bioRxiv · 10.1101/2020.12.10.417907
Coexistence of amyloid-β and Tau hyperphosphorylation rescues cognitive and electrophysiological deficiencies in a mouse model of Alzheimer's disease
Abstract
Alzheimers disease comprises amyloid-{beta} (A{beta}) and hyperphosphorylated Tau (P-Tau) accumulation, imbalanced neuronal activity, aberrant oscillatory rhythms, and cognitive deficits. Non-Demented with Alzheimers disease Neuropathology (NDAN) defines a novel clinical entity with A{beta} and Tau pathologies, but preserved cognition. The mechanisms underlying such neuroprotection remain undetermined and animal models are currently unavailable for NDAN. We show that J20/VLW mice, accumulating A{beta} and P-Tau, exhibit preserved hippocampal rhythmic activity and cognition, altered in J20 and VLW animals. Furthermore, we show that coexistence with A{beta} renders a particular P-Tau signature in hippocampal interneurons. The GABAergic septohippocampal pathway, responsible for hippocampal rhythmic activity, is preserved in J20/VLW mice, in contrast to single mutants. Our data highlight J20/VLW mice as a suitable animal model to understand the mechanisms driving cognitive preservation in NDAN and suggest that a differential P-Tau pattern in hippocampal interneurons prevents GABAergic septohippocampal innervation loss and alterations in local field potentials, avoiding cognitive deficits.
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Davila-Bouziguet, E., Casoliba-Melich, A., Targa-Fabra, G., Galera-Lopez, L., Ozaita, A., Maldonado, R., Delgado-Garcia, J. M., Gruart, A., Avila, J., Soriano, E., Pascual, M.. 2020-12-11. Coexistence of amyloid-β and Tau hyperphosphorylation rescues cognitive and electrophysiological deficiencies in a mouse model of Alzheimer's disease. https://doi.org/10.1101/2020.12.10.417907
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