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Ex vivo diffusion tensor imaging and quantitative tractography of the rat spinal cord during long‐term recovery from moderate spinal contusion
Author(s) -
Ellingson Benjamin M.,
Kurpad Shekar N.,
Schmit Brian D.
Publication year - 2008
Publication title -
journal of magnetic resonance imaging
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.563
H-Index - 160
eISSN - 1522-2586
pISSN - 1053-1807
DOI - 10.1002/jmri.21578
Subject(s) - diffusion mri , spinal cord injury , fractional anisotropy , spinal cord , white matter , medicine , anatomy , ex vivo , tractography , anesthesia , nuclear medicine , in vivo , magnetic resonance imaging , radiology , biology , microbiology and biotechnology , psychiatry
Purpose To characterize DTI metric changes throughout the length of the entire spinal cord from the acute through chronic stages of spinal cord injury (SCI). Materials and Methods Ex vivo DTI was performed at 9.4 Tesla to examine changes in water diffusion throughout the entire spinal cord (7‐cm) up to 25 weeks after injury in a rat model of contusive SCI. Animals were grouped according to recovery times after injury (2, 5, 15, 20, or 25 weeks), and various DTI metrics were evaluated including transverse and longitudinal apparent diffusion coefficient (tADC and lADC), mean diffusivity (MD), and fractional anisotropy (FA). Results An overall decrease in lADC throughout the cord and decreases in MD remote from the lesion site were observed, along with an increase in tADC within fiber tracts throughout the recovery period. These trends were statistically significant at P < 0.05 and were found in both white and gray matter regions. tADC and lADC distributions in fiber bundles extracted using DTI tractography were well fit by an exponential model (R = 0.998) with time constants of 4.6 and 3.3 days, respectively. Conclusion Results from the current study support the hypothesis that the spinal cord undergoes continual changes during recovery from SCI. J. Magn. Reson. Imaging 2008;28:1068–1079. © 2008 Wiley‐Liss, Inc.