Single- and double-Diffusion encoding MRI for studying ex vivo apparent axon diameter distribution in spinal cord white matter

被引:10
|
作者
Anaby, Debbie [1 ,2 ]
Morozov, Darya [1 ]
Seroussi, Inbar [3 ]
Hametner, Simon [4 ]
Sochen, Nir [3 ,5 ]
Cohen, Yoram [1 ,5 ]
机构
[1] Tel Aviv Univ, Raymond & Beverly Sackler Fac Exact Sci, Sch Chem, Tel Aviv, Israel
[2] Sheba Med Ctr, Dept Diagnost Imaging, Tel Hashomer, Israel
[3] Tel Aviv Univ, Raymond & Beverly Sackler Fac Exact Sci, Sch Math Sci, Tel Aviv, Israel
[4] Med Univ Vienna, Ctr Brain Res, Neuroimmunol Dept, Vienna, Austria
[5] Tel Aviv Univ, Sagol Sch Neurosci, Tel Aviv, Israel
关键词
axon diameter; diffusion MRI; double diffusion encoding (DDE)-MRI; microstructure; spinal cord; PULSED-FIELD-GRADIENT; Q-SPACE DIFFUSION; NEURITE ORIENTATION DISPERSION; COMPARTMENT SHAPE ANISOTROPY; IN-VIVO; EXPERIMENTAL PARAMETERS; STRUCTURAL INFORMATION; CONDUCTION-VELOCITY; CORPUS-CALLOSUM; WATER DIFFUSION;
D O I
10.1002/nbm.4170
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Mapping average axon diameter (AAD) and axon diameter distribution (ADD) in neuronal tissues non-invasively is a challenging task that may have a tremendous effect on our understanding of the normal and diseased central nervous system (CNS). Water diffusion is used to probe microstructure in neuronal tissues, however, the different water populations and barriers that are present in these tissues turn this into a complex task. Therefore, it is not surprising that recently we have witnessed a burst in the development of new approaches and models that attempt to obtain, non-invasively, detailed microstructural information in the CNS. In this work, we aim at challenging and comparing the microstructural information obtained from single diffusion encoding (SDE) with double diffusion encoding (DDE) MRI. We first applied SDE and DDE MR spectroscopy (MRS) on microcapillary phantoms and then applied SDE and DDE MRI on an ex vivo porcine spinal cord (SC), using similar experimental conditions. The obtained diffusion MRI data were fitted by the same theoretical model, assuming that the signal in every voxel can be approximated as the superposition of a Gaussian-diffusing component and a series of restricted components having infinite cylindrical geometries. The diffusion MRI results were then compared with histological findings. We found a good agreement between the fittings and the experimental data in white matter (WM) voxels of the SC in both diffusion MRI methods. The microstructural information and apparent AADs extracted from SDE MRI were found to be similar or somewhat larger than those extracted from DDE MRI especially when the diffusion time was set to 40 ms. The apparent ADDs extracted from SDE and DDE MRI show reasonable agreement but somewhat weaker correspondence was observed between the diffusion MRI results and histology. The apparent subtle differences between the microstructural information obtained from SDE and DDE MRI are briefly discussed.
引用
收藏
页数:17
相关论文
共 3 条
  • [1] High-gradient diffusion MRI reveals distinct estimates of axon diameter index within different white matter tracts in the in vivo human brain
    Huang, Susie Y.
    Tian, Qiyuan
    Fan, Qiuyun
    Witzel, Thomas
    Wichtmann, Barbara
    McNab, Jennifer A.
    Bireley, J. Daniel
    Machado, Natalya
    Klawiter, Eric C.
    Mekkaoui, Choukri
    Wald, Lawrence L.
    Nummenmaa, Aapo
    BRAIN STRUCTURE & FUNCTION, 2020, 225 (04) : 1277 - 1291
  • [2] Characterization of spinal cord white matter by suppressing signal from hindered space. A Monte Carlo simulation and an ex vivo ultrahigh-b diffusion-weighted imaging study
    Sapkota, Nabraj
    Yoon, Sook
    Thapa, Bijaya
    Lee, YouJung
    Bisson, Erica F.
    Bowman, Beth M.
    Miller, Scott C.
    Shah, Lubdha M.
    Rose, John W.
    Jeong, Eun-Kee
    JOURNAL OF MAGNETIC RESONANCE, 2016, 272 : 53 - 59
  • [3] High-gradient diffusion MRI reveals distinct estimates of axon diameter index within different white matter tracts in the in vivo human brain
    Susie Y. Huang
    Qiyuan Tian
    Qiuyun Fan
    Thomas Witzel
    Barbara Wichtmann
    Jennifer A. McNab
    J. Daniel Bireley
    Natalya Machado
    Eric C. Klawiter
    Choukri Mekkaoui
    Lawrence L. Wald
    Aapo Nummenmaa
    Brain Structure and Function, 2020, 225 : 1277 - 1291