in purified serum and x5.5 in PBS). The flow cell requires no specialized equipment and can be seamlessly integrated with commercial sensors, making an ideal companion for electrochemical signal enhancement.


Subject(s)
Electrochemical Techniques , Humans , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Immunoassay/methods , Immunoassay/instrumentation , Biosensing Techniques/methods , Biosensing Techniques/instrumentation , Electrodes , Enzyme-Linked Immunosorbent Assay/methods , Interleukin-6/blood , Interleukin-6/analysis , Benzidines/chemistry
13.
Food Chem ; 455: 139844, 2024 Oct 15.
Article in English | MEDLINE | ID: mdl-38823134

ABSTRACT

In this study, a sensitive dual-signal electrochemiluminescence (ECL) immunosensor was developed for okadaic acid (OA) detection utilizing copper nanoclusters (CuNCs) and Ru(bpy)32+-doped silica nanoparticles (RuSiNPs). Interestingly, the CuNCs could simultaneously enhance both cathodic (-0.95 V) and anodic (+1.15 V) ECL signals of RuSiNPs, forming a dual-signal ECL sensing platform. Further, RuSiNPs@CuNCs were used as immunomarkers by covalently conjugating them with an anti-OA monoclonal antibody (mAb) to form probes. Finally, dual ECL signals of the immunosensor were fabricated and showed good linear relationships with OA concentrations in the range of 0.05-70 ng mL-1, having a median inhibitory concentration (IC50) of 1.972 ng mL-1 and a limit of detection of 0.039 ng mL-1. Moreover, the constant ratio of the cathodic and anodic ECL peaks achieved self-calibration of the detection signal and improved the reliability of the results. Finally, we successfully applied the ECL sensor to detect OA in spiked oyster samples.


Subject(s)
Copper , Electrochemical Techniques , Luminescent Measurements , Okadaic Acid , Silicon Dioxide , Copper/chemistry , Silicon Dioxide/chemistry , Luminescent Measurements/methods , Luminescent Measurements/instrumentation , Okadaic Acid/analysis , Nanoparticles/chemistry , Animals , Biosensing Techniques , Limit of Detection , Immunoassay/methods , Immunoassay/instrumentation , Metal Nanoparticles/chemistry
14.
Biosens Bioelectron ; 261: 116469, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38850738

ABSTRACT

Despite high sensitivity of nanoparticle-on-mirror cavities, a crucial branch of plasmonic nanomaterials, complex preparation and readout processes limit their extensive application in biosensing. Alternatively, liquid metals (LMs) combining fluidity and excellent plasmonic characteristics have become potential candidates for constructing plasmonic nanostructures. Herein, we propose a microfluidic-integration strategy to construct LM-based immunoassay platform, enabling LM-based nanoplasmonic sensors to be used for point-of-care (POC) clinical biomarker detection. Flowable LM is introduced onto protein-coated Au nanoparticle monolayer to form a "mirror-on-nanoparticle" nanostructure, simplifying the fabrication process in the conventional nanoparticle-on-mirror cavities. When antibodies were captured by antigens coated on the Au nanoparticle monolayer, devices respond both thickness and refractive index change of biomolecular layers, outputting naked-eye readable signals with high sensitivity (limit of detection: ∼ 604 fM) and a broad dynamic range (6 orders). This new assay, which generates quantitative results in 30 min, allows for high-throughput, smartphone-based detection of SARS-CoV-2 antibodies against multiple variants in clinical serum or blood samples. These results establish an advanced avenue for POC testing with LM materials, and demonstrate its potential to facilitate diagnostics, surveillance and prevalence studies for various infectious diseases.


Subject(s)
Antibodies, Viral , Biosensing Techniques , COVID-19 , Gold , Metal Nanoparticles , Point-of-Care Systems , SARS-CoV-2 , Humans , SARS-CoV-2/immunology , SARS-CoV-2/isolation & purification , Gold/chemistry , Metal Nanoparticles/chemistry , Biosensing Techniques/instrumentation , COVID-19/diagnosis , COVID-19/blood , Antibodies, Viral/blood , Antibodies, Viral/immunology , Immunoassay/instrumentation , Immunoassay/methods , Limit of Detection , Lab-On-A-Chip Devices , Equipment Design , Point-of-Care Testing , Microfluidic Analytical Techniques/instrumentation , Smartphone
15.
Anal Chem ; 96(26): 10630-10638, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38912708

ABSTRACT

Paper-based lateral flow immunoassays (LFIAs) are cost-effective, portable, and simple methods for detection of diverse analytes, which however only provide qualitative or semiquantitative results and lack sufficient sensitivity. A combination of LFIA and electrochemical detection, namely, electrochemical lateral flow immunoassay (eLFIA), enables quantitative detection of analytes with high sensitivity, but the integration of external electrodes makes the system relatively expensive and unstable. Herein, the working, counter, and reference electrodes were prepared directly on the nitrocellulose membrane using screen printing, which remarkably simplified the structure of eLFIA and decreased the cost. Moreover, a horseradish peroxidase (HRP)-based electrochemical signal amplification strategy was used for further increasing the analytical sensitivity. HRP captured on the working electrode can catalyze the oxidation of tetramethylbenzidine (TMB) to form the TMB-TMBox precipitate on the electrode surface, which as an electrochemically active product can output an amplified current for quantification. We demonstrated that the eLFIA could detect low-abundant inflammatory biomarkers in human plasma samples with limits of detection of 0.17 and 0.54 pg mL-1 for interleukin-6 and C-reactive protein, respectively. Finally, a fully portable system was fabricated by integrating eLFIA with a flexible and wireless electrochemical workstation, realizing the point-of-care detection of interleukin-6.


