2019
DOI: 10.1002/mrm.27922
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Effects of different macromolecular models on reproducibility of FID‐MRSI at 7T

Abstract: Purpose A properly characterized macromolecular (MM) contribution is essential for accurate metabolite quantification in FID‐MRSI. MM information can be included into the fitting model as a single component or parameterized and included over several individual MM resonances, which adds flexibility when pathologic changes are present but is prone to potential overfitting. This study investigates the effects of different MM models on MRSI reproducibility. Methods Clinically feasible, high‐resolution FID‐MRSI dat… Show more

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Cited by 17 publications
(31 citation statements)
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“…There is evidence that the spectral pattern of the macromolecular background can vary in tumors. Despite promising results in healthy volunteers ( Heckova et al, 2019 , Považan et al, 2018 ), we could not reproduce these results in our patient population. Thus, we opted for a single MM contribution, which should be replaced by a more flexible parameterized MM model to account for changes in the spectral pattern of macromolecular components ( Cudalbu et al, 2020 ).…”
Section: Discussionmentioning
confidence: 67%
“…There is evidence that the spectral pattern of the macromolecular background can vary in tumors. Despite promising results in healthy volunteers ( Heckova et al, 2019 , Považan et al, 2018 ), we could not reproduce these results in our patient population. Thus, we opted for a single MM contribution, which should be replaced by a more flexible parameterized MM model to account for changes in the spectral pattern of macromolecular components ( Cudalbu et al, 2020 ).…”
Section: Discussionmentioning
confidence: 67%
“…However, the available SNR and spectral resolution at 3T limited the quantification of lower concentrated metabolites (e.g., glutathione, γ-aminobutyric acid). Using a short acquisition delay of 0.8 ms made an improved optimization of lipid contamination via L 2 -lipid regularization and macromolecular signals 37 necessary because of their fast T 2 -relaxation.…”
Section: Discussionmentioning
confidence: 99%
“…The proper characterization of macromolecules is necessary to synthesize realistic data from simulation, which is necessary to optimize the choice of TE when macromolecules have not been nulled or subtracted. 15 The use of realistic macromolecular shapes in fitting has been shown to be superior 2,16 to the commonly used, but non-physically realistic, spline baseline.…”
mentioning
confidence: 99%