Generation of synthetic TSPO PET maps from structural MRI images

Matteo Ferrante1, Marianna Inglese1,2, Ludovica Brusaferri3

  • 1Department of Biomedicine and Prevention, University of Rome Tor Vergata, Rome, Italy.

PubMed
Abstract

Insights

Deep learning can now generate Translocator Protein (TSPO) PET images from MRI scans. This breakthrough offers a low-cost, non-ionizing method for neuroinflammation imaging, enhancing clinical accessibility.

Area of Science:

  • Neuroimaging
  • Artificial Intelligence
  • Medical Diagnostics

Background:

  • Neuroinflammation is implicated in various disorders and is typically visualized using [11C]PBR28 (TSPO) PET.
  • TSPO PET imaging is limited by high costs and ionizing radiation, hindering widespread clinical adoption.
  • Conventional MRI offers accessibility but lacks sensitivity for specific molecular processes like neuroinflammation.

Purpose of the Study:

  • To develop a deep learning model capable of synthesizing TSPO PET images from structural MRI data.
  • To explore a cost-effective and non-ionizing alternative for neuroinflammation imaging.

Main Methods:

  • A 3D U-Net deep learning model was trained on 204 simultaneous 3T MRI and [11C]PBR28 TSPO PET scans.
  • The dataset included participants with knee osteoarthritis, back pain, and healthy controls.
  • Model performance was evaluated using 5-fold cross-validation and assessed with intensity and noise metrics.

Main Results:

  • The deep learning model achieved a low voxel-wise mean squared error (0.0033 ± 0.0010) and a median contrast-to-noise ratio of 0.0640 ± 0.2500.
  • Synthesized PET images accurately replicated spatial patterns of the original PET data.
  • Reconstruction accuracy remained consistent even after spatial normalization.

Conclusions:

  • Deep learning models can accurately synthesize TSPO PET images from conventional T1-weighted MRI.
  • This approach holds potential for low-cost, non-invasive neuroinflammation imaging.
  • The method could significantly expand the clinical utility of neuroinflammation imaging techniques.

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