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Updated: Oct 13, 2025

Hybrid PET/MRI Imaging of Alzheimer's Disease Based on 18F-AV-1451
Published on: April 18, 2025
In vivo human molecular neuroimaging of dopaminergic vulnerability along the Alzheimer's disease phases
Arianna Sala1,2, Silvia Paola Caminiti1,2, Luca Presotto3
1Vita-Salute San Raffaele University, Via Olgettina 60, Milan, 20132, Italy.
Background:
Preclinical and pathology evidence suggests an involvement of brain dopamine (DA) circuitry in Alzheimer's disease (AD). We in vivo investigated if, when, and in which target regions [123I]FP-CIT-SPECT regional binding and molecular connectivity are damaged along the AD course.
Methods:
We retrospectively selected 16 amyloid-positive subjects with mild cognitive impairment due to AD (AD-MCI), 22 amyloid-positive patients with probable AD dementia (AD-D), and 74 healthy controls, all with available [123I]FP-CIT-SPECT imaging. We tested whether nigrostriatal vs. mesocorticolimbic dopaminergic targets present binding potential loss, via MANCOVA, and alterations in molecular connectivity, via partial correlation analysis. Results were deemed significant at p < 0.05, after Bonferroni correction for multiple comparisons.
Results:
We found significant reductions of [123I]FP-CIT binding in both AD-MCI and AD-D compared to controls. Binding reductions were prominent in the major targets of the ventrotegmental-mesocorticolimbic pathway, namely the ventral striatum and the hippocampus, in both clinical groups, and in the cingulate gyrus, in patients with dementia only. Within the nigrostriatal projections, only the dorsal caudate nucleus showed reduced [123I]FP-CIT binding, in both groups. Molecular connectivity assessment revealed a widespread loss of inter-connections among subcortical and cortical targets of the mesocorticolimbic network only (poor overlap with the control group as expressed by a Dice coefficient ≤ 0.25) and no alterations of the nigrostriatal network (high overlap with controls, Dice coefficient = 1).
Conclusion:
Local- and system-level alterations of the mesocorticolimbic dopaminergic circuitry characterize AD, already in prodromal disease phases. These results might foster new therapeutic strategies for AD. The clinical correlates of these findings deserve to be carefully considered within the emergence of both neuropsychiatric symptoms and cognitive deficits.
Insights
Alzheimer's disease (AD) damages dopamine pathways, particularly the mesocorticolimbic system, even in early stages. This study used [123I]FP-CIT-SPECT to reveal these brain changes in AD patients and those with mild cognitive impairment.
Area of Science:
- Neuroscience
- Radiology
- Dopamine Neurotransmission
Background:
- Preclinical evidence suggests dopamine (DA) circuitry involvement in Alzheimer's disease (AD).
- Investigated in vivo [123I]FP-CIT-SPECT binding and connectivity in AD progression.
Purpose of the Study:
- To assess dopaminergic target damage in Alzheimer's disease (AD) course.
- To investigate nigrostriatal vs. mesocorticolimbic dopaminergic alterations in AD.
- To evaluate [123I]FP-CIT-SPECT binding and molecular connectivity changes.
Main Methods:
- Retrospective analysis of 16 amyloid-positive AD-MCI, 22 AD-D patients, and 74 controls.
- [123I]FP-CIT-SPECT imaging used to assess dopaminergic targets.
- MANCOVA for binding potential loss and partial correlation for connectivity alterations.
Main Results:
- Significant [123I]FP-CIT binding reductions observed in both AD-MCI and AD-D groups compared to controls.
- Binding reductions were prominent in the mesocorticolimbic pathway (ventral striatum, hippocampus) and cingulate gyrus (AD-D).
- Mesocorticolimbic network connectivity was widely lost, while nigrostriatal network connectivity remained intact.
Conclusions:
- Mesocorticolimbic dopaminergic circuitry alterations characterize AD, even in prodromal stages.
- Findings may inform new therapeutic strategies for Alzheimer's disease.
- Clinical correlates of these dopaminergic changes are crucial for understanding neuropsychiatric symptoms and cognitive deficits.
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