DocumentCode :
72205
Title :
Quantitative Susceptibility Mapping by Inversion of a Perturbation Field Model: Correlation With Brain Iron in Normal Aging
Author :
Poynton, Clare B. ; Jenkinson, Mark ; Adalsteinsson, Elfar ; Sullivan, Edith V. ; Pfefferbaum, Adolf ; Wells, William
Author_Institution :
Harvard-MIT Div. of Health Sci. & Technol. (HST), Massachusetts Inst. of Technol., Cambridge, MA, USA
Volume :
34
Issue :
1
fYear :
2015
fDate :
Jan. 2015
Firstpage :
339
Lastpage :
353
Abstract :
There is increasing evidence that iron deposition occurs in specific regions of the brain in normal aging and neurodegenerative disorders such as Parkinson´s, Huntington´s, and Alzheimer´s disease. Iron deposition changes the magnetic susceptibility of tissue, which alters the MR signal phase, and allows estimation of susceptibility differences using quantitative susceptibility mapping (QSM). We present a method for quantifying susceptibility by inversion of a perturbation model, or “QSIP.” The perturbation model relates phase to susceptibility using a kernel calculated in the spatial domain, in contrast to previous Fourier-based techniques. A tissue/air susceptibility atlas is used to estimate B0 inhomogeneity. QSIP estimates in young and elderly subjects are compared to postmortem iron estimates, maps of the Field-Dependent Relaxation Rate Increase, and the L1-QSM method. Results for both groups showed excellent agreement with published postmortem data and in vivo FDRI: statistically significant Spearman correlations ranging from Rho=0.905 to Rho=1.00 were obtained. QSIP also showed improvement over FDRI and L1-QSM: reduced variance in susceptibility estimates and statistically significant group differences were detected in striatal and brainstem nuclei, consistent with age-dependent iron accumulation in these regions.
Keywords :
Fourier analysis; biological tissues; biomedical MRI; brain; iron; magnetic susceptibility; medical disorders; medical image processing; neurophysiology; perturbation theory; Alzheimer disease; B0 inhomogeneity; Fourier-based techniques; Huntington disease; L1-QSM method; MR signal phase; Parkinson disease; age-dependent iron accumulation; brain iron correlation; brainstem nuclei; field-dependent relaxation rate increase; iron deposition; kernel; magnetic susceptibility; neurodegenerative disorders; normal aging; perturbation field model inversion; perturbation model; postmortem iron estimates; published postmortem data; quantitative susceptibility mapping; spatial domain; statistically significant Spearman correlations; striatal nuclei; tissue-air susceptibility atlas; Brain modeling; Estimation; Iron; Kernel; Laplace equations; Magnetic resonance imaging; Magnetic susceptibility; Atlases; brain iron; inverse methods; magnetic resonance imaging (MRI); normal aging; quantitative susceptibility mapping;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2014.2358552
Filename :
6899685
Link To Document :
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