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E2F4DN Transgenic Mice: A Tool for the Evaluation of E2F4 as a Therapeutic Target in Neuropathology and Brain Aging
Morgan Ramón-Landreau1, Cristina Sánchez-Puelles1, Noelia López-Sánchez1
1Department of Molecular, Cellular and Developmental Neurobiology, Cajal Institute, Consejo Superior de Investigaciones Científicas, 28002 Madrid, Spain.
Abstract:
E2F4 was initially described as a transcription factor with a key function in the regulation of cell quiescence. Nevertheless, a number of recent studies have established that E2F4 can also play a relevant role in cell and tissue homeostasis, as well as tissue regeneration. For these non-canonical functions, E2F4 can also act in the cytoplasm, where it is able to interact with many homeostatic and synaptic regulators. Since E2F4 is expressed in the nervous system, it may fulfill a crucial role in brain function and homeostasis, being a promising multifactorial target for neurodegenerative diseases and brain aging. The regulation of E2F4 is complex, as it can be chemically modified through acetylation, from which we present evidence in the brain, as well as methylation, and phosphorylation. The phosphorylation of E2F4 within a conserved threonine motif induces cell cycle re-entry in neurons, while a dominant negative form of E2F4 (E2F4DN), in which the conserved threonines have been substituted by alanines, has been shown to act as a multifactorial therapeutic agent for Alzheimer's disease (AD). We generated transgenic mice neuronally expressing E2F4DN. We have recently shown using this mouse strain that expression of E2F4DN in 5xFAD mice, a known murine model of AD, improved cognitive function, reduced neuronal tetraploidization, and induced a transcriptional program consistent with modulation of amyloid-β (Aβ) peptide proteostasis and brain homeostasis recovery. 5xFAD/E2F4DN mice also showed reduced microgliosis and astrogliosis in both the cerebral cortex and hippocampus at 3-6 months of age. Here, we analyzed the immune response in 1 year-old 5xFAD/E2F4DN mice, concluding that reduced microgliosis and astrogliosis is maintained at this late stage. In addition, the expression of E2F4DN also reduced age-associated microgliosis in wild-type mice, thus stressing its role as a brain homeostatic agent. We conclude that E2F4DN transgenic mice represent a promising tool for the evaluation of E2F4 as a therapeutic target in neuropathology and brain aging.
Insights
The E2F4DN protein, a modified form of E2F4, shows therapeutic potential for Alzheimer's disease by improving brain homeostasis and reducing neuroinflammation. This study confirms its sustained benefits in aged mouse models, highlighting E2F4 as a key target for brain aging and neurodegenerative diseases.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- E2F4 is a transcription factor initially linked to cell quiescence.
- Emerging evidence highlights E2F4's role in tissue homeostasis, regeneration, and neuronal function.
- E2F4 is subject to complex post-translational modifications, including phosphorylation, impacting its function.
Purpose of the Study:
- To investigate the therapeutic potential of a dominant-negative form of E2F4 (E2F4DN) in Alzheimer's disease (AD) models.
- To evaluate the long-term effects of neuronal E2F4DN expression on brain homeostasis and neuroinflammation.
- To assess E2F4DN's impact on age-associated neuroinflammation in wild-type mice.
Main Methods:
- Generation of transgenic mice expressing E2F4DN in neurons.
- Utilizing the 5xFAD mouse model of AD.
- Analysis of cognitive function, neuronal tetraploidization, gene expression, and glial responses (microgliosis and astrogliosis) in aged mice.
Main Results:
- Neuronal E2F4DN expression in 5xFAD mice improved cognitive function and reduced neuronal tetraploidization.
- E2F4DN modulated transcriptional programs related to amyloid-beta (Aβ) proteostasis and brain homeostasis recovery.
- Reduced microgliosis and astrogliosis were maintained in aged 5xFAD/E2F4DN mice and observed in aged wild-type mice expressing E2F4DN.
Conclusions:
- E2F4DN acts as a brain homeostatic agent, mitigating both AD-specific and age-associated neuroinflammation.
- Transgenic mice expressing E2F4DN are valuable tools for studying E2F4's therapeutic potential in neuropathology and brain aging.
- E2F4 represents a promising multifactorial therapeutic target for neurodegenerative diseases and brain aging.
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