Subject(s)
Biomarkers , C-Reactive Protein , Electrochemical Techniques , Electrodes , Interleukin-6 , Humans , Immunoassay/methods , Immunoassay/instrumentation , Electrochemical Techniques/instrumentation , Biomarkers/blood , Biomarkers/analysis , Interleukin-6/blood , Interleukin-6/analysis , C-Reactive Protein/analysis , Horseradish Peroxidase/chemistry , Horseradish Peroxidase/metabolism , Limit of Detection , Inflammation/blood , Inflammation/diagnosis , Benzidines
16.
Int J Biol Macromol ; 273(Pt 1): 132963, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38852725

ABSTRACT

Human chorionic gonadotropin (HCG), a vital protein for pregnancy determination and a marker for trophoblastic diseases, finds application in monitoring early pregnancy and ectopic pregnancy. This study presents an innovative approach employing electrochemical immunosensors for enhanced HCG detection, utilizing Anti-HCG antibodies and gold nanoparticles (AuNPs) in the sensor platform. Two sensor configurations were optimized: BSA/Anti-HCG/c-AuNPs/MEL/e-AuNPs/SPCE with [Fe(CN)6]3-/4- as a redox probe (1) and BSA/Anti-HCG/PPy/e-AuNPs/SPCE using polypyrrole (PPy) as a redox probe (2). The first sensor offers linear correlation in the 0.10-500.00 pg∙mL-1 HCG range, with a limit of detection (LOD) of 0.06 pg∙mL-1, sensitivity of 32.25 µA∙pg-1∙mL∙cm-2, RSD <2.47 %, and a recovery rate of 101.03-104.81 %. The second sensor widens the HCG detection range (40.00 fg∙mL-1-5.00 pg∙mL-1) with a LOD of 16.53 fg∙mL-1, ensuring precision (RSD <1.04 %) and a recovery range of 94.61-106.07 % in serum samples. These electrochemical immunosensors have transformative potential in biomarker detection, offering enhanced sensitivity, selectivity, and stability for advanced healthcare diagnostics.


Subject(s)
Biosensing Techniques , Chorionic Gonadotropin , Electrochemical Techniques , Gold , Limit of Detection , Metal Nanoparticles , Polymers , Pyrroles , Chorionic Gonadotropin/blood , Chorionic Gonadotropin/analysis , Chorionic Gonadotropin/immunology , Gold/chemistry , Humans , Metal Nanoparticles/chemistry , Electrochemical Techniques/methods , Biosensing Techniques/methods , Polymers/chemistry , Pyrroles/chemistry , Immunoassay/methods , Immunoassay/instrumentation , Ferricyanides/chemistry , Female
17.
Bioelectrochemistry ; 158: 108722, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38697015

ABSTRACT

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) diagnosis is the need of the hour, as cases are persistently increasing, and new variants are constantly emerging. The ever-changing nature of the virus leading to multiple variants, has brought an imminent need for early, accurate and rapid detection methods. Herein, we have reported the design and fabrication of Screen-Printed Electrodes (SPEs) with graphene oxide (GO) as working electrode and modified with specific antibodies for SARS-CoV-2 Receptor Binding Domain (RBD). Flexibility of design, and portable nature has made SPEs the superior choice for electrochemical analysis. The developed immunosensor can detect RBD as low as 0.83 fM with long-term storage capacity. The fabricated SPEs immunosensor was tested using a miniaturized portable device and potentiostat on 100 patient nasopharyngeal samples and corroborated with RT-PCR data, displayed 94 % sensitivity. Additionally, the in-house developed polyclonal antibodies detected RBD antigen of the mutated Omicron variant of SARS-CoV-2 successfully. We have not observed any cross-reactivity/binding of the fabricated immunosensor with MERS (cross-reactive antigen) and Influenza A H1N1 (antigen sharing common symptoms). Hence, the developed SPEs sensor may be applied for bedside point-of-care diagnosis of SARS-CoV-2 using miniaturized portable device, in clinical samples.


