Spatiotemporal Visualization of Insecticides and Fungicides within Fruits and Vegetables Using Gold Nanoparticle-Immersed Paper Imprinting Mass Spectrometry Imaging.
Run QinPing LiMingyi DuLianlian MaYudi HuangZhibin YinYue ZhangDong ChenHanhong XuXinzhou WuPublished in: Nanomaterials (Basel, Switzerland) (2021)
Food safety issues caused by pesticide residue have exerted far-reaching impacts on human daily life, yet the available detection methods normally focus on surface residue rather than pesticide penetration to the internal area of foods. Herein, we demonstrated gold nanoparticle (AuNP)-immersed paper imprinting mass spectrometry imaging (MSI) for monitoring pesticide migration behaviors in various fruits and vegetables (i.e., apple, cucumber, pepper, plum, carrot, and strawberry). By manually stamping food tissues onto AuNP-immersed paper, this method affords the spatiotemporal visualization of insecticides and fungicides within fruits and vegetables, avoiding tedious and time-consuming sample preparation. Using the established MSI platform, we can track the migration of insecticides and fungicides into the inner region of foods. The results revealed that both the octanol-water partition coefficient of pesticides and water content of garden stuffs could influence the discrepancy in the migration speed of pesticides into food kernels. Taken together, this nanopaper imprinting MSI is poised to be a powerful tool because of its simplicity, rapidity, and easy operation, offering the potential to facilitate further applications in food analysis. Moreover, new perspectives are given to provide guidelines for the rational design of novel pesticide candidates, reducing the risk of food safety issues caused by pesticide residue.
Keyphrases
- risk assessment
- human health
- mass spectrometry
- high resolution
- heavy metals
- gas chromatography
- gene expression
- endothelial cells
- health risk
- physical activity
- aedes aegypti
- climate change
- magnetic resonance imaging
- clinical practice
- magnetic resonance
- health risk assessment
- high throughput
- high performance liquid chromatography
- single cell
- amino acid
- zika virus
- simultaneous determination
- data analysis