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Rapid Nanoprobe Signal Enhancement by In Situ Gold Nanoparticle Synthesis
Published on: March 7, 2018
Ultrasensitive electrochemiluminescence immunosensor based on luminol functionalized gold nanoparticle labeling
Dayong Tian1, Chunfeng Duan, Wei Wang
1CAS Key Laboratory of Soft Matter Chemistry, Department of Chemistry, University of Science and Technology of China, Jinzhailv 96#, Hefei, Anhui 230026, PR China.
Insights
This study presents a highly sensitive electrochemiluminescence (ECL) immunosensor for detecting human immunoglobulin G (hIgG). The novel method utilizes luminol-functionalized gold nanoparticles (AuNPs) for enhanced signal amplification, achieving a detection limit of 1.0 pg/mL.
Area of Science:
- Analytical Chemistry
- Biotechnology
- Nanotechnology
Background:
- Development of ultrasensitive detection methods for biomarkers like human immunoglobulin G (hIgG) is crucial for diagnostics.
- Existing chemiluminescence immunoassay methods often face limitations in sensitivity, stability, and complexity.
Purpose of the Study:
- To develop an ultrasensitive electrochemiluminescence (ECL) immunosensor for detecting hIgG.
- To leverage luminol-functionalized gold nanoparticle (AuNP) labeling for signal amplification.
- To establish a simple, stable, and time-saving method for hIgG detection.
Main Methods:
- Fabrication of a sandwich-type immunocomplex on a streptavidin-coated AuNP modified electrode.
- Immobilization of biotin-conjugated goat-anti-human IgG primary antibody.
- Conjugation of hIgG antigen and luminol-functionalized AuNP-labeled secondary antibody.
- ECL measurement using a double-step potential in a carbonate buffer with H(2)O(2).
Main Results:
- The developed ECL immunosensor achieved an ultrasensitive detection limit of 1.0 pg/mL for hIgG (S/N=3).
- The method demonstrated superior sensitivity compared to previously reported techniques for hIgG determination.
- The assay proved to be simple, stable, specific, and time-saving, avoiding complex procedures.
Conclusions:
- The luminol-functionalized AuNP-based ECL immunosensor offers a highly sensitive and efficient platform for hIgG detection.
- The amplification strategies involving AuNPs and the biotin-streptavidin system significantly enhance the ECL signal.
- The method shows excellent potential for practical application in detecting hIgG in human serum samples.
Abstract:
An ultrasensitive electrochemiluminescence (ECL) immunosensor based on luminol functionalized gold nanoparticle (AuNP) labeling was developed using human immunoglobulin G (hIgG) as a model analyte. The primary antibody biotin-conjugated goat-anti-human IgG was first immobilized on a streptavidin coated AuNP modified electrode, then the antigen (human IgG) and the luminol functionalized AuNP-labeled second antibody were conjugated successively to form a sandwich-type immunocomplex, i.e. immunosensor. ECL was carried out with a double-step potential in carbonate buffer solution containing 1.0 mmol/L H(2)O(2). Since thousand of luminol molecules were coated on the surface of AuNPs to realize labeling of multiple molecules with CL activity at a single antibody and the amplification of AuNPs and biotin-streptavidin system was utilized, luminol ECL signal could be enhanced greatly, finally resulting in extremely high sensitivity. The ECL method shows a detection limit of 1.0 pg/mL (S/N=3) for hIgG, which is superior to all previously reported methods for the determination of hIgG. Moreover, the proposed method is also simple, stable, specific, and time-saving, avoiding the complicated stripping procedure during CL detection and the uncontrollable synthesis of irregular nanoparticles compared with other chemiluminescence immunoassay based on AuNP labeling. Additionally, the labeling procedure is also superior to that of other reported multilabeling strategies, such as Ru complex-encapsulated polymer microspheres, and most of Ru complex-encapsulated liposomes in simplicity, stability, labeling property and practical applicability. Finally, the proposed method has been successfully applied to the detection of hIgG in human serums.
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