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Quick and Robust Sample Preparation for Tryptic Peptide Mapping With the PeptideWorks Kit Using Simple, Automatable Workflows

Applications | 2023 | WatersInstrumentation
Sample Preparation, Consumables, LC/TOF, LC/HRMS, LC/MS
Industries
Pharma & Biopharma
Manufacturer
Waters

Summary

Significance of the Topic


Peptide mapping is a critical method in biopharmaceutical analysis providing detailed insight into the primary structure of protein therapeutics. Reliable and reproducible sample preparation is essential for accurate comparison between test and reference materials in quality control, analytical development, and research settings.

Objectives and Overview


This study introduces an automated sample preparation workflow using the PeptideWorks Tryptic Protein Digestion Kit. The aim is to demonstrate rapid, robust, and reproducible generation of tryptic peptides for mapping applications by comparing manual and automated protocols applied to a monoclonal antibody reference material.

Methodology and Instrumentation


The workflow employs RapiZyme Trypsin for fast and specific digestion under mild conditions. Sample denaturation, reduction, alkylation, desalting, buffer exchange, and normalization steps are performed manually or on the Andrew+ Pipetting Robot with an Extraction+ device. Digestions proceed at 37 °C for 30 minutes and are quenched with formic acid. Peptide separations use an ACQUITY UPLC I-Class PLUS system fitted with a Peptide CSH C18 column at 65 °C. Detection is by full scan MS/MS on an ACQUITY RDa detector in positive ESI mode. Chromatograms and peptide map workflows are processed with waters_connect informatics.

Key Results and Discussion


Both manual and automated protocols deliver high sequence coverage (> 88 %) and consistent chromatographic profiles. Automated workflows process 24 samples in under 2.5 hours. Compared to a leading immobilized trypsin kit, the PeptideWorks protocol reduces missed cleavages by 93 % and non specific cleavages by 55 %. Day-to-day relative standard deviations for unmodified peptide abundance remain below 15 %, and modifications such as deamidation and oxidation show less than 10 % variability, indicating high precision and minimal method-induced artifacts.

Benefits and Practical Applications


  • Automated preparation of 24 samples in under 2.5 hours
  • High digestion fidelity with low levels of missed and non specific cleavages
  • Reduced method-induced peptide modifications
  • Suitable for QC, bioprocess monitoring, analytical development, and research laboratories
  • Scalable to manual or robotic workflows

Future Trends and Opportunities


Integration of this workflow with high-throughput robotics and advanced informatics platforms will further increase throughput and data consistency. Adaptation to alternative proteases and applications in complex biological matrices can broaden its utility. Ongoing development of real-time monitoring and closed-loop control may enable fully autonomous peptide mapping.

Conclusion


The PeptideWorks Tryptic Protein Digestion Kit offers a comprehensive and automatable solution for rapid, reproducible peptide mapping sample preparation. Its robust performance supports stringent quality requirements in regulated environments and accelerates analytical workflows across research and production settings.

References

  1. Hada V et al. Recent Advancements in Mass Spectrometry-Based Analytics of Protein Biotherapeutics J Pharm Biomed Anal 2018 161 214–238
  2. Ippoliti S et al. Versatile and Rapid Digestion Protocols Using RapiZyme Trypsin Waters Application Note 2023
  3. Finny A S et al. Fast and Robust Peptide Mapping Using RapiZyme Trypsin Waters Application Note 2023
  4. Yang H et al. Automated High-Throughput LC-MS Peptide Mapping Waters Application Note 2023
  5. Mouchahoir T, Schiel J E. Development of an LC-MS/MS Peptide Mapping Protocol for the NISTmAb Anal Bioanal Chem 2018 410 2111–2126
  6. Millan-Martin S et al. Inter-Laboratory Study of Automated Trypsin Digestion Anal Bioanal Chem 2020 412 6833–6848
  7. Dong Q et al. The NISTmAb Tryptic Peptide Spectral Library MABS 2018 10 354–369
  8. Arndt J R et al. High-Resolution Ion-Mobility-Enabled Peptide Mapping J Am Mass Spec 2021 32 2019–2032
  9. Jalili P et al. Optimized Protocol for Peptide Mapping with Minimum Artifacts Analytix Reporter 2022 11

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