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A Method for Selecting Structure-switching Aptamers Applied to a Colorimetric Gold Nanoparticle Assay
Published on: February 28, 2015
Aptamer-functionalized nanoparticles for surface immobilization-free electrochemical detection of cortisol in a
Bankim J Sanghavi1, John A Moore1, Jorge L Chávez2
1Department of Electrical and Computer Engineering, University of Virginia, Charlottesville, VA 22904, USA.
Insights
This study introduces a novel aptamer-based assay for cortisol detection in bio-fluids. The method offers a sensitive, rapid, and interference-resistant alternative to traditional immunoassays for monitoring stress and physiological functions.
Area of Science:
- Biomedical Engineering
- Analytical Chemistry
- Nanotechnology
Background:
- Cortisol monitoring is crucial for understanding physiological functions and stress.
- Existing immunoassays for cortisol suffer from limitations in versatility, kinetics, and reproducibility due to antibody immobilization complexities.
- A need exists for simplified, sensitive, and reliable cortisol detection methods.
Purpose of the Study:
- To develop a quantitative aptamer-based detection methodology for cortisol.
- To eliminate the need for target labeling, capture probe immobilization, and wash steps in cortisol assays.
- To provide a versatile and reproducible method for routine cortisol monitoring in bio-fluids.
Main Methods:
- Utilized aptamer-functionalized gold nanoparticles pre-bound with electro-active triamcinolone.
- Employed competitive binding assay where cortisol displaces triamcinolone.
- Detected cortisol levels via square wave voltammetry at graphene-modified electrodes in microfluidic/nanoslit devices.
Main Results:
- Achieved signal linearity over a five-log concentration range (10 μg/mL to 30 pg/mL).
- Demonstrated rapid binding kinetics specific to cortisol, with no interference from other glucocorticoids like estradiol, testosterone, and progesterone.
- Assay performed within biologically relevant ranges for serum and saliva matrices.
Conclusions:
- The developed aptamer-based assay offers a simplified, label-free, and wash-free method for cortisol detection.
- The assay exhibits high sensitivity, broad linearity, rapid kinetics, and excellent specificity.
- This methodology holds promise for routine monitoring of cortisol in bio-fluids, overcoming limitations of current immunoassays.
Abstract:
Monitoring the periodic diurnal variations in cortisol from small volume samples of serum or saliva is of great interest, due to the regulatory role of cortisol within various physiological functions and stress symptoms. Current detection assays are immunologically based and require cumbersome antibody immobilization chemistries, thereby limiting the assay versatility, kinetics, and reproducibility. We present a quantitative aptamer-based detection methodology for cortisol that does not require target labeling, capture probe immobilization on the detection surface or wash steps prior to readout. Using a recognition system of aptamer functionalized gold nanoparticles pre-bound with electro-active triamcinolone, the cortisol level is detected based on its competitive binding to the aptamer by following signal from the displaced triamcinolone using square wave voltammetry at patterned graphene-modified electrodes in a microfluidic or nanoslit device. Due to the 3D analyte diffusion profile at the aptamer interface and the ability to enhance the surface area for cortisol capture, this assay shows signal linearity over a five-log analyte concentration range (10 μg/mL to 30 pg/mL) and exhibits rapid binding kinetics with cortisol versus other glucocorticoids, as apparent from the absence of interferences from estradiol, testosterone and progesterone. The assay is carried out within the biologically relevant range for glucocorticoids in serum and saliva matrices, and benchmarked versus ELISA and radioimmunoassays. Based on absence of cumbersome surface immobilization and wash steps for carrying out this assay, its quantitative signal characteristics and its ability to resist interferences from other glucocorticoids, we envision its application towards routine monitoring of cortisol within bio-fluids.
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