Return
Functional Molecular Interfaces for Impedance-Based Diagnostics
DOI:10.1146/annurev-anchem-061318-115600.png)
Abstract
En 中文
In seeking to develop and optimize reagentless electroanalytical assays, a consideration of the transducing interface features lies key to any subsequent sensitivity and selectivity. This review briefly summarizes some of the most commonly used receptive interfaces that have been employed within the development of impedimetric molecular sensors. We discuss the use of high surface area carbon, nanoparticles, and a range of bioreceptors that can subsequently be integrated. The review spans the most commonly utilized biorecognition elements, such as antibodies, antibody fragments, aptamers, and nucleic acids, and touches on some novel emerging alternatives such as nanofragments, molecularly imprinted polymers, and bacteriophages. Reference is made to the immobilization chemistries available along with a consideration of both optimal packing density and recognition probe orientation. We also discuss assay-relevant mechanistic details and applications in real sample analysis.
Keywords:
electrochemical impedance spectroscopy
EIS
sensory and responsive interfaces
biosensors
antibodies
aptamers
nucleic acids
AI Summary
Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.
Journal
IF:
7.5
Papers:
394
Citations:
2.7K
Organization
Cited Papers
Thymus-Dependent and Thymus-Independent Lymphocyte Separation: Relation to Exposed Sialic Acid on Cell Surface
Science
IF0
Charge-Directed Immobilization of Bacteriophage on Nanostructured Electrode for Whole-Cell Electrochemical Biosensors
ANALYTICAL CHEMISTRY
IF6.7
Novel single-wall carbon nanotube screen-printed electrode as an immunosensor for human chorionic gonadotropin
ELECTROCHIMICA ACTA
IF5.6
Molecularly Imprinted Polymer-Decorated Magnetite Nanoparticles for Selective Sulfonamide Detection
ANALYTICAL CHEMISTRY
IF6.7

