赭曲霉毒素A
化学
生物传感器
构象变化
配体(生物化学)
蛋白质工程
生物物理学
真菌毒素
分子动力学
食品安全
灵敏度(控制系统)
纳米技术
分子探针
分子识别
动力学(音乐)
组合化学
生物系统
分子工程
赭曲霉毒素
蛋白质结构
荧光
作者
Shaowen Wu,Jintao Xu,Lingpeng Zhan,Hualian Mo,Rulei Li,Wenjie Huang,Yarong Zhao,Yanyi Huang,Mo Hu,Shijuan Yan
标识
DOI:10.1021/acs.jafc.5c10020
摘要
Nanobodies are promising recognition elements for food safety biosensors, yet the relationship between their conformational dynamics and ligand binding remains poorly understood. This study presents an integrated computational-experimental framework to elucidate conformational dynamics-function relationships and guide the engineering of nanobody-based detection systems for ochratoxin A (OTA), a prevalent mycotoxin in agricultural commodities. Using the anti-OTA nanobody NB28, we employed molecular dynamics simulations, ion mobility-mass spectrometry, and collision-induced unfolding assays to investigate the ligand recognition mechanisms. NB28 binds OTA through a tunnel-like mechanism, inducing pronounced conformational shifts toward extended states, validated experimentally through collision cross-sectional measurements and unfolding profiles. Leveraging these dynamic insights, we engineered a T80C variant exhibiting ∼1.8-fold enhanced detection sensitivity with reduced IC50 values while preserving specificity. T80C demonstrated robust performance across cereal matrices, achieving detection limits well below the EU regulatory threshold of 5 μg/kg. This dynamics-driven approach provides a generalizable strategy for food safety biosensor development.
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