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Updated: Sep 8, 2026

Fabrication of Electrochemical-DNA Biosensors for the Reagentless Detection of Nucleic Acids, Proteins and Small Molecules
Published on: June 1, 2011
Electrochemical DNA Biosensors Formed from Self-Assembled Monolayers of Thiolated DNA and Mercaptohexanol: What We
Essam M Dief1, Richard D Tilley1, J Justin Gooding1
1School of Chemistry, The University of New South Wales, Sydney, 2052New South Wales, Australia.
Abstract:
Alkanethiol self-assembled monolayers have dominated methods for forming nucleic acid-modified functional interfaces on gold nanoparticles and electrodes due to the ease and spontaneous nature of gold-sulfur bond formation. In particular, an interface composed of DNA modified with a thiol-terminated, 6-carbon linker connecting the oligonucleotide to the gold surface and 6-mercaptohexanol as a diluent has reigned supreme. First developed for DNA hybridization biosensors in the early 2000s and adapted for microRNA detection in the late 2010s, this interface now dominates the design of electrochemical aptamer-based (EAB) sensors, making it one of the most widely explored biosensing platforms today. Motivated by the increasingly widespread employment of this molecular interface, we explore what is known about it from DNA hybridization biosensors and discuss how this knowledge might improve EAB sensors. This exploration is prudent because EAB sensors place even more stringent requirements on the interface than single-use nucleic acid sensing, often requiring the sensor to bind to its target reversibly in living animals over many hours.

