Hippocampal microscopic fractional anisotropy is reduced in temporal lobe epilepsy

Nico J J Arezza1,2, Hana H Abbas3, Caroline Chadwick3

  • 1Department of Medical Biophysics, Schulich School of Medicine and Dentistry, Western University, London, ON, Canada.

Insights

Microscopic fractional anisotropy (MFA) detects hippocampal abnormalities in drug-resistant temporal lobe epilepsy (TLE), even in MRI-negative cases. This diffusion MRI metric shows promise for improving seizure focus localization in epilepsy surgery candidates.

Area of Science:

  • Neuroimaging
  • Epilepsy Research
  • Diffusion MRI

Background:

  • Surgical resection is optimal for drug-resistant focal temporal lobe epilepsy (TLE), but outcomes improve with accurate seizure focus localization via MRI.
  • Many TLE patients are MRI-negative, hindering localization with conventional relaxation-weighted MRI.
  • Diffusion MRI, particularly fractional anisotropy (FA), shows sensitivity to neuronal abnormalities and axon damage.

Purpose of the Study:

  • To investigate the sensitivity of microscopic fractional anisotropy (MFA), a novel diffusion MRI metric, to hippocampal abnormalities in drug-resistant TLE.
  • To assess MFA's potential for detecting abnormalities in MRI-negative TLE patients.
  • To evaluate MFA's utility in localizing the epileptogenic zone in TLE patients undergoing presurgical evaluation.

Main Methods:

  • Diffusion MRI was performed on 19 drug-resistant TLE patients (10 MR-negative) and 18 healthy volunteers using a 3T scanner.
  • A deep-learning method segmented the hippocampus into subregions (subiculum, CA1, CA2/3, CA4/DG) for analysis.
  • Measurements of subregion volume, diffusivity, FA, and MFA were compared between TLE patients and controls, and assessed for hemispheric asymmetry in a subset of TLE patients.

Main Results:

  • Microscopic fractional anisotropy (MFA) was reduced in the hippocampus of drug-resistant TLE patients compared to healthy volunteers.
  • Subregion analysis revealed significantly reduced MFA specifically in the CA4/dentate gyrus (DG) region in TLE patients.
  • In TLE patients with suspected unilateral pathology, MFA was significantly lower in the ipsilateral CA4/DG region compared to the contralateral side; standard FA and volume metrics showed no significant differences.

Conclusions:

  • Microscopic fractional anisotropy (MFA) can detect hippocampal abnormalities in drug-resistant TLE, including in MRI-negative cases.
  • MFA's sensitivity to axon integrity, irrespective of orientation, makes it valuable for identifying subtle abnormalities in gray matter regions like the CA4/DG.
  • MFA shows potential as a complementary imaging biomarker to improve seizure focus localization for surgical candidates in TLE.