A nanostructured cerium oxide film-based immunosensor for mycotoxin detection

Ajeet Kaushik1, Pratima Rathee Solanki, Anees Ahmad Ansari

  • 1National Physical Laboratory, New Delhi 110012, India.

Nanotechnology
|May 7, 2009
PubMed

Insights

A novel biosensor using nanostructured cerium oxide (nanoCeO2) film detects ochratoxin-A (OTA). This enhanced immunoelectrode offers high sensitivity and a low detection limit for improved food safety analysis.

Area of Science:

  • Nanomaterials Science
  • Biosensor Technology
  • Analytical Chemistry

Background:

  • Ochratoxin-A (OTA) is a harmful mycotoxin requiring sensitive detection methods.
  • Existing detection methods for OTA can be time-consuming or lack sensitivity.
  • Nanostructured materials offer unique properties for biosensor development.

Purpose of the Study:

  • To develop a novel immunoelectrode for sensitive OTA detection.
  • To utilize sol-gel-derived nanostructured cerium oxide (nanoCeO2) for enhanced biosensor performance.
  • To immobilize antibodies and proteins onto the nanoCeO2 film for specific OTA binding.

Main Methods:

  • Fabrication of nanostructured cerium oxide (nanoCeO2) film on an indium-tin-oxide (ITO) coated glass plate using sol-gel method.
  • Immobilization of rabbit-immunoglobulin antibodies (r-IgGs) and bovine serum albumin (BSA) onto the nanoCeO2 film.
  • Electrochemical characterization and performance evaluation of the fabricated immunoelectrode for OTA detection using techniques like X-ray diffraction (XRD).

Main Results:

  • XRD patterns confirmed the formation of CeO2 nanostructures.
  • The nanoCeO2 film provided increased electroactive surface area, enhancing r-IgGs loading and electron communication.
  • The BSA/r-IgGs/nanoCeO2/ITO immunoelectrode demonstrated a linear range of 0.5-6 ng dl(-1), a low detection limit of 0.25 ng dl(-1), and a fast response time of 30 s.
  • High sensitivity (1.27 microA ng(-1) dl(-1) cm(-2)) and a high association constant (Ka, 0.9 x 10(11) l mol(-1)) for OTA were achieved.

Conclusions:

  • The developed BSA/r-IgGs/nanoCeO2/ITO immunoelectrode is a promising platform for sensitive and rapid OTA detection.
  • Nanostructured cerium oxide enhances the electrochemical performance and affinity of the biosensor.
  • This approach holds potential for improved food safety monitoring and mycotoxin analysis.

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