GC-IRMS: δ13C in Fatty Acid Methyl Esters (FAME)
Applications | 2014 | Thermo Fisher ScientificInstrumentation
Gas chromatography–isotope ratio mass spectrometry (GC-IRMS) of fatty acid methyl esters (FAME) enables precise measurement of carbon isotope ratios (δ13C) at natural and enriched abundances. This capability supports ecological studies, metabolic tracing, and food authenticity assessments by allowing compound-specific isotope profiling with sub-picomole sensitivity.
The application note evaluated Thermo Scientific GC-IRMS systems for δ13C analysis of FAME. Key aims were to:
Samples of methyl myristate and methyl decanoate at natural and 13C-enriched abundances were analyzed in dilution series (10 ng to sub-nanogram on-column). δ13C values were determined by monitoring ion currents at m/z 44, 45, and 46. Precision was benchmarked against shot-noise limits derived from counting statistics.
Thermo Scientific GC-IRMS platforms deliver high precision δ13C measurements for both natural and 13C-enriched FAME with sub-picomole detection limits and broad dynamic range. Clearly defined performance metrics for precision, sensitivity, and linearity facilitate instrument comparison and support diverse applications in research and industry.
GC/MSD, GC/HRMS
IndustriesFood & Agriculture
ManufacturerThermo Fisher Scientific
Summary
Significance of the Topic
Gas chromatography–isotope ratio mass spectrometry (GC-IRMS) of fatty acid methyl esters (FAME) enables precise measurement of carbon isotope ratios (δ13C) at natural and enriched abundances. This capability supports ecological studies, metabolic tracing, and food authenticity assessments by allowing compound-specific isotope profiling with sub-picomole sensitivity.
Study Objectives and Overview
The application note evaluated Thermo Scientific GC-IRMS systems for δ13C analysis of FAME. Key aims were to:
- Assess precision and detection limits across a wide range of sample amounts.
- Characterize linearity and dynamic range for both natural abundance and 13C-enriched tracers.
- Demonstrate practical applications in metabolic and authenticity studies.
Methodology and Instrumentation
Samples of methyl myristate and methyl decanoate at natural and 13C-enriched abundances were analyzed in dilution series (10 ng to sub-nanogram on-column). δ13C values were determined by monitoring ion currents at m/z 44, 45, and 46. Precision was benchmarked against shot-noise limits derived from counting statistics.
Instrumentation Used
- Thermo Scientific GC-IRMS systems (delta S and DELTA V isotope ratio mass spectrometers)
- Thermo Scientific GC Isolink II combustion interface
- High-purity CO2 reference gas pulses for calibration
Main Results and Discussion
- Natural Abundance FAME: Achieved 0.13‰ (1σ) precision at 10 ng on-column, rising to 0.17‰ RSD at 0.3 ng.
- 13C-Enriched Tracers: Maintained linear response and excellent precision (SDM < 0.17%) down to 0.3 ng of 1.43 atom% enriched methyl decanoate.
- Linearity: Non-linearity remained below analytical uncertainty over a dynamic range exceeding 50-fold sample size variations.
- Detection Limits: Sub-picomole carbon sensitivity enabled robust measurement at ≤ 0.8 pmol FAME.
- Biolabeling Demonstration: Tracer experiments in neonatal serum revealed δ13C shifts consistent with dietary corn oil (C4) incorporation.
Benefits and Practical Applications
- High Precision and Sensitivity: Suitable for ecological, biochemical, and QA/QC laboratories.
- Minimal Sample Requirements: Enables studies with limited biological material.
- Natural Abundance Tracing: Offers an alternative to radioactive or heavily labeled isotopes.
- Food Authenticity Control: Detects adulteration via compound-specific δ13C profiling.
Future Trends and Potential Applications
- Integration with ultra-high-resolution chromatography for enhanced separation.
- Multi-isotope tracer designs for complex metabolic pathway elucidation.
- Automated isotope data processing using machine learning.
- Development of portable GC-IRMS systems for on-site authenticity and environmental monitoring.
