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Discriminating Between Living and Dead Bacteria With a Field-Effect Transistor Based on Nano-Channels

  • Bar Chen
  • , Vijay Garika
  • , Shubham Babbar
  • , Pooja Verma
  • , Tom Cohen
  • , Kfir Kattav
  • , Fanny Akselrod
  • , Aparnaa Shree Vijaikumar
  • , Shankar Bhattarai
  • , Sherina Harilal
  • , Evgeny Pikhay
  • , Inna Shechter
  • , Doron Greental
  • , Muhammad Y. Bashouti
  • , Izhar Ron
  • , Yakov Roizin
  • , Barak Akabayov
  • , Gil Shalev

Research output: Contribution to journalArticlepeer-review

Abstract

Low-cost and easy-to-operate biosensors allow for bacteria detection for on-site and real-time applications. However, current biosensors cannot distinguish between living and dead bacteria, critical in determining the persistence of bacterial contamination. The Meta-Nano-Channel field-effect transistor (MNC FET) is employed. Its design allows the formation of numerous conducting nano-channels each coupled to the sensing area binding events with a different efficiency addressing the challenge of molecular localized gating. The MNC FET is biofunctionalized with a recognition layer composed of E. coli antibodies. Sensing is performed in 0.5 µL drops of Lysogeny Broth (ionic strength of 197 mM, protein-rich background of 200 mg/L), providing a complex food environment, and without either sample pre-processing or pre-measurement washing. Specific, label-free, quantitative, and real-time sensing is demonstrated with a limit-of-detection of a single-bacterium and with excellent linearity and sensitivity. Furthermore, the platform's capacity to distinguish living from dead bacteria is validated by comparing the MNC FET response to living E. coli against populations subjected to thermal denaturation, antibiotic treatment, or metabolic inhibition. The MNC FET distinguishes between living and dead E. coli bacteria with a limit-of-detection of a single-bacterium. This method paves the way for biosensors for the discrimination of bacterial viability.

Original languageEnglish
JournalSmall
DOIs
StateAccepted/In press - 1 Jan 2026

Keywords

  • E. coli sensing
  • FET biosensor
  • bacteria viability
  • label-free biosensing
  • real-time bacterial detection
  • single-cell analysis

ASJC Scopus subject areas

  • Biotechnology
  • General Chemistry
  • Biomaterials
  • General Materials Science

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