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Effects of Ultramicronized Palmitoylethanolamide on Mitochondrial Bioenergetics, Cerebral Metabolism, and Glutamatergic Transmission: An Integrated Approach in a Triple Transgenic Mouse Model of Alzheimer's Disease

Francesco Bellanti, Vidyasagar Naik Bukke, Archana Moola, Rosanna Villani, Caterina Scuderi, Luca Steardo, Gianmauro Palombelli, Rossella Canese, Sarah Beggiato, Mario Altamura, Gianluigi Vendemiale, Gaetano Serviddio, Tommaso Cassano

Frontiers in Aging Neuroscience · 2022 · ▲ 19 citations

Abstract

The therapeutic potential of ultramicronized palmitoylethanolamide (um-PEA) was investigated in young (6-month-old) and adult (12-month-old) 3 × Tg-AD mice, which received um-PEA for 3 months via a subcutaneous delivery system. Mitochondrial bioenergetics, ATP homeostasis, and magnetic resonance imaging/magnetic resonance spectroscopy were evaluated in the frontal cortex (FC) and hippocampus (HIPP) at the end of um-PEA treatment. Glutamate release was investigated by in vivo microdialysis in the ventral HIPP (vHIPP). We demonstrated that chronic um-PEA treatment ameliorates the decrease in the complex-I respiration rate and the FoF1-ATPase (complex V) activity, as well as ATP content depletion in the cortical mitochondria. Otherwise, the impairment in mitochondrial bioenergetics and the release of glutamate after depolarization was not ameliorated by um-PEA treatment in the HIPP of both young and adult 3 × Tg-AD mice. Moreover, progressive age- and pathology-related changes were observed in the cortical and hippocampal metabolism that closely mimic the alterations observed in the human AD brain; these metabolic alterations were not affected by chronic um-PEA treatment. These findings confirm that the HIPP is the most affected area by AD-like pathology and demonstrate that um-PEA counteracts mitochondrial dysfunctions and helps rescue brain energy metabolism in the FC, but not in the HIPP.

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OpenAlex
DOI
10.3389/fnagi.2022.890855
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2026-06-01 MST

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APA
Bellanti, F., Bukke, V.N., Moola, A., Villani, R., Scuderi, C., Steardo, L., Palombelli, G., Canese, R., Beggiato, S., Altamura, M., Vendemiale, G., Serviddio, G., &amp; Cassano, T. (2022). Effects of Ultramicronized Palmitoylethanolamide on Mitochondrial Bioenergetics, Cerebral Metabolism, and Glutamatergic Transmission: An Integrated Approach in a Triple Transgenic Mouse Model of Alzheimer's Disease. <em>Frontiers in Aging Neuroscience</em>. https://doi.org/10.3389/fnagi.2022.890855
Vancouver
Bellanti F, Bukke VN, Moola A, Villani R, Scuderi C, Steardo L, et al. Effects of Ultramicronized Palmitoylethanolamide on Mitochondrial Bioenergetics, Cerebral Metabolism, and Glutamatergic Transmission: An Integrated Approach in a Triple Transgenic Mouse Model of Alzheimer's Disease. Frontiers in Aging Neuroscience. 2022. doi:10.3389/fnagi.2022.890855.
BibTeX
@article{francesco2022Effect, title = {Effects of Ultramicronized Palmitoylethanolamide on Mitochondrial Bioenergetics, Cerebral Metabolism, and Glutamatergic Transmission: An Integrated Approach in a Triple Transgenic Mouse Model of Alzheimer's Disease}, author = {Francesco Bellanti and Vidyasagar Naik Bukke and Archana Moola and Rosanna Villani and Caterina Scuderi and Luca Steardo and Gianmauro Palombelli and Rossella Canese and Sarah Beggiato and Mario Altamura and Gianluigi Vendemiale and Gaetano Serviddio and Tommaso Cassano}, journal = {Frontiers in Aging Neuroscience}, year = {2022}, doi = {10.3389/fnagi.2022.890855}, }

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