https://medicine.washu.edu/news/alzheimers-disrupts-circadian-rhythms-of-plaque-clearing-brain-cells/ WashU Medicine * Find a Doctor * Admissions * Giving * Information for * Announcements * WashU * Directories Announcements Updates on campus events, policies, construction and more. * Bernard Becker Medical Library open house celebration on Oct. 28 * Weekly Farmers Market Thursdays from 10 a.m. - 2 p.m. close Information for Our Community Whether you are part of our community or are interested in joining us, we welcome you to WashU Medicine. * Prospective Students * Current Students * Faculty * Staff * Alumni & Friends * Administrators * Researchers * Job Seekers close WashU Medicine WashU Medicine Search WashU Medicine [ ] Search [menu] [close] * Home * About * Education * Research * Patient Care * Impact * News * Home * About + Welcome from the Dean + Mission & Vision + Diversity, Equity & Inclusion o