Utveckling av metoder för att mäta isotopkvoter i kolesterol med FT-ICR-masspektrometri
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Publicerad
Typ
Examensarbete på kandidatnivå
Bachelor Thesis
Bachelor Thesis
Modellbyggare
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Sammanfattning
Cancer remains one of the leading causes of mortality worldwide, highlighting the need for
reliable methods for early detection. Metabolic reprogramming in cancer cells, particularly
within lipid metabolism, can alter the isotopic composition of cholesterol, potentially
giving rise to measurable differences between healthy and malignant tissue. Cholesterol
isotope ratios therefore represent a promising class of biomarkers for tumor progression,
but their accurate determination requires analytical techniques with exceptionally high
mass resolution and precision. The aim of this study was to develop and evaluate a
high-resolution method for isotope ratio analysis of cholesterol using Fourier Transform Ion
Cyclotron Resonance mass spectrometry (FT-ICR-MS). Particular emphasis was placed
on achieving efficient and reproducible ionization of this inherently challenging analyte.
Method development was carried out in two stages. In the first phase, analytical
parameters were optimized using a structured experimental design, where MALDI with
an HCCA matrix was evaluated both with and without chemical derivatization. In the
second phase, the optimized conditions were applied to isotopically labeled samples to
enable quantitative analysis of isotope patterns. Method performance was assessed in
terms of signal intensity, fragmentation behavior, reproducibility, and preservation of
isotopic information, allowing for a comprehensive evaluation of analytical reliability and
sensitivity to experimental variation.
The results demonstrate that both ionization strategy and experimental parame
ters critically influence method performance. Derivatization improved ionization efficiency
and increased signal intensity, while optimization through experimental design enhanced
reproducibility. However, significant limitations remain, particularly related to variability
inherent to the MALDI process and uncertainties in model predictability, which affect
both precision and generalizability. Overall, the study shows that FT-ICR-MS holds
strong potential for accurate isotope ratio analysis of cholesterol, but that its practical
reliability is highly dependent on sample preparation, calibration strategies, and control
of experimental variability. Further method refinement and validation are therefore
required before application to biological samples and diagnostic contexts can be considered,
underscoring both the promise and current limitations of the approach.
