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Foodborne Pathogen Screening Using Magneto-fluorescent Nanosensor: Rapid Detection of E. Coli O157:H7
Published on: September 17, 2017
Rapid electrochemical detection of Escherichia coli in milk using an oriented phage-based biosensor
Enkhlin Ochirbat1, Joanna Dolinska1, Konrad Giżyński1
1Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, Warsaw, 01224, Poland.
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Foodborne contamination by pathogenic Escherichia coli (E. coli) is a major safety concern, particularly in dairy products, and necessitates the rapid selective detection in complex matrices. We present an electric-field-assisted phage-based electrochemical biosensor for the 15-min detection of the model bacterium E. coli in phosphate-buffered saline (PBS) and in non-fat milk. Indium tin oxide (ITO) electrodes are functionalized with (3-aminopropyl)triethoxysilane and glutaraldehyde to allow covalent attachment of T4 bacteriophages. During phage immobilization, an electric field is applied to orient virions, thereby increasing the accessibility of tail receptor-binding proteins for bacterial capture. Differential pulse voltammetry with the external redox probe Fe(CN)63-/4- is used for detection. Electric field-assisted orientation of the phage layer produces about threefold higher electrochemical signal than non-oriented phage layers and about tenfold higher signal than phage-free controls at 104 CFU/mL. The developed biosensor enables quantitative detection of E. coli from 10 to 107 CFU/mL in PBS with a limit of detection of 62 CFU/mL. The response to the non-host Staphylococcus aureus is up to almost 30-fold lower than that to E. coli at the same concentration, demonstrating high specificity. The sensor retains a linear calibration and achieves a limit of detection of 12 CFU/mL in milk, without any pre-enrichment of the sample. The biosensor maintains its response after two weeks of storage at 4 °C. Results indicate that an electric-field-assisted phage film on ITO enables simple, rapid, and selective E. coli detection in both model solutions and complex food matrices.

