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Updated: Nov 3, 2025

Hybrid PET/MRI Imaging of Alzheimer's Disease Based on 18F-AV-1451
Published on: April 18, 2025
Prodromal neuroinflammatory, cholinergic and metabolite dysfunction detected by PET and MRS in the TgF344-AD
Aisling M Chaney1,2, Francisco R Lopez-Picon3,4, Sophie Serrière5
1Faculty of Biology, Medicine and Health, School of Health Sciences, Division of Informatics, Imaging and Data Sciences, University of Manchester, Manchester, UK.
Abstract:
Mouse models of Alzheimer's disease (AD) are valuable but do not fully recapitulate human AD pathology, such as spontaneous Tau fibril accumulation and neuronal loss, necessitating the development of new AD models. The transgenic (TG) TgF344-AD rat has been reported to develop age-dependent AD features including neuronal loss and neurofibrillary tangles, despite only expressing APP and PSEN1 mutations, suggesting an improved modelling of AD hallmarks. Alterations in neuronal networks as well as learning performance and cognition tasks have been reported in this model, but none have combined a longitudinal, multimodal approach across multiple centres, which mimics the approaches commonly taken in clinical studies. We therefore aimed to further characterise the progression of AD-like pathology and cognition in the TgF344-AD rat from young-adults (6 months (m)) to mid- (12 m) and advanced-stage (18 m, 25 m) of the disease. Methods: TgF344-AD rats and wild-type (WT) littermates were imaged at 6 m, 12 m and 18 m with [18F]DPA-714 (TSPO, neuroinflammation), [18F]Florbetaben (Aβ) and [18F]ASEM (α7-nicotinic acetylcholine receptor) and with magnetic resonance spectroscopy (MRS) and with (S)-[18F]THK5117 (Tau) at 15 and 25 m. Behaviour tests were also performed at 6 m, 12 m and 18 m. Immunohistochemistry (CD11b, GFAP, Aβ, NeuN, NeuroChrom) and Tau (S)-[18F]THK5117 autoradiography, immunohistochemistry and Western blot were also performed. Results: [18F]DPA-714 positron emission tomography (PET) showed an increase in neuroinflammation in TG vs wildtype animals from 12 m in the hippocampus (+11%), and at the advanced-stage AD in the hippocampus (+12%), the thalamus (+11%) and frontal cortex (+14%). This finding coincided with strong increases in brain microgliosis (CD11b) and astrogliosis (GFAP) at these time-points as assessed by immunohistochemistry. In vivo [18F]ASEM PET revealed an age-dependent increase uptake in the striatum and pallidum/nucleus basalis of Meynert in WT only, similar to that observed with this tracer in humans, resulting in TG being significantly lower than WT by 18 m. In vivo [18F]Florbetaben PET scanning detected Aβ accumulation at 18 m, and (S)-[18F]THK5117 PET revealed subsequent Tau accumulation at 25m in hippocampal and cortical regions. Aβ plaques were low but detectable by immunohistochemistry from 6 m, increasing further at 12 and 18 m with Tau-positive neurons adjacent to Aβ plaques at 18 m. NeuroChrom (a pan neuronal marker) immunohistochemistry revealed a loss of neuronal staining at the Aβ plaques locations, while NeuN labelling revealed an age-dependent decrease in hippocampal neuron number in both genotypes. Behavioural assessment using the novel object recognition task revealed that both WT & TgF344-AD animals discriminated the novel from familiar object at 3 m and 6 m of age. However, low levels of exploration observed in both genotypes at later time-points resulted in neither genotype successfully completing the task. Deficits in social interaction were only observed at 3 m in the TgF344-AD animals. By in vivo MRS, we showed a decrease in neuronal marker N-acetyl-aspartate in the hippocampus at 18 m (-18% vs age-matched WT, and -31% vs 6 m TG) and increased Taurine in the cortex of TG (+35% vs age-matched WT, and +55% vs 6 m TG). Conclusions: This multi-centre multi-modal study demonstrates, for the first time, alterations in brain metabolites, cholinergic receptors and neuroinflammation in vivo in this model, validated by robust ex vivo approaches. Our data confirm that, unlike mouse models, the TgF344-AD express Tau pathology that can be detected via PET, albeit later than by ex vivo techniques, and is a useful model to assess and longitudinally monitor early neurotransmission dysfunction and neuroinflammation in AD.
Insights
The TgF344-AD rat model shows age-dependent Alzheimer's disease (AD) hallmarks, including neuroinflammation and Tau pathology, detectable with advanced imaging techniques. This model offers a valuable tool for studying early neurotransmission dysfunction and neuroinflammation in AD.
Area of Science:
- Neuroscience
- Pharmacology
- Biomedical Imaging
Background:
- Existing mouse models of Alzheimer's disease (AD) do not fully replicate human AD pathology, such as spontaneous Tau accumulation and neuronal loss.
- The TgF344-AD rat model exhibits age-dependent AD features, including neuronal loss and neurofibrillary tangles, despite expressing only APP and PSEN1 mutations.
- Previous studies reported alterations in neuronal networks, learning, and cognition in this rat model, but lacked a longitudinal, multimodal approach.
Purpose of the Study:
- To longitudinally characterize the progression of AD-like pathology and cognition in the TgF344-AD rat model.
- To employ a multimodal approach, including in vivo imaging and behavioral tests, to mimic clinical study methodologies.
- To assess neuroinflammation, amyloid-beta (Aβ) and Tau accumulation, and neurotransmitter alterations from young-adult to advanced stages of the disease.
Main Methods:
- Longitudinal multimodal imaging (PET with [18F]DPA-714, [18F]Florbetaben, [18F]ASEM, (S)-[18F]THK5117; MRS) and behavioral tests in TgF344-AD rats and wild-type (WT) littermates.
- In vivo imaging was performed at multiple time points (6, 12, 18, 15, and 25 months).
- Ex vivo validation included immunohistochemistry (CD11b, GFAP, Aβ, NeuN, NeuroChrom), autoradiography, and Western blot for Tau.
Main Results:
- Increased neuroinflammation ([18F]DPA-714 PET) and glial activation (IHC) were observed in TgF344-AD rats from 12 months onwards.
- Amyloid-beta (Aβ) accumulation ([18F]Florbetaben PET) was detected at 18 months, followed by Tau pathology ((S)-[18F]THK5117 PET) at 25 months.
- MRS revealed decreased N-acetyl-aspartate and increased Taurine in TgF344-AD rats, indicating neuronal dysfunction and metabolic changes.
Conclusions:
- The TgF344-AD rat model exhibits in vivo alterations in brain metabolites, cholinergic receptors, and neuroinflammation, validated by ex vivo methods.
- This model develops Tau pathology detectable by PET, offering an advantage over mouse models.
- The TgF344-AD rat is a valuable model for longitudinal monitoring of early neurotransmission dysfunction and neuroinflammation in Alzheimer's disease.
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