Titanium dioxide nanoparticle-modified screen-printed electrode for erlotinib determination

Pooja Das Manjulabhai1, Sruthi Mundangadan1, Maria Paul1

  • 1Department of Biotechnology, Sahrdaya College of Engineering and Technology, Affiliated to APJ Abdul Kalam Technological University, Kodakara, Thrissur, Kerala, India.

ADMET & DMPK
|August 23, 2026
PubMed
Abstract

Insights

A novel titanium dioxide nanoparticle-modified electrode offers sensitive and selective detection of erlotinib (ERL) in human serum. This cost-effective method enables point-of-care therapeutic drug monitoring for non-small cell lung cancer treatment.

Area of Science:

  • Electrochemistry
  • Nanomaterials Science
  • Analytical Chemistry

Background:

  • Erlotinib (ERL) is crucial for non-small cell lung cancer treatment but requires precise therapeutic drug monitoring due to its narrow therapeutic window and pharmacokinetic variability.
  • Existing chromatographic methods for ERL monitoring are resource-intensive and not suitable for point-of-care applications.
  • There is a need for simpler, cost-effective electroanalytical methods for ERL quantification.

Purpose of the Study:

  • To develop a disposable, cost-effective electroanalytical platform for sensitive and selective detection of erlotinib (ERL).
  • To fabricate and characterize a titanium dioxide nanoparticle-modified screen-printed electrode (TiO2NP@SPE) for ERL quantification.
  • To validate the developed method for therapeutic drug monitoring of ERL in human serum.

Main Methods:

  • Fabrication of a TiO2NP@SPE via a single-step modification.
  • Comprehensive characterization using SEM-EDX, FTIR, XRD, and EIS.
  • Electrochemical performance evaluation using cyclic voltammetry and differential pulse voltammetry.
  • Analytical validation in human serum using the standard addition method.

Main Results:

  • The TiO2NP@SPE exhibited enhanced electron transfer kinetics compared to the bare SPE.
  • A well-defined linear response for ERL was achieved with a competitive limit of detection and high sensitivity.
  • The method demonstrated excellent selectivity against interferents and acceptable precision for intra- and inter-day serum recoveries.

Conclusions:

  • A disposable TiO2NP@SPE was successfully developed for sensitive, selective, and accurate ERL quantification in human serum.
  • The TiO2NP@SPE presents a promising platform for point-of-care therapeutic drug monitoring in oncology.
  • Future work should focus on lowering the detection limit and validating the method with patient plasma samples.

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