Illustration of a lab scene with sleeping mice and a brain scan showing microglia and amyloid plaques related to Alzheimer's sleep research.
Illustration of a lab scene with sleeping mice and a brain scan showing microglia and amyloid plaques related to Alzheimer's sleep research.
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University of Kentucky study links microglia to sleep loss in Alzheimer’s-model mice

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Researchers at the University of Kentucky report that overactive microglia—immune cells in the brain—can drive sleep loss in mice with amyloid plaques. In the study, temporarily depleting most microglia restored more than two hours of sleep per day, even though plaque levels did not change.

Researchers at the University of Kentucky say they have identified an immune-driven mechanism that disrupts sleep in a mouse model of Alzheimer’s disease—and shown that the sleep loss can be reversed without reducing amyloid plaques.

In a study published in Alzheimer’s & Dementia, the team—led by Shannon L. Macauley, PhD, an associate professor of physiology, and first author Nicholas J. Constantino, PhD—found that microglia, the brain’s resident immune cells, were the main drivers of sleep loss in mice genetically prone to develop amyloid plaques.

Macauley described the microglial response to plaques as a disproportionately large reaction to a localized problem, likening it to a “whole house response.” She said the resulting inflammatory cascade can keep the brain awake. Constantino reported that sleep disruption appeared early—when plaques first emerged—and did not worsen by 18 months of age, even though plaque burden more than doubled.

To test whether microglia were causing the sleep disruption, the researchers used pexidartinib (also referred to as PLX3397) for 14 days to temporarily eliminate most microglia. After treatment, about 87% of the cells were depleted, and mice with Alzheimer’s-related pathology regained more than two hours of sleep per day, including longer periods of non-rapid eye movement (NREM) sleep. The team reported that the improvement occurred even though amyloid plaque levels remained unchanged.

The study also distinguished effects linked to aging from those tied to amyloid pathology. The researchers reported that normal aging primarily reduced rapid eye movement (REM) sleep, while amyloid pathology selectively reduced NREM sleep, the deep, restorative stage.

Looking ahead, the laboratory plans to examine whether existing medicines can reduce microglial overactivity without eliminating the cells. The researchers said they are studying drugs already in use—including the diabetes medication metformin and the antiseizure drug stiripentol—as potential ways to alter microglial energy use and dampen inflammatory activity.

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Initial reactions on X focus on the University of Kentucky study as a potential breakthrough, noting that depleting overactive microglia restored sleep in Alzheimer’s-model mice without affecting plaques; posts from neuro researchers and science sharers emphasize the role of brain immune cells in sleep loss.

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Microscopic illustration of protective microglia clearing amyloid plaques in an Alzheimer's brain model due to the OLE molecule
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Study identifies OLE molecule that shifts microglia into a more protective state in Alzheimer’s models

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Researchers in Spain and Switzerland report that an experimental molecule called OLE helped restore protective behavior in the brain’s immune cells in animal models of Alzheimer’s disease, reducing amyloid-related pathology and improving performance on memory and movement tests.

Researchers at the University of California, Riverside have proposed that amyloid beta disrupts tau protein function inside neurons, potentially triggering Alzheimer's disease. The findings challenge the focus on external plaques as the primary cause.

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Researchers at Boston Children’s Hospital report that mutations commonly associated with clonal blood-cell expansion and some blood cancers were enriched in microglia-like immune cells in Alzheimer’s brains and were also detectable in matched blood samples. The Cell study proposes that age- or injury-related weakening of the blood-brain barrier could allow mutated blood immune cells to enter the brain, potentially amplifying inflammation and contributing to neurodegeneration.

A study from the Buck Institute for Research on Aging reports that the APOE2 variant—long associated with lower Alzheimer’s risk and exceptional longevity—helps human neurons better withstand DNA damage and resist a senescent, dysfunctional state. The work, published in the journal Aging Cell, used engineered human stem-cell–derived neurons and mouse models to explore how common APOE gene forms may influence cellular stress responses.

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