Structural analysis of isomeric chemicals by using high resolution MS/MS on Curved Field Reectron incorporated with a novel focusing technology
Posters | 2015 | Shimadzu | ASMSInstrumentation
The unambiguous identification of isomeric compounds is vital in fields such as glycomics, lipidomics and pharmaceutical analysis. High-resolution tandem mass spectrometry with advanced ion optics enables detailed structural characterization without extensive chromatographic separation.
The integration of Axial Spatial Distribution Focusing with a curved field reflectron markedly improves MS/MS resolving power and enables precise structural differentiation of isomeric carbohydrates and lipids. Strategic cation selection further refines fragmentation pathways, establishing a versatile platform for high-confidence structural analysis in analytical chemistry.
MALDI, LC/MS, LC/MS/MS, LC/TOF, LC/HRMS
IndustriesEnergy & Chemicals
ManufacturerShimadzu
Summary
Importance of Structural Analysis of Isomeric Chemicals
The unambiguous identification of isomeric compounds is vital in fields such as glycomics, lipidomics and pharmaceutical analysis. High-resolution tandem mass spectrometry with advanced ion optics enables detailed structural characterization without extensive chromatographic separation.
Goals and Overview of the Study
- Evaluate a novel curved field reflectron incorporating Axial Spatial Distribution Focusing (ASDF) for high-resolution MS/MS.
- Differentiate isomeric oligosaccharides (Lacto-N-neotetraose vs Lacto-N-tetraose) and prostaglandins (PGE2 vs PGD2).
- Assess the impact of different metal cations on fragmentation patterns and spectral clarity.
Methods and Instrumentation
- Samples mixed with 10 mg/mL DHB matrix in methanol and cationized using Li⁺, Na⁺, Cs⁺ or Ba²⁺.
- Analyses performed on Shimadzu MALDI-7090 MALDI-TOF/TOF equipped with a curved field reflectron and ASDF cell.
- High-energy collision-induced dissociation (CID) in positive ion mode at 20 keV with helium as collision gas.
- ASDF applies a pulsed electrostatic field to correct axial spatial spread of fragment ions, achieving MS/MS resolution up to 10 000.
Main Results and Discussion
- Na⁺ adducts of LNnT and LNT yielded distinctive B- and C-type fragment ions, allowing unambiguous assignment of glycosidic linkage positions.
- Bariated adducts of PGE2 and PGD2 underwent charge-remote fragmentation, producing diagnostic ions that reflect differences in ring structure and hydroxyl placement.
- Metal cation selection proved critical: Na⁺ improved carbohydrate spectra, whereas Ba²⁺ enhanced prostaglandin fragmentation and interpretation.
Benefits and Practical Applications of the Method
- High-resolution MS/MS facilitates rapid isomer discrimination without extensive sample preparation.
- Customizable cationization strategies optimize fragmentation for different analyte classes.
- Applicable to complex biological and industrial samples for quality control and biomarker discovery.
Future Trends and Applications
- Widespread adoption of ASDF-enhanced reflectrons in routine analytical workflows.
- Extension to other isomeric systems such as positional lipid isomers and stereoisomers.
- Integration with ion mobility spectrometry and chromatography for multi-dimensional separation and identification.
Conclusion
The integration of Axial Spatial Distribution Focusing with a curved field reflectron markedly improves MS/MS resolving power and enables precise structural differentiation of isomeric carbohydrates and lipids. Strategic cation selection further refines fragmentation pathways, establishing a versatile platform for high-confidence structural analysis in analytical chemistry.
References
- Zirrolli J A et al. J Am Soc Mass Spectrom. 1990;1(4):325–335.
- Yamagaki T et al. J Mass Spectrom. 2006;41(4):454–462.
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