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Published on: December 26, 2016
NFATc2 Modulates Microglial Activation in the AβPP/PS1 Mouse Model of Alzheimer's Disease
Gunjan D Manocha1, Atreyi Ghatak1, Kendra L Puig1
1Department of Biomedical Sciences, University of North Dakota School of Medicine and Health Sciences, Grand Forks, ND, USA.
Abstract:
Alzheimer's disease (AD) brains are characterized by fibrillar amyloid-β (Aβ) peptide containing plaques and associated reactive microglia. The proinflammatory phenotype of the microglia suggests that they may negatively affect disease course and contribute to behavioral decline. This hypothesis predicts that attenuating microglial activation may provide benefit against disease. Prior work from our laboratory and others has characterized a role for the transcription factor, nuclear factor of activated T cells (NFAT), in regulating microglial phenotype in response to different stimuli, including Aβ peptide. We observed that the NFATc2 isoform was the most highly expressed in murine microglia cultures, and inhibition or deletion of NFATc2 was sufficient to attenuate the ability of the microglia to secrete cytokines. In order to determine whether the NFATc2 isoform, in particular, was a valid immunomodulatory target in vivo, we crossed an NFATc2-/- line to a well-known AD mouse model, an AβPP/PS1 mouse line. As expected, the AβPP/PS1 x NFATc2-/- mice had attenuated cytokine levels compared to AβPP/PS1 mice as well as reduced microgliosis and astrogliosis with no effect on plaque load. Although some species differences in relative isoform expression may exist between murine and human microglia, it appears that microglial NFAT activity is a viable target for modulating the proinflammatory changes that occur during AD.
Insights
Targeting nuclear factor of activated T cells 2 (NFATc2) in microglia may reduce inflammation in Alzheimer's disease (AD). Inhibiting NFATc2 in AD mice decreased microgliosis and astrogliosis, suggesting a potential therapeutic strategy.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Alzheimer's disease (AD) brains exhibit amyloid-beta (Aβ) plaques and reactive microglia.
- Microglial proinflammatory responses may worsen AD progression and cognitive decline.
- The transcription factor NFAT plays a role in microglial activation by Aβ.
Purpose of the Study:
- To investigate the role of the NFATc2 isoform in microglial activation in Alzheimer's disease.
- To determine if NFATc2 is a viable immunomodulatory target in vivo for AD.
Main Methods:
- Generated a transgenic Alzheimer's disease mouse model (AβPP/PS1) lacking the NFATc2 gene (NFATc2-/-).
- Compared microglial activation, cytokine levels, and neuropathology in AβPP/PS1 x NFATc2-/- mice versus AβPP/PS1 mice.
- Analyzed NFATc2 expression in murine microglia cultures.
Main Results:
- NFATc2 was the predominant NFAT isoform in murine microglia.
- Deletion of NFATc2 attenuated microglial cytokine secretion.
- AβPP/PS1 x NFATc2-/- mice showed reduced microgliosis and astrogliosis compared to AβPP/PS1 controls.
- Plaque load remained unaffected by NFATc2 deletion.
Conclusions:
- Microglial NFAT activity, particularly the NFATc2 isoform, is a key regulator of the neuroinflammatory response in Alzheimer's disease.
- Targeting NFATc2 may be a promising therapeutic strategy to modulate detrimental neuroinflammation in AD.
- Further research is needed to confirm species differences and clinical relevance.

