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Updated: Jun 4, 2026

Detection of Bacteria Using Fluorogenic DNAzymes
Published on: May 28, 2012
Redox cycling amplified electrochemical detection of DNA hybridization: application to pathogen E. coli bacterial RNA
Anne Walter1, Jie Wu, Gerd-Uwe Flechsig
1Department of Nanoengineering, University of California San Diego, La Jolla, CA 92093, USA.
Abstract:
An electrochemical genosensor in which signal amplification is achieved using p-aminophenol (p-AP) redox cycling by nicotinamide adenine dinucleotide (NADH) is presented. An immobilized thiolated capture probe is combined with a sandwich-type hybridization assay, using biotin as a tracer in the detection probe, and streptavidin-alkaline phosphatase as reporter enzyme. The phosphatase liberates the electrochemical mediator p-AP from its electrically inactive phosphate derivative. This generated p-AP is electrooxidized at an Au electrode modified self-assembled monolayer to p-quinone imine (p-QI). In the presence of NADH, p-QI is reduced back to p-AP, which can be re-oxidized on the electrode and produce amplified signal. A detection limit of 1 pM DNA target is offered by this simple one-electrode, one-enzyme format redox cycling strategy. The redox cycling design is applied successfully to the monitoring of the 16S rRNA of E. coli pathogenic bacteria, and provides a detection limit of 250 CFU microL(-1).
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