Information on tissue metabolites obtained by in vivo proton magnetic resonance spectroscopy (MRS) offers considerable potential for clinical diagnosis and biomedical research. Analysis of this data benefits from parametric modeling methods that use a priori spectral information. We have previously used computer simulation methods to obtain detailed spectral information, using parameters measured by high-resolution NMR of metabolites in solution. Improvements of the spectral model are needed to account for additional signal contributions, and differences in the in vivo environment or metabolite conformations. A goal of this project is accurate characterization of the NMR parameters of metabolites and other signal contributions observed with in vivo 1H MRS in brain, in order to improve the accuracy of parametric spectral analysis. Studies will be carried out using high-resolution NMR of metabolites in solution, in tissue homogenates, and in vivo. Additional studies will characterize the macromolecular contributions to spectra of brain, which will also be incorporated into the parametric signal model to further improve the spectral analysis. A second goal of this study is the development of methods for classification of large amounts of in vivo spectra, such as that obtained for clinical MR spectroscopic imaging studies using automated parametric spectral analysis. Supervised and unsupervised methods will be used to probabilistically identify each voxel with multiple possible classes. This work will extend clinical MRS applications by providing increased accuracy and information on the intracellular environment. This development will support ongoing clinical studies investigating changes of brain metabolites associated with Alzheimer's disease and aging, epilepsy, and multiple sclerosis.

Agency
National Institute of Health (NIH)
Institute
National Institute on Aging (NIA)
Type
Research Project (R01)
Project #
5R01AG012119-05
Application #
6149914
Study Section
Diagnostic Imaging Study Section (DMG)
Program Officer
Buckholtz, Neil
Project Start
1996-02-10
Project End
2004-01-31
Budget Start
2000-02-01
Budget End
2001-01-31
Support Year
5
Fiscal Year
2000
Total Cost
$241,263
Indirect Cost
Name
Northern California Institute Research & Education
Department
Type
DUNS #
City
San Francisco
State
CA
Country
United States
Zip Code
94121
Wokrina, Tim; Ulrich, Marco; Weber-Fahr, Wolfgang et al. (2008) 3D RINEPT {1H}-31P CSI: a feasible approach for the study of membrane turnover in the human brain. Magn Reson Med 59:999-1004
Soher, Brian J; Young, Karl; Bernstein, Aaron et al. (2007) GAVA: spectral simulation for in vivo MRS applications. J Magn Reson 185:291-9
Ende, Gabriele; Demirakca, Traute; Walter, Sigrid et al. (2007) Subcortical and medial temporal MR-detectable metabolite abnormalities in unipolar major depression. Eur Arch Psychiatry Clin Neurosci 257:36-9
Hermann, Derik; Sartorius, Alexander; Welzel, Helga et al. (2007) Dorsolateral prefrontal cortex N-acetylaspartate/total creatine (NAA/tCr) loss in male recreational cannabis users. Biol Psychiatry 61:1281-9
Ende, Gabriele; Braus, Dieter F; Walter, Sigrid et al. (2003) Multiregional 1H-MRSI of the hippocampus, thalamus, and basal ganglia in schizophrenia. Eur Arch Psychiatry Clin Neurosci 253:9-15
Obergriesser, Thomas; Ende, Gabriele; Braus, Dieter F et al. (2003) Long-term follow-up of magnetic resonance-detectable choline signal changes in the hippocampus of patients treated with electroconvulsive therapy. J Clin Psychiatry 64:775-80
Li, Belinda S Y; Babb, James S; Soher, Brian J et al. (2002) Reproducibility of 3D proton spectroscopy in the human brain. Magn Reson Med 47:439-46
Capizzano, A A; Vermathen, P; Laxer, K D et al. (2001) Temporal lobe epilepsy: qualitative reading of 1H MR spectroscopic images for presurgical evaluation. Radiology 218:144-51
Soher, B J; Young, K; Maudsley, A A (2001) Representation of strong baseline contributions in 1H MR spectra. Magn Reson Med 45:966-72
Wiedermann, D; Schuff, N; Matson, G B et al. (2001) Short echo time multislice proton magnetic resonance spectroscopic imaging in human brain: metabolite distributions and reliability. Magn Reson Imaging 19:1073-80

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