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  Macromolecular background signal and non‐Gaussian metabolite diffusion determined in human brain using ultra‐high diffusion weighting

Şimşek, K., Döring, A., Pampel, A., Möller, H. E., & Kreis, R. (2022). Macromolecular background signal and non‐Gaussian metabolite diffusion determined in human brain using ultra‐high diffusion weighting. Magnetic Resonance in Medicine, 88(5), 1962-1977. doi:10.1002/mrm.29367.

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 Creators:
Şimşek, Kadir1, 2, 3, Author
Döring, André4, Author
Pampel, André5, Author           
Möller, Harald E.5, Author           
Kreis, Roland1, 3, Author
Affiliations:
1Magnetic Resonance Methodology, University Hospital Bern, Switzerland, ou_persistent22              
2Graduate School for Cellular and Biomedical Sciences (GCB), University of Bern, Switzerland, ou_persistent22              
3Translational Imaging Center (TIC), Swiss Institute for Translational and Entrepreneurial Medicine, Bern, Switzerland, ou_persistent22              
4Brain Research Imaging Centre, School of Psychology, Cardiff University, United Kingdom, ou_persistent22              
5Methods and Development Unit Nuclear Magnetic Resonance, MPI for Human Cognitive and Brain Sciences, Max Planck Society, ou_634558              

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Free keywords: MR spectroscopy; Apparent diffusion constants; Brain; Diffusion; Fitting; Macromolecules; Microstructure; Modeling; Quantification
 Abstract: Purpose: Definition of a macromolecular MR spectrum based on diffusion properties rather than relaxation time differences and characterization of non-Gaussian diffusion of brain metabolites with strongly diffusion-weighted MR spectroscopy.

Methods: Short echo time MRS with strong diffusion-weighting with b-values up to 25 ms/μm2 at two diffusion times was implemented on a Connectom system and applied in combination with simultaneous spectral and diffusion decay modeling. Motion-compensation was performed with a combined method based on the simultaneously acquired water and a macromolecular signal.

Results: The motion compensation scheme prevented spurious signal decay reflected in very small apparent diffusion constants for macromolecular signal. Macromolecular background signal patterns were determined using multiple fit strategies. Signal decay corresponding to non-Gaussian metabolite diffusion was represented by biexponential fit models yielding parameter estimates for human gray matter that are in line with published rodent data. The optimal fit strategies used constraints for the signal decay of metabolites with limited signal contributions to the overall spectrum.

Conclusion: The determined macromolecular spectrum based on diffusion properties deviates from the conventional one derived from longitudinal relaxation time differences calling for further investigation before use as experimental basis spectrum when fitting clinical MR spectra. The biexponential characterization of metabolite signal decay is the basis for investigations into pathologic alterations of microstructure.

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Language(s): eng - English
 Dates: 2022-05-082022-02-012022-05-312022-07-082022-08-24
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.1002/mrm.29367
Other: epub 2022
PMID: 35803740
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Grant ID : 202962; 320030-175984
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Funding organization : Swiss National Science Foundation (SNSF)
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Grant ID : -
Funding program : -
Funding organization : Universität Bern

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Title: Magnetic Resonance in Medicine
Source Genre: Journal
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Publ. Info: New York : Wiley-Liss
Pages: - Volume / Issue: 88 (5) Sequence Number: - Start / End Page: 1962 - 1977 Identifier: ISSN: 0740-3194
CoNE: https://pure.mpg.de/cone/journals/resource/954925538149