Yinghong Ma, Juan Lu, Xin Liu, Zheng Hu, Xiangsheng Zhao, DanDan Kong, Zhonghao Sun, Weiheng Kong, Tianyu Wang, Zhaocui Sun, Guoxu Ma, Xudong Xu, Meihua Yang, Ting Shen, Haifeng Wu, Qiongyu Zou, Haitao Liu
Zearalenone (ZEN), a Fusarium-derived estrogenic mycotoxin, frequently contaminates Coix seeds and other grains, posing a food-safety and quality-control challenge because of the complex matrix and trace-level residue limits. Here, we developed a simulation-guided magnetic molecularly imprinted polymer (MMIP) for the rapid and selective enrichment of ZEN prior to LC–MS/MS determination. A pharmacophore model, DFT calculations, and molecular dynamics simulations were combined to identify cyclohexyl-1,4-benzenedicarboxylic acid (CDHB) as a suitable dummy template and to optimize a dual-monomer formulation (Boc-AG/MAA, ZEN: Boc-AG: MAA = 1:1:3) to strengthen complementary interactions. The resulting MMIP exhibited fast uptake (equilibrium reached in approximately 5 min), high selectivity (imprinting factor = 12.76), and a maximum adsorption capacity of 28.40 mg/g, as determined by Langmuir fitting of the equilibrium isotherms. The adsorbent also showed good reusability (≥10 adsorption–desorption cycles) with single-step desorption > 90 %. When coupled with matrix-matched LC–MS/MS, the method achieved a limit of quantification of 3.70 μg/kg and recoveries of 86.8–112.9 % for spiked Coix samples. This work demonstrates that integrating molecular simulation with magnetic imprinting enables an efficient, reusable cleanup strategy for trace ZEN monitoring in complex grain-based matrices.