Affiliation:
1. Guangdong Provincial Key Laboratory of Food Quality and Safety, College of Food Science, South China Agricultural University, Guangzhou 510642, China
2. Wens Institute, Wens Foodstuff Groups Co., Ltd., Yunfu 527400, China
Abstract
Picoxystrobin (PIC) is a fungicide extensively used for disease control in both crops and vegetables. Residues of PIC in vegetables pose a potential threat to human health due to their accumulation in the food chain. In this study, a specific PIC monoclonal antibody (mAb) was developed by introducing a carboxylic acid arm into PIC and subsequently preparing a hapten and an artificial antigen. A sensitive and rapid time-resolved fluorescence immunochromatographic assay (TRFICA) was established based on the mAb. Subsequently, using a time-resolved fluorescent microsphere (TRFM) as signal probe, mAbs and microspheres were covalently coupled. The activated pH, the mAb diluents, the mAb amount, and the probe amount were optimized. Under optimized conditions, the quantitative limits of detection (qLOD) of PIC in cucumber, green pepper, and tomato using TRFICA were established at 0.61, 0.26, and 3.44 ng/mL, respectively; the 50% inhibiting concentrations (IC50) were 11.76, 5.29, and 37.68 ng/mL, respectively. The linear ranges were 1.81–76.71, 0.80–35.04, and 8.32–170.55 ng/mL, respectively. The average recovery in cucumber, green pepper, and tomato samples ranged from 79.8% to 105.0%, and the corresponding coefficients of variation (CV) were below 14.2%. In addition, 15 vegetable samples were selected and compared with the results obtained using ultra-performance liquid chromatography/tandem mass spectrometry (UPLC-MS/MS). The results revealed a high degree of concordance between the proposed method and UPLC-MS/MS. In conclusion, the devised TRFICA method is a valuable tool for rapid, on-site, and highly sensitive detection of PIC residues in vegetables.
Funder
National Natural Science Foundation of China
Science and Technology Planning Project of Guangzhou City
National Key Re-search and Development Program of China
Reference39 articles.
1. Zhou, Z., Wang, Y., Duan, Y., He, Y., Liu, S., Chen, Y., Deng, W., Li, C., Hu, W., and Gu, Y. (2023). Inhibitory Effect and Control Efficacy of Picoxystrobin against Neopestalotiopsis clavispora, Causing Vine Tea Leaf Blight. Agronomy, 13.
2. (2021). Limits of Mycotoxins in FoodNational Standard for Food Safety. Official Document of SAC. (Standard No. GB 2763-2021).
3. Magnitude of picoxystrobin residues in strawberry under Egyptian conditions: Dissipation pattern and consumer risk assessment;Malhat;Food Addit. Contam. Part A,2020
4. Dissipation, residues and risk assessment of pyraclostrobin and picoxystrobin in cucumber under field conditions;Zhao;J. Sci. Food Agric.,2020
5. Residue analysis of picoxystrobin in oriental melon using gas chromatography coupled with electron capture detection and mass spectrometric confirmation: Application to dissipation kinetics and risk assessment;Kabir;Food Sci. Biotechnol.,2017