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◆ Journal of agricultural and food chemistry2026-09-09

Entropy-Engineered Aptamer Truncation Enables Dual-Mode LRET/SERS Aptasensing for Multiplex Detection of Phalloidin and α-Amanitin in Mushroom Samples.

Ali Raza, Faizan Ul Haq, Khubaib Ali, Mehwish Mumtaz, Muhammad Shoaib, Xiaodong Lu, Yating Song, Li Ji, Xi Yu, Shuaishuai Wei, Wenbo Gao, Zhouping Wang

原始摘要(英文原文)· Original abstract
Phalloidin (PHD) and α-amanitin (α-AMT) are structurally constrained cyclic mushroom toxins whose rigid structures and limited accessible recognition surfaces challenge high-affinity molecular recognition and sensitive multiplex detection. Here, we report an entropy-guided aptamer engineering strategy that removes redundant regions while preserving essential stem-loop recognition motifs, optimizing the thermodynamic balance of target binding, and yielding truncated aptamers with 3.3- and 3.6-fold improved SGI-derived affinities toward PHD and α-AMT, respectively. The engineered aptamers were integrated into a dual-mode luminescence resonance energy transfer (LRET)/surface-enhanced Raman scattering (SERS) platform comprising upconversion nanoparticles (UCNPs), and Fe3O4@AuNS. A single target-binding-driven aptamer-cDNA structural-switching event synchronously regulated both optical outputs, enabling internally cross-validated multiplex quantification with low-pg/mL detection limits over 0.01-100 ng/mL (R2 > 0.99), recoveries of 92.0-99.2%, and relative standard deviations below 5% in mushroom samples. This strategy provides a generalizable framework for sensitive detection of structurally constrained food toxins and multiplex food safety analysis.
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Entropy-Engineered Aptamer Truncation Enables Dual-Mode LRET/SERS Aptasensing for Multiplex Detection of Phalloidin and α-Amanitin in Mushroom Samples. — 科研速览 Science Skim