Subject(s)
Biosensing Techniques , COVID-19 , Electrodes , Graphite , SARS-CoV-2 , Graphite/chemistry , SARS-CoV-2/immunology , SARS-CoV-2/isolation & purification , SARS-CoV-2/genetics , Humans , COVID-19/diagnosis , COVID-19/virology , Biosensing Techniques/instrumentation , Biosensing Techniques/methods , Immunoassay/methods , Immunoassay/instrumentation , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Spike Glycoprotein, Coronavirus/immunology , Spike Glycoprotein, Coronavirus/analysis , Limit of Detection
18.
Methods Mol Biol ; 2804: 127-138, 2024.
Article in English | MEDLINE | ID: mdl-38753145

ABSTRACT

Within the vast field of medical biotechnology, the biopharmaceutical industry is particularly fast-growing and highly competitive, so reducing time and costs associated to process optimization becomes instrumental to ensure speed to market and, consequently, profitability. The manufacturing of biopharmaceutical products, namely, monoclonal antibodies (mAbs), relies mostly on mammalian cell culture processes, which are highly dynamic and, consequently, difficult to optimize. In this context, there is currently an unmet need of analytical methods that can be integrated at-line in a bioreactor, for systematic monitoring and quantification of key metabolites and proteins. Microfluidic-based assays have been extensively and successfully applied in the field of molecular diagnostics; however, this technology remains largely unexplored for Process Analytical Technology (PAT), despite holding great potential for the at-line measurement of different analytes in bioreactor processes, combining low reagent/molecule consumption with assay sensitivity and rapid turnaround times.Here, the fabrication and handling of a microfluidic cartridge for protein quantification using bead-based affinity assays is described. The device allows geometrical multiplexed immunodetection of specific protein analytes directly from bioreactor samples within 2.5 h and minimal hands-on time. As a proof-of-concept, quantification of Chinese hamster ovary (CHO) host cell proteins (HCP) as key impurities, IgG as product of interest, and lactate dehydrogenase (LDH) as cell viability marker was demonstrated with limits of detection (LoD) in the low ng/mL range. Negligible matrix interference and no cross-reactivity between the different immunoassays on chip were found. The results highlight the potential of the miniaturized analytical method for PAT at reduced cost and complexity in comparison with sophisticated instruments that are currently the state-of-the-art in this context.


Subject(s)
Cricetulus , CHO Cells , Animals , Antibodies, Monoclonal/immunology , Bioreactors , Microfluidic Analytical Techniques/instrumentation , Microfluidic Analytical Techniques/methods , Immunoassay/methods , Immunoassay/instrumentation , Microfluidics/methods , Microfluidics/instrumentation , Cricetinae
19.
Methods Mol Biol ; 2804: 103-115, 2024.
Article in English | MEDLINE | ID: mdl-38753143

ABSTRACT

In this chapter, we present the design and fabrication of a device and implementation of a protocol to realize increased efficiency of immunoassays within microtiter plates. The device, WellProbe, is a 3D-structured probe that can be used to deliver precise flows at the bottom of standard well plates to establish concentric areas of shear stress intensities using hydrodynamically confined flows. The protocols involve both operation and data analysis.


Subject(s)
Equipment Design , Immunoassay/methods , Immunoassay/instrumentation , Hydrodynamics , Microfluidic Analytical Techniques/instrumentation , Microfluidic Analytical Techniques/methods , Humans
20.
Biosens Bioelectron ; 259: 116355, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38754196

ABSTRACT

Coronavirus disease 2019 (COVID-19) is a highly contagious illness caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), resulting in a global health crisis. The primary diagnostic method for COVID-19 is quantitative reverse transcription PCR, which is time-consuming and requires expensive instrumentation. Here, we developed an electrochemical biosensor for detecting SARS-CoV-2 biomarkers using a 3D porous polyacrylamide/polyaniline hydrogel (PPG) electrode prepared by UV photopolymerization and in situ polymerization. The electrochemical immunosensor for detecting SARS-CoV-2 N protein via the immune sandwich principle demonstrated a lower detection limit of 42 pg/mL and comparable specificity to a commercial enzyme-linked immunosorbent assay, which was additionally validated in pseudoviruses. The electrochemical sensor for hydrogen peroxide showed a low detection limit of 0.5 µM and excellent selectivity, which was further confirmed in cancer cells under oxidative stress. The biomarkers of SARS-CoV-2 were successfully detected due to the signal amplification capability provided by 3D porous electrodes and the high sensitivity of the antigen-antibody specific binding. This study introduces a novel three-dimensional electrode with great potential for the early detection of SARS-CoV-2.


Subject(s)
Biosensing Techniques , COVID-19 , Electrochemical Techniques , Electrodes , Hydrogels , Hydrogen Peroxide , Limit of Detection , SARS-CoV-2 , Hydrogen Peroxide/chemistry , SARS-CoV-2/isolation & purification , SARS-CoV-2/immunology , Humans , Biosensing Techniques/instrumentation , Biosensing Techniques/methods , COVID-19/diagnosis , COVID-19/virology , Electrochemical Techniques/instrumentation , Electrochemical Techniques/methods , Hydrogels/chemistry , Coronavirus Nucleocapsid Proteins/analysis , Coronavirus Nucleocapsid Proteins/immunology , Phosphoproteins/analysis , Immunoassay/instrumentation , Immunoassay/methods
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