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Updated: Mar 26, 2026

Atomic Scale Structural Studies of Macromolecular Assemblies by Solid-state Nuclear Magnetic Resonance Spectroscopy
Published on: September 17, 2017
Influence of macromolecule baseline on 1 H MR spectroscopic imaging reproducibility
Rebecca Birch1,2, Andrew C Peet3,4, Hamid Dehghani5
1PSIBS Doctoral Training Centre, University of Birmingham, United Kingdom.
Purpose:
Poorly characterized macromolecular (MM) and baseline artefacts are known to reduce metabolite quantitation accuracy in 1 H MR spectroscopic imaging (MRSI). Increasing echo time (TE) and improvements in MM analysis schemes have both been proposed as strategies to improve metabolite measurement reliability. In this study, the influence of TE and two MM analysis schemes on MRSI reproducibility are investigated.
Methods:
An experimentally acquired baseline was collected using an inversion recovery sequence (TI = 750 ms) and incorporated into the analysis method. Intrasubject reproducibility of MRSI scans, acquired at 3 Tesla, was assessed using metabolite coefficients of variance (COVs) for both experimentally acquired and simulated MM analysis schemes. In addition, the reproducibility of TE = 35 ms, 80 ms, and 144 ms was evaluated.
Results:
TE = 80 ms was the most reproducible for singlet metabolites with COVs < 6% for total N-acetyl-aspartate, total creatine, and total choline; however, moderate multiplet dephasing was observed. Analysis incorporating the experimental baseline achieved higher Glu and Glx reproducibility at TE = 35 ms, and showed improvements over the simulated baseline, with higher efficacy for poorer data.
Conclusion:
Overall, TE = 80 ms yielded the most reproducible singlet metabolite estimates. However, combined use of a short TE sequence and the experimental baseline may be preferred as a compromise between accuracy, multiplet dephasing, and T2 bias on metabolite estimates. Magn Reson Med 77:34-43, 2017. © 2016 The Authors Magnetic Resonance in Medicine published by Wiley Periodicals, Inc. on behalf of International Society for Magnetic Resonance in Medicine.
Insights
Echo time (TE) of 80ms offers the most reproducible estimates for singlet metabolites in 1H MR spectroscopic imaging (MRSI). Combining a short TE sequence with an experimental baseline may improve accuracy and reduce artifacts.
Area of Science:
- Magnetic Resonance Imaging
- Spectroscopy
- Biomedical Engineering
Background:
- Macromolecular (MM) artifacts and baseline distortions in 1H MR spectroscopic imaging (MRSI) reduce metabolite quantitation accuracy.
- Increasing echo time (TE) and refining MM analysis are strategies to enhance metabolite measurement reliability.
Purpose of the Study:
- Investigate the influence of TE and MM analysis schemes on MRSI reproducibility.
- Evaluate the impact of different TE values (35ms, 80ms, 144ms) on metabolite quantitation.
- Compare experimentally acquired and simulated MM analysis for MRSI data.
Main Methods:
- Acquired MRSI scans at 3 Tesla with varying TE (35ms, 80ms, 144ms).
- Utilized an experimentally acquired baseline from an inversion recovery sequence (TI=750ms) in the analysis.
- Assessed intrasubject reproducibility using metabolite coefficients of variance (COVs).
Main Results:
- TE=80ms demonstrated the highest reproducibility for singlet metabolites (COVs < 6%) but showed moderate multiplet dephasing.
- Experimental baseline analysis improved Glu and Glx reproducibility at TE=35ms compared to simulated baselines, especially for lower-quality data.
Conclusions:
- TE=80ms provides the most reproducible singlet metabolite estimates in MRSI.
- A combination of a short TE sequence and an experimental baseline offers a balance between accuracy, reduced multiplet dephasing, and T2 bias.
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