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Published on: April 23, 2013
Heterogeneous immunosensing using antigen and antibody monolayers on gold surfaces with electrochemical and scanning
Insights
This study introduces antibody and antigen immunosurfaces for immunoassays using electrochemical or scanning probe detection. Researchers controlled surface density and correlated atomic force microscopy imaging with electrochemical responses for sensitive detection.
Area of Science:
- Biomaterials Science
- Analytical Chemistry
- Surface Chemistry
Background:
- Immunoassays are crucial for detecting biomolecules.
- Developing controlled immunosurfaces enhances assay sensitivity and specificity.
- Heterogeneous immunoassays require robust detection elements.
Purpose of the Study:
- To develop and characterize antibody and antigen monolayer immunosurfaces.
- To investigate their utility in competitive heterogeneous immunoassays.
- To compare electrochemical and scanning probe detection methods.
Main Methods:
- Fabrication of mixed self-assembled monolayers with controlled immunoreagent density.
- Characterization of immunosurface structure and antibody dimensions using atomic force microscopy (AFM).
- Adaptation of electrochemical detection and comparison with AFM measurements.
Main Results:
- Surface epitope density was controllable over two orders of magnitude.
- AFM imaging revealed antibody dimensions and binding efficiency (22.8%).
- Electrochemical detection showed excellent correlation (R2=0.993) with AFM-measured binding.
Conclusions:
- Antibody and antigen immunosurfaces are effective detection elements.
- Both electrochemical and scanning probe detection methods correlate well.
- This work advances the development of sensitive immunoassays.
Abstract:
We report the use of antibody and antigen monolayer immunosurfaces as detection elements in a competitive heterogeneous immunoassay employing either electrochemical or scanning probe detection. Antibody or antigen monolayers were prepared by covalent attachment of the desired immunoreagent to a two-component self-assembled monolayer via amide linkages. More specifically, mixed monolayers of a carboxylic acid-terminated thiol (thioctic acid) and a methyl-terminated thiol (butanethiol) were used to control the surface epitope density. The microscopic structure of the resulting antibody and antigen arrays was characterized by AFM (atomic force microscopy). Individual, surface-confined rabbit IgG antibodies could be directly imaged in contact mode. The average height of the capture antibodies was found to be 7.1 nm; the average antibody diameter, after correcting for tip convolution effects, was determined to be between 7 and 10 nm. The surface epitope density could be varied over approximately 2 orders of magnitude by changing the composition of the mixed monolayer. AFM was also used to characterize the antibody-antigen binding characteristics of these immunosurfaces, and an average binding efficiency of 22.8% was measured for rabbit IgG antibody arrays. In the second part of this study, the electrochemical detection scheme originally developed by Heineman and co-workers was adapted to our system. A calibration data set was measured, and the linear least-squares correlation coefficient (R2) was found to be 0.993. Finally, the electrochemical and scanning probe detection modes were directly compared. We find an excellent correlation between the surface density of antibody-antigen complexes measured by AFM and the electrochemical response of the same immunosurfaces.
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