Generalisation of continuous time random walk to anomalous diffusion MRI models with an age-related evaluation of

Qianqian Yang1, David C Reutens2, Viktor Vegh2

  • 1School of Mathematical Sciences, Faculty of Science, Queensland University of Technology, Brisbane 4000, Australia.

Neuroimage
|January 16, 2022
PubMed

Insights

Anomalous diffusion models reveal age-related microstructural changes in the human corpus callosum. Parameters correlate with aging, offering new insights into brain tissue alterations and improved kurtosis mapping.

Area of Science:

  • Neuroimaging
  • Biophysics
  • Computational Neuroscience

Background:

  • Diffusion MRI provides insights into brain microstructure and neurological disorders.
  • Anomalous diffusion models offer a way to infer microstructural information from diffusion MRI data.

Purpose of the Study:

  • To investigate age-related variations in anomalous diffusion model parameters in human brain white matter, specifically the corpus callosum.
  • To unify various anomalous diffusion models under a single framework for consistent parameter fitting and comparison.
  • To derive a novel method for generating diffusional kurtosis imaging (DKI) maps using sub-diffusion parameters.

Main Methods:

  • Unified super-diffusion, sub-diffusion, quasi-diffusion, and fractional Bloch-Torrey models using continuous time random walk.
  • Derived the DKI model as an approximation of the sub-diffusion model.
  • Analyzed 7T diffusion-weighted MRI data from 65 healthy participants (aged 19-78 years).

Main Results:

  • Anomalous diffusion model parameters (α and β) showed a consistent positive correlation with age in the corpus callosum.
  • The sub-diffusion model provided a robust technique for generating kurtosis and diffusivity maps with superior tissue contrast.
  • Age-related microstructural changes in white matter were detected using anomalous diffusion parameters.

Conclusions:

  • Anomalous diffusion model parameters are sensitive to age-related microstructural changes in the corpus callosum.
  • The unified modeling framework enables consistent comparison of diffusion models.
  • The novel DKI derivation offers improved tissue contrast in neuroimaging analysis.

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