Diffusion tensor fiber tracking of human brain connectivity: aquisition methods, reliability analysis and biological results

被引:125
作者
Lori, NF
Akbudak, E
Shimony, JS
Cull, TS
Snyder, AZ
Guillory, RK
Conturo, TE
机构
[1] Washington Univ, Sch Med, Mallinckrodt Inst Radiol, Neuroimaging Labs, St Louis, MO 63110 USA
[2] Washington Univ, Dept Phys, St Louis, MO 63130 USA
关键词
brain function; brain anatomy; white matter; MRI; diffusion tensor; connectivity;
D O I
10.1002/nbm.779
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
We present a description, biological results and a reliability analysis for the method of diffusion tensor tracking (DTT) of white matter fiber pathways. In DTT, diffusion-tensor MRI (DT-MRI) data are collected and processed to visualize the line trajectories of fiber bundles within white matter (WM) pathways of living humans. A detailed description of the data acquisition is given. Technical aspects and experimental results are illustrated for the geniculo-calcarine tract with broad projections to visual cortex, occipital and parietal U-fibers, and the temporocalcarine ventral pathway. To better understand sources of error and to optimize the method, accuracy and precision were analyzed by computer simulations. In the simulations, noisy DT-MRI data were computed that would be obtained for a WM pathway having a helical trajectory passing through gray matter. The error vector between the real and ideal track was computed, and random errors accumulated with the square root of track length consistent with a random-walk process. Random error was most dependent on signal-to-noise ratio, followed by number of averages, pathway anisotropy and voxel size, in decreasing order. Systematic error only occurred for a few conditions, and was most dependent on the stepping algorithm, anisotropy of the surrounding tissue, and non-equal voxel dimensions. Both random and systematic errors were typically below the voxel dimension. Other effects such as track rebound and track recovery also depended on experimental conditions. The methods, biological results and error analysis herein may improve the understanding and optimization of DTT for use in various applications in neuroscience and medicine. Copyright (C) 2002 John Wiley Sons, Ltd.
引用
收藏
页码:493 / 515
页数:23
相关论文
共 85 条
  • [1] AMYGDALO-CORTICAL PROJECTIONS IN THE MONKEY (MACACA-FASCICULARIS)
    AMARAL, DG
    PRICE, JL
    [J]. JOURNAL OF COMPARATIVE NEUROLOGY, 1984, 230 (04) : 465 - 496
  • [2] Theoretical analysis of the effects of noise on diffusion tensor imaging
    Anderson, AW
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2001, 46 (06) : 1174 - 1188
  • [3] Utilizing the diffusion-to-noise ratio to optimize magnetic resonance diffusion tensor acquisition strategies for improving measurements of diffusion anisotropy
    Armitage, PA
    Bastin, ME
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2001, 45 (06) : 1056 - 1065
  • [4] TIME COURSE EPI OF HUMAN BRAIN-FUNCTION DURING TASK ACTIVATION
    BANDETTINI, PA
    WONG, EC
    HINKS, RS
    TIKOFSKY, RS
    HYDE, JS
    [J]. MAGNETIC RESONANCE IN MEDICINE, 1992, 25 (02) : 390 - 397
  • [5] Basser Peter J., 1995, P140
  • [6] Basser PJ, 2000, MAGNET RESON MED, V44, P625, DOI 10.1002/1522-2594(200010)44:4<625::AID-MRM17>3.0.CO
  • [7] 2-O
  • [8] MR DIFFUSION TENSOR SPECTROSCOPY AND IMAGING
    BASSER, PJ
    MATTIELLO, J
    LEBIHAN, D
    [J]. BIOPHYSICAL JOURNAL, 1994, 66 (01) : 259 - 267
  • [9] Basser PJ, 1996, J MAGN RESON SER B, V111, P209, DOI [10.1006/jmrb.1996.0086, 10.1016/j.jmr.2011.09.022]
  • [10] Basser PJ, 2000, MAGNET RESON MED, V44, P41, DOI 10.1002/1522-2594(200007)44:1<41::AID-MRM8>3.0.CO