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Efficient Peak Integration for Analyzing Residual Pesticides in Foods Using Peakintelligence™ LC/MS Peak Processing Software

Applications | 2022 | ShimadzuInstrumentation
Software, LC/MS
Industries
Food & Agriculture
Manufacturer
Shimadzu

Summary

Efficient Peak Integration for Pesticide Residue Analysis Using Peakintelligence


Importance of the Topic


Accurate and rapid quantification of residual pesticides in food is critical for consumer safety and regulatory compliance. Traditional peak integration methods for LC/MS data often require extensive parameter optimization and manual verification, leading to high labor costs, risk of human error, and inconsistent results.

Objectives and Study Overview


This study introduces Peakintelligence, a deep-learning-based software package designed to streamline peak integration in LC/MS analyses of pesticide residues. The main goals are to eliminate manual parameter tuning, reduce operator dependency, and accelerate data processing while maintaining expert-level accuracy.

Methodology and Instrumentation


Peakintelligence was developed from a dataset of approximately 13 000 expert-annotated chromatograms. A deep neural network was trained to recognize peak start and end points without user-defined settings. The pre-trained model is deployed with Shimadzu liquid chromatograph–mass spectrometer systems for automated data processing. No customer-side model training is required.

Key Results and Discussion


In a test involving 157 pesticide compounds spiked into soybean extract blank samples:
  • The legacy algorithm (Chromatopac) produced 85 false detections due to baseline noise and coeluting peaks.
  • Peakintelligence reduced misdetections to 28, a 67 % decrease.
  • The estimated manual correction time dropped from 14 minutes to 4.6 minutes per dataset of 157 compounds.
This demonstrates robust performance on low signal-to-noise peaks and those overlapping with contaminants or isomers.

Benefits and Practical Applications


  • Parameterless integration ensures consistent results across operators and laboratories.
  • Significant reduction in manual review time accelerates throughput in routine food safety testing.
  • Minimized human variability enhances reproducibility for QA/QC and research workflows.

Future Trends and Applications


As regulatory demands for multi-residue screening grow, AI-driven tools like Peakintelligence are poised to integrate with high-throughput platforms and cloud-based analytics. Future developments may include expanded compound libraries, real-time instrument feedback, and adaptive learning from client datasets to address emerging contaminants.

Conclusion


Peakintelligence leverages deep learning to deliver expert-level peak integration without manual parameter adjustments. It substantially reduces false detections and review time, thereby improving efficiency and standardization in LC/MS pesticide residue analysis.

Instrumentation Used


Shimadzu liquid chromatograph–mass spectrometer system with Peakintelligence software plugin for automated peak processing.

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