The Larmor frequency shift of a white matter magnetic microstructure model with multiple sources

Author:

Sandgaard Anders Dyhr1ORCID,Shemesh Noam2ORCID,Østergaard Leif1ORCID,Kiselev Valerij G.3ORCID,Jespersen Sune Nørhøj14ORCID

Affiliation:

1. Center of Functionally Integrative Neuroscience, Department of Clinical Medicine Aarhus University Aarhus Denmark

2. Champalimaud Research Champalimaud Centre for the Unknown Lisbon Portugal

3. Division of Medical Physics, Department of Radiology University Medical Center Freiburg Freiburg Germany

4. Department of Physics and Astronomy Aarhus University Aarhus Denmark

Abstract

AbstractMagnetic susceptibility imaging may provide valuable information about chemical composition and microstructural organization of tissue. However, its estimation from the MRI signal phase is particularly difficult as it is sensitive to magnetic tissue properties ranging from the molecular to the macroscopic scale. The MRI Larmor frequency shift measured in white matter (WM) tissue depends on the myelinated axons and other magnetizable sources such as iron‐filled ferritin. We have previously derived the Larmor frequency shift arising from a dense medium of cylinders with scalar susceptibility and arbitrary orientation dispersion. Here, we extend our model to include microscopic WM susceptibility anisotropy as well as spherical inclusions with scalar susceptibility to represent subcellular structures, biologically stored iron, and so forth. We validate our analytical results with computer simulations and investigate the feasibility of estimating susceptibility using simple iterative linear least squares without regularization or preconditioning. This is done in a digital brain phantom synthesized from diffusion MRI measurements of an ex vivo mouse brain at ultra‐high field.

Funder

Danmarks Frie Forskningsfond

Lundbeck Foundation

Publisher

Wiley

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. The magnetic properties of packings of cylinders;Journal of Magnetism and Magnetic Materials;2024-10

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