Regional changes in brain metabolism during the progression of mild cognitive impairment: a longitudinal study based

Xuxu Mu1,2, Caozhe Cui1,2, Jue Liao1,3

  • 1Shanxi Key Laboratory of Molecular Imaging, Shanxi Medical University, Taiyuan, 030001, Shanxi, People's Republic of China.

EJNMMI Reports
|June 30, 2024
PubMed
Abstract

Insights

Positron emission tomography (PET) radiomics models can predict mild cognitive impairment (MCI) progression to Alzheimer's disease (AD). A multi-region model showed superior accuracy in identifying patients at high risk for AD.

Area of Science:

  • Neuroimaging
  • Radiomics
  • Alzheimer's Disease Research

Background:

  • Mild cognitive impairment (MCI) is a prodromal stage of Alzheimer's disease (AD).
  • Longitudinal prediction of MCI to AD transition is crucial for timely intervention.
  • Radiomics analysis of PET images offers a non-invasive approach to identify predictive biomarkers.

Purpose of the Study:

  • To develop and validate PET-based radiomics models for predicting MCI to AD progression.
  • To identify key brain regions associated with MCI conversion.
  • To compare the predictive performance of single-region versus multi-region models.

Main Methods:

  • Analysis of 278 MCI patients from the ADNI database over 48 months.
  • Voxel-based analysis of 18F-FDG PET images to identify significant SUV differences.
  • Extraction and selection of radiomic features from identified brain regions.
  • Development and evaluation of predictive models using AUC metrics.

Main Results:

  • Four brain regions (Temporal lobe, Thalamus, Limbic system) were implicated in MCI progression.
  • The Limbic system (ROI4) model showed high predictive accuracy (AUC 0.803 training, 0.733 validation).
  • A multi-region model (ROI total) significantly outperformed single-region models (AUC 0.884 training, 0.816 validation).

Conclusions:

  • The Limbic system is strongly associated with MCI to AD progression.
  • Multi-region PET radiomics models provide superior prediction of MCI to AD conversion compared to single-region models.
  • This approach enhances non-invasive diagnostics and supports early intervention strategies for AD.

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