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April 12, 2026Cells0 citationsOpen Access

Sustained Palmitoylethanolamide Infusion Restores Incentive Motivation and Synaptic Plasticity in the Tg2576 Mouse Model of Alzheimer’s Disease

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APAnna PanuccioZYZuleyha Nihan YurtseverDCDebora Cutuli

Key Points

  • Investigate the effects of palmitoylethanolamide infusion on motivational behavior and synaptic plasticity in Alzheimer’s disease model mice.
  • Chronic infusion of palmitoylethanolamide using sustained-release pellets for 6 months.
  • Assessment of motivational behavior via conditioned place preference paradigm.
  • Morphological and molecular analyses in specific brain regions, including entorhinal cortex, dentate gyrus, and prefrontal cortex.
  • PEA infusion significantly improved motivational behavior in Tg2576 mice.
  • Increased basal dendritic spines in the entorhinal cortex of wild-type mice.
  • Enhanced dendritic expression in both entorhinal cortex and dentate gyrus of Tg2576 mice.
  • Upregulated expression of PPAR-α and brain-derived neurotrophic factor in the prefrontal cortex.

Abstract

Alzheimer’s disease (AD) is increasingly recognized as a disorder not only of cognition but also of motivation and emotional regulation. Apathy and anhedonia often precede memory deficits, implicating early dysfunction in reward-related circuits. This study investigated whether chronic infusion of palmitoylethanolamide (PEA), a lipid-derived PPARα agonist, could restore motivational behavior and dendritic plasticity in the Tg2576 mouse model of AD. The motivational behavior of mice that received sustained-release PEA pellets for 6 months was assessed by using the conditioned place preference (CPP) paradigm. Morphological and molecular analyses were conducted in the entorhinal cortex (EC), dentate gyrus (DG), and prefrontal cortex (PFC). In Tg2576 mice, PEA significantly rescued CPP performance, increased basal dendritic spines in WT mice in the EC, and both basal and apical dendritic expression in EC and DG from Tg2576 mice, and upregulated the expression of both PPAR-α and brain-derived neurotrophic factor (BDNF) in the PFC. Interestingly, the BDNF increase occurred even in the absence of baseline deficits, suggesting a trophic-enhancement effect. These findings suggest that the PEA-PPARα-BDNF axis may be a potential mechanism for restoring motivation and synaptic integrity in an AD-like mouse model. Lipid-based neuromodulation may therefore offer novel therapeutic routes for addressing non-cognitive symptoms and affective circuitopathy in neurodegenerative diseases.

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Cite This Study

Panuccio et al. (2026) studied this question.

synapsesocial.com/papers/69db37044fe01fead37c5094https://doi.org/10.3390/cells15080669
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