Hippocampal subfield viscoelasticity in amnestic mild cognitive impairment evaluated with MR elastography

Peyton L Delgorio1, Lucy V Hiscox1, Grace McIlvain1

  • 1Department of Biomedical Engineering, University of Delaware, Newark, DE, United States.

Neuroimage. Clinical
|January 22, 2023
PubMed

Insights

Magnetic resonance elastography (MRE) reveals altered mechanical properties in hippocampal subfields (HCsf) of individuals with amnestic mild cognitive impairment (aMCI). This technique offers a sensitive method for detecting early Alzheimer's disease pathology.

Area of Science:

  • Neuroimaging
  • Biophysics
  • Neurology

Background:

  • Hippocampal subfields (HCsf) are crucial for memory and vulnerable in amnestic mild cognitive impairment (aMCI), a preclinical stage of Alzheimer's disease.
  • Current methods like volume measurement lack specificity for microstructural changes in HCsf.

Purpose of the Study:

  • To investigate the utility of magnetic resonance elastography (MRE) in assessing the viscoelastic properties of HCsf.
  • To determine if MRE can detect differences in tissue integrity in individuals with aMCI compared to controls.

Main Methods:

  • Magnetic resonance elastography (MRE) was employed to measure the viscoelastic mechanical properties of HCsf in adults with aMCI and age-matched controls.
  • Group comparisons focused on stiffness and damping ratio within specific HCsf.

Main Results:

  • Individuals with aMCI showed reduced HCsf stiffness (CA1-CA2, DG-CA3) and increased damping ratio (CA1-CA2), indicating compromised tissue integrity.
  • HCsf stiffness improved the classification accuracy of aMCI beyond volume measurements.
  • Lower DG-CA3 stiffness independently predicted aMCI status.

Conclusions:

  • MRE is a sensitive tool for detecting subtle pathological changes in HCsf associated with aMCI.
  • Viscoelastic properties offer a more specific measure of tissue integrity than volume alone for early Alzheimer's disease detection.