Abstract

The electrochemical detection of interactions between aptamers and low-molecular-weight targets often lacks sensitivity. Signal amplification improves the detection of the aptamer-analyte complex; Bsm DNA polymerase was used to amplify the signal from the interaction of vanillin and its aptamer named Van_74 on an ion-sensitive field-effect transistor (ISFET)-based biosensor. The aptamer was immobilized on the ISFET sensitive surface. A short DNA probe was hybridized with the aptamer and dissociated from it upon vanillin addition. A free probe interacted with a special DNA molecular beacon initiated the Bsm DNA polymerase reaction that was detected by ISFET. A buffer solution suitable for both aptamer action and Bsm DNA polymerase activity was determined. The ISFET was shown to detect the Bsm DNA polymerase reaction under the selected conditions. Vanillin at different concentrations (1 × 10−6–1 × 10−8 M) was detected using the biosensor with signal amplification. The developed detection system allowed for the determination of vanillin, starting at a 10−8 M concentration. Application of the Bsm DNA polymerase resulted in a 15.5 times lower LoD when compared to the biosensor without signal amplification (10.1007/s00604-017-2586-4).

Highlights

  • Aptamers are typically, single-stranded oligonucleotide (DNA or RNA) molecules

  • The scheme assumed that the immobilized aptamer on the ion-sensitive field-effect transistor (ISFET) surface was hybridized with the DNA probe, which was released from the aptamer during the addition of vanillin (Figure 1)

  • This dehybridized DNA probe participated in the Bsm DNA polymerase reaction which was dehybridized DNA probe participated in the Bsm DNA polymerase reaction which was detected by the ISFET

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Summary

Introduction

Single-stranded oligonucleotide (DNA or RNA) molecules

Methods
Results
Discussion
Conclusion
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