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Updated: Mar 24, 2026

Hybrid PET/MRI Imaging of Alzheimer's Disease Based on 18F-AV-1451
Published on: April 18, 2025
Early and protective microglial activation in Alzheimer's disease: a prospective study using 18F-DPA-714 PET imaging
Lorraine Hamelin1, Julien Lagarde2, Guillaume Dorothée3
1Unit of Memory and Language, Université Paris Descartes, Sorbonne Paris Cité, Centre de Psychiatrie et Neurosciences, INSERM UMR S894, Centre Hospitalier Sainte Anne, Paris, France UNIACT, NeuroSpin, Institut d'Imagerie Biomédicale, Direction des sciences du vivant, Commissariat à I'Energie Atomique, Gif-sur-Yvette, France Laboratoire Imagerie Moléculaire In Vivo (IMIV), CEA, Inserm, Univ Paris Sud, CNRS, Université Paris Saclay, CEA-SHFJ, 91400 Orsay, France.
Abstract:
While emerging evidence suggests that neuroinflammation plays a crucial role in Alzheimer's disease, the impact of the microglia response in Alzheimer's disease remains a matter of debate. We aimed to study microglial activation in early Alzheimer's disease and its impact on clinical progression using a second-generation 18-kDa translocator protein positron emission tomography radiotracer together with amyloid imaging using Pittsburgh compound B positron emission tomography. We enrolled 96 subjects, 64 patients with Alzheimer's disease and 32 controls, from the IMABio3 study, who had both (11)C-Pittsburgh compound B and (18)F-DPA-714 positron emission tomography imaging. Patients with Alzheimer's disease were classified as prodromal Alzheimer's disease (n = 38) and Alzheimer's disease dementia (n = 26). Translocator protein-binding was measured using a simple ratio method with cerebellar grey matter as reference tissue, taking into account regional atrophy. Images were analysed at the regional (volume of interest) and at the voxel level. Translocator protein genotyping allowed the classification of all subjects in high, mixed and low affinity binders. Thirty high+mixed affinity binders patients with Alzheimer's disease were dichotomized into slow decliners (n = 10) or fast decliners (n = 20) after 2 years of follow-up. All patients with Alzheimer's disease had an amyloid positive Pittsburgh compound B positron emission tomography. Among controls, eight had positive amyloid scans (n = 6 high+mixed affinity binders), defined as amyloidosis controls, and were analysed separately. By both volumes of interest and voxel-wise comparison, 18-kDa translocator protein-binding was higher in high affinity binders, mixed affinity binders and high+mixed affinity binders Alzheimer's disease groups compared to controls, especially at the prodromal stage, involving the temporo-parietal cortex. Translocator protein-binding was positively correlated with Mini-Mental State Examination scores and grey matter volume, as well as with Pittsburgh compound B binding. Amyloidosis controls displayed higher translocator protein-binding than controls, especially in the frontal cortex. We found higher translocator protein-binding in slow decliners than fast decliners, with no difference in Pittsburgh compound B binding. Microglial activation appears at the prodromal and possibly at the preclinical stage of Alzheimer's disease, and seems to play a protective role in the clinical progression of the disease at these early stages. The extent of microglial activation appears to differ between patients, and could explain the overlap in translocator protein binding values between patients with Alzheimer's disease and amyloidosis controls.
Insights
Microglial activation, measured by 18-kDa translocator protein (TSPO) positron emission tomography, is present in early Alzheimer's disease. Higher TSPO binding correlated with slower cognitive decline, suggesting a protective role in disease progression.
Area of Science:
- Neuroscience
- Radiochemistry
- Gerontology
Background:
- Neuroinflammation, particularly microglial activation, is implicated in Alzheimer's disease (AD) pathogenesis.
- The precise role of microglial response in early AD and its impact on clinical progression remain debated.
- Positron emission tomography (PET) imaging offers tools to visualize these processes in vivo.
Purpose of the Study:
- To investigate microglial activation using a novel 18-kDa translocator protein (TSPO) PET radiotracer in early AD.
- To assess the relationship between TSPO binding, amyloid pathology, and clinical progression in AD patients.
- To explore the potential protective or detrimental role of microglial activation in early AD stages.
Main Methods:
- Enrolled 96 subjects (64 AD patients, 32 controls) from the IMABio3 study.
- Utilized both (11)C-Pittsburgh compound B (PiB) PET for amyloid imaging and (18)F-DPA-714 PET for TSPO imaging.
- Classified AD patients into prodromal AD and AD dementia; analyzed TSPO binding regionally and voxel-wise, considering atrophy and genotyping for TSPO affinity.
Main Results:
- Elevated TSPO binding was observed in AD patients compared to controls, particularly in the temporo-parietal cortex during the prodromal stage.
- TSPO binding positively correlated with cognitive scores (Mini-Mental State Examination) and grey matter volume, as well as with PiB binding.
- Amyloidosis controls (amyloid-positive, cognitively normal) showed higher TSPO binding than controls, especially in the frontal cortex. Slow decliners had higher TSPO binding than fast decliners.
Conclusions:
- Microglial activation, indicated by TSPO binding, is detectable at the prodromal and potentially preclinical stages of AD.
- Increased microglial activation appears to be associated with a slower rate of clinical progression in early AD, suggesting a protective role.
- Variability in TSPO binding may explain overlapping values between AD patients and amyloidosis controls, highlighting the complexity of neuroinflammation in AD.
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