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.

Theranostics
|June 7, 2021
PubMed

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.