Conclusion
Thermo Scientific GC-IRMS platforms deliver high precision δ13C measurements for both natural and 13C-enriched FAME with sub-picomole detection limits and broad dynamic range. Clearly defined performance metrics for precision, sensitivity, and linearity facilitate instrument comparison and support diverse applications in research and industry.
References
- Johnston et al., Proc. R. Soc. Lond. B 260, 293–297 (1995)
- Gilmour et al., Phil Trans. R. Soc. Lond. B 349, 135–142 (1995)
- Goodman & Brenna, Anal. Chem. 64, 1083–1095 (1992)
- Demmelmair et al., J. Pediatr. Gastroenterol. Nutr. 21, 31–36 (1995)
- Woodbury et al., Anal. Chem. 67, 2685–2690 (1995)
- Merritt et al., Anal. Chem. 67, 2461–2473 (1995)
Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.
Similar PDF
GC-MS-IRMS: Addressing authenticity of fish oils by carbon and hydrogen isotope fingerprints
2022|Thermo Fisher Scientific|Posters
Isotope ratio MS GC-MS-IRMS: Addressing authenticity of fish oils by carbon and hydrogen isotope fingerprints Mario Tuthorn1, David Psomiadis2, Balazs Horvath2, Maria de Castro3 1Thermo Fisher Scientific, Bremen, Germany; 2Imprint Analytics GmbH, Neutal, Austria; 3Thermo Fisher Scientific, Madrid, Spain Abstract…
Key words
tifi, tifiisotope, isotopefingerprints, fingerprintsorigin, originirms, irmsgeographical, geographicaloils, oilsadulteration, adulterationcarbon, carbonmeat, meatrainfall, rainfallfish, fishhydrogen, hydrogenfood, foodproducts
Quantitative Analysis of Fatty Acid Methyl Esters (FAMEs) Using Smart EI/CI Ion Source
2022|Shimadzu|Applications
GC-MS GCMS-TQ™ Series and Smart Metabolites Database™ Application News Quantitative Analysis of Fatty Acid Methyl Esters (FAMEs) Using Smart EI/CI Ion Source Y. Sakamoto and Y. Kawakita User Benefits PCI-MRM mode is ideal for analyzing fatty acids, as it…
Key words
pci, pcismart, smartmrm, mrmfatty, fattysource, sourceion, ionsensitivity, sensitivityacid, acidnews, newsesters, estersmode, modeconcentration, concentrationmethylation, methylationdedicated, dedicatedpretreated
Clumped isotope analysis of methane using HR-IRMS
2020|Thermo Fisher Scientific|Technical notes
WHITE PAPER 30767 Clumped isotope analysis of methane using HR-IRMS: New insights into origin and formation mechanisms of natural gases and a potential geothermometer Authors: Guannan Dong, Hao Xie, John Eiler, California Institute of Technology, Pasadena, USA; Naizhong Zhang, Mayuko…
Key words
methane, methaneclumped, clumpedisotope, isotopeequilibrium, equilibriumisotopologue, isotopologueisotopic, isotopicformation, formationcontaminant, contaminantthermogenic, thermogenicisotopologues, isotopologuesnatural, naturalbulk, bulkamong, amongcaltech, caltechgeothermometer
GC-MS-IRMS: Addressing authenticity of fish oils by carbon and hydrogen isotope fingerprints 
2023|Thermo Fisher Scientific|Applications
Application note | AN002257 GC-MS-IRMS GC-MS-IRMS: Addressing authenticity of fish oils by carbon and hydrogen isotope fingerprints Authors Introduction Mario Tuthorn1, David Psomiadis2, Growing consumer awareness of the benefits of omega-3 fatty acids supplements Balazs Horvath , Maria de Castro…
Key words
irms, irmscod, codsalmon, salmonfish, fishnorway, norwayorigin, originherring, herringisotope, isotopearctic, arcticatlantic, atlanticmodel, modeloils, oilsfingerprints, fingerprintspolar, polarthermo