Late combination shows that MEG adds to MRI in classifying MCI versus controls

Delshad Vaghari1, Ehsanollah Kabir2, Richard N Henson3

  • 1MRC Cognition and Brain Sciences Unit, University of Cambridge, UK; Department of Electrical and Computer Engineering, Tarbiat Modares University, Tehran, Iran.

Neuroimage
|March 5, 2022
PubMed

Insights

Magnetoencephalography (MEG) combined with Magnetic Resonance Imaging (MRI) enhances early detection of Mild Cognitive Impairment (MCI), a precursor to Alzheimer's disease (AD). This multimodal approach improves classification accuracy beyond using either neuroimaging technique alone.

Area of Science:

  • Neuroscience
  • Medical Imaging
  • Computational Biology

Background:

  • Early detection of Alzheimer's disease (AD) is critical for effective treatment development.
  • Neuroimaging techniques like structural Magnetic Resonance Imaging (MRI) can identify brain atrophy associated with AD.
  • Functional brain changes may precede structural changes, suggesting potential for earlier detection using functional neuroimaging.

Purpose of the Study:

  • To evaluate Magnetoencephalography (MEG) for detecting functional brain activity differences in Mild Cognitive Impairment (MCI) patients.
  • To assess if resting-state MEG data offers complementary information to structural MRI for classifying MCI versus healthy controls.
  • To introduce and validate a multimodal framework combining MEG and MRI for improved MCI classification.

Main Methods:

  • Utilized multi-kernel learning with support vector machines to classify 163 MCI cases against 144 healthy elderly controls from the BioFIND dataset.
  • Investigated the covariance of planar gradiometer data in the low Gamma range (30-48 Hz) for MEG analysis.
  • Employed early, intermediate, and late multimodal combination strategies, integrating features or classifier predictions from MEG and MRI.

Main Results:

  • Adding a MEG kernel (low Gamma band covariance) improved classification accuracy beyond kernels accounting for confounds.
  • MRI alone achieved 71% accuracy, while MEG alone achieved 68% accuracy.
  • Multimodal classification achieved 74% accuracy with intermediate combination (modality-specific features) and 77% accuracy with late combination (classifier predictions), demonstrating significant improvement over MRI alone.

Conclusions:

  • Magnetoencephalography (MEG) provides complementary information to structural MRI for the classification of Mild Cognitive Impairment (MCI).
  • A late multimodal combination strategy, integrating classifier predictions from MEG and MRI, yielded the highest classification accuracy.
  • MEG shows promise as a valuable tool to enhance the early detection and diagnosis of MCI, potentially aiding in Alzheimer's disease research.

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