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Updated: Feb 15, 2026

Phthalic Acid Ester-Binding DNA Aptamer Selection, Characterization, and Application to an Electrochemical Aptasensor
Published on: March 21, 2018
Selection of a High-Affinity Aptamer for Phalloidin and Application in a Dual-Mode LRET/Colorimetric Aptasensor
Ali Raza1,2,3, Faizan Ul Haq1,2,3, Imran Mahmood Khan4
1State Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi, Jiangsu 214122, P.R.china.
Abstract:
Phalloidin (PHD), a potent bicyclic peptide from Amanita species, poses severe food safety risks when misidentified as edible mushrooms. However, no aptamer-based detection system has been reported to date. Here, we report the isolation of a high-affinity and highly specific DNA aptamer (Apt-PHD) selected through 15 rounds of Capture-SELEX using a structured 97-nt ssDNA library. High-throughput sequencing identified PHD-3 as the optimal candidate, exhibiting dissociation constants of 0.292 ± 0.0034 μM (isothermal titration calorimetry) and 42.7 ± 6.7 nM (SYBR Green I fluorescence assay). Mechanistic insights from circular dichroism spectroscopy and molecular docking revealed target binding at the stem-loop junction, stabilized by hydrogen bonding, van der Waals forces, and hydrophobic interactions (docking score = -15.9 kcal/mol). Leveraging Apt-PHD, a dual-mode lanthanide resonance energy transfer (LRET)/colorimetric aptasensor was developed using upconversion nanoparticles (UCNPs@SiO2-NH2) as the luminescence donor and gold nanoparticles (AuNPs) as both a quencher and a colorimetric reporter. Under optimized conditions, the sensor achieved limits of detection of 12.6 pg/mL (LRET) and 18.0 pg/mL (colorimetric), with wide dynamic ranges of 0.01-1000 ng/mL and 0.01-100 ng/mL, respectively. The platform demonstrated excellent reproducibility (RSD = 3.56% and 3.20%), high selectivity over related mycotoxins, and accurate recovery in spiked mushroom samples (90.5-97.5% and 91.8-96.6%). This study establishes the first aptamer-based recognition system for phalloidin and introduces a versatile dual-mode optical sensing platform, enabling rapid, reliable, and field-deployable detection of small-molecule toxins for enhanced food safety surveillance.
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