Neural Regeneration Research (Jan 2018)

Dynamic correlation of diffusion tensor imaging and neurological function scores in beagles with spinal cord injury

  • Chang-Bin Liu,
  • De-Gang Yang,
  • Qian-Ru Meng,
  • Da-Peng Li,
  • Ming-Liang Yang,
  • Wei Sun,
  • Wen-Hao Zhang,
  • Chang Cai,
  • Liang-Jie Du,
  • Jun Li,
  • Feng Gao,
  • Yan Yu,
  • Xin Zhang,
  • Zhen-Tao Zuo,
  • Jian-Jun Li

DOI
https://doi.org/10.4103/1673-5374.232485
Journal volume & issue
Vol. 13, no. 5
pp. 877 – 886

Abstract

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Exploring the relationship between different structure of the spinal cord and functional assessment after spinal cord injury is important. Quantitative diffusion tensor imaging can provide information about the microstructure of nerve tissue and can quantify the pathological damage of spinal cord white matter and gray matter. In this study, a custom-designed spinal cord contusion-impactor was used to damage the T10 spinal cord of beagles. Diffusion tensor imaging was used to observe changes in the whole spinal cord, white matter, and gray matter, and the Texas Spinal Cord Injury Score was used to assess changes in neurological function at 3 hours, 24 hours, 6 weeks, and 12 weeks after injury. With time, fractional anisotropy values after spinal cord injury showed a downward trend, and the apparent diffusion coefficient, mean diffusivity, and radial diffusivity first decreased and then increased. The apparent diffusion-coefficient value was highly associated with the Texas Spinal Cord Injury Score for the whole spinal cord (R = 0.919, P = 0.027), white matter (R = 0.932, P = 0.021), and gray matter (R = 0.882, P = 0.048). Additionally, the other parameters had almost no correlation with the score (P > 0.05). In conclusion, the highest and most significant correlation between diffusion parameters and neurological function was the apparent diffusion-coefficient value for white matter, indicating that it could be used to predict the recovery of neurological function accurately after spinal cord injury.

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