Rapid detection of single E. coli bacteria using a graphene-based field-effect transistor device

Biosens Bioelectron. 2018 Jul 1:110:16-22. doi: 10.1016/j.bios.2018.03.014. Epub 2018 Mar 9.

Abstract

Contamination of surface and drinking water due to the presence of Escherichia coli bacteria is a major cause of water-borne disease outbreak. To address unmet challenges for practical pathogen detection in contaminated samples, we report fabrication of thermally reduced graphene oxide-based field-effect transistor (rGO FET) passivated with an ultrathin layer of Al2O3 for real-time detection of E. coli bacteria. The sensor could detect a single E. coli cell within 50 s in a 1 µL sample volume. The ultrathin layer of Al2O3 acted as a barrier between rGO and potential interferents present in the sample. E. coli specific antibodies anchored on gold nanoparticles acted as probes for selective capture of E. coli. The high density of negative charge on the surface of E. coli cells strongly modulates the concentration of majority charge carriers in the rGO monolayer, thereby allowing real-time monitoring of E. coli concentration in a given sample. With a low detection limit of single cell, the FET sensor had a linear range of 1-100 CFU in 1 µL volume of sample (i.e., 103 to 105 CFU/ mL). The biosensor with good selectivity and rapid detection was further successfully demonstrated for E. coli sensing in river water. The rGO-based FET sensor provides a low cost and label-free approach, and can be mass produced for detection of a broad spectrum of pathogens in water or other liquid media.

Keywords: Bacteria detection; Biosensor; E. coli; Field-effect transistor; Graphene oxide.

Publication types

  • Evaluation Study

MeSH terms

  • Biosensing Techniques / economics
  • Biosensing Techniques / instrumentation*
  • Equipment Design
  • Escherichia coli / isolation & purification*
  • Escherichia coli Infections / microbiology*
  • Graphite / chemistry*
  • Humans
  • Limit of Detection
  • Oxides / chemistry
  • Rivers / microbiology*
  • Time Factors
  • Transistors, Electronic*

Substances

  • Oxides
  • Graphite