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Nafion coated nanopore electrode for improving electrochemical aptamer-based biosensing. | LitMetric

Nafion coated nanopore electrode for improving electrochemical aptamer-based biosensing.

Faraday Discuss

Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana 46556, USA.

Published: November 2024

AI Article Synopsis

  • * Challenges like signal-to-noise ratio reduction and biofouling in miniaturized systems led to research on various electrode coatings, where Nafion stands out due to its great permselectivity and anti-biofouling properties.
  • * This study introduces a Nafion-coated gold nanoporous electrode that allows aptamers to detect targets without obstruction, and explores the optimization of the biosensor system by tweaking various parameters and explains the unique signaling behavior observed in this setup.

Article Abstract

The transition to a personalized point-of-care model in medicine will fundamentally change the way medicine is practiced, leading to better patient care. Electrochemical biosensors based on structure-switching aptamers can contribute to this medical revolution due to the feasibility and convenience of selecting aptamers for specific targets. Recent studies have reported that nanostructured electrodes can enhance the signals of aptamer-based biosensors. However, miniaturized systems and body fluid environments pose challenges such as signal-to-noise ratio reduction and biofouling. To address these issues, researchers have proposed various electrode coating materials, including zwitterionic materials, biocompatible polymers and hybrid membranes. Nafion, a commonly used ion exchange membrane, is known for its excellent permselectivity and anti-biofouling properties, making it a suitable choice for biosensor systems. However, the performance and mechanism of Nafion-coated aptamer-based biosensor systems have not been thoroughly studied. In this work, we present a Nafion-coated gold nanoporous electrode, which excludes Nafion from the nanoporous structures and allows the aptamers immobilized inside the nanopores to freely detect chosen targets. The nanopore electrode is formed by a sputtering and dealloying process, resulting in a pore size in tens of nanometers. The biosensor is optimized by adjusting the electrochemical measurement parameters, aptamer density, Nafion thickness and nanopore size. Furthermore, we propose an explanation for the unusual signaling behavior of the aptamers confined within the nanoporous structures. This work provides a generalizable platform to investigate membrane-coated aptamer-based biosensors.

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Source
http://dx.doi.org/10.1039/d4fd00144cDOI Listing

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