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An AC electrokinetic impedance immunosensor for rapid detection of tuberculosis
Haochen Cui1, Shanshan Li, Quan Yuan
1Department of Electrical Engineering and Computer Science, The University of Tennessee, Knoxville, TN 37996, USA. jaynewu@utk.edu.
Insights
This study introduces AC electrokinetic impedance sensing for detecting specific antibody binding. This rapid method shows promise for developing point-of-care diagnostic devices for tuberculosis detection.
Area of Science:
- Electrochemistry
- Biosensing
- Immunodiagnostics
Background:
- Specific macromolecule interactions, like antigen-antibody binding, are crucial for diagnostics.
- Conventional methods can be time-consuming and require specialized equipment.
Purpose of the Study:
- To develop and validate an AC electrokinetic impedance sensing method for detecting specific antibodies.
- To assess the method's sensitivity and potential for point-of-care applications in tuberculosis diagnostics.
Main Methods:
- Coating interdigitated electrodes with bacterial antigens.
- Applying an AC signal to serum samples and measuring impedance changes.
- Correlating impedance changes with the level of antibody binding.
Main Results:
- The AC electrokinetic impedance method successfully detected specific antibody binding in serum samples.
- Results were consistent with conventional ELISA methods.
- Achieved a limit of detection better than 10 ng mL(-1).
Conclusions:
- AC electrokinetic impedance sensing offers a rapid and sensitive approach for antibody detection.
- This technique holds potential for developing point-of-care diagnostic devices for tuberculosis.
- The method accelerates the binding process through electrokinetic forces.
Abstract:
This work presents an AC electrokinetic impedance sensing method that is capable of detecting specific interactions between macromolecules such as antigen-antibody binding. Serum samples were added to the surface of interdigitated electrodes that had been coated with bacterial antigens. After applying an AC signal of 100 mV at a specific frequency continuously, the electrodes' impedance change was recorded and used to determine the occurrence and level of antibody binding to the antigen. Our theoretical analysis indicated that with this AC signal, the target macromolecules will experience a sufficiently strong attraction force towards the electrode surface for acceleration of the binding process. Using this method, 11 human tuberculosis and 10 bovine tuberculosis serum samples were tested. The results were consistent with those obtained by a conventional ELISA method. The limit of detection of the impedance sensing method was estimated to be better than 10 ng mL(-1). In summary, we demonstrate that AC electrokinetic impedance sensing can be used for rapid and sensitive detection of specific antibodies in serum samples. This method may form a basis for development of a point of care diagnostic device for human and bovine tuberculosis.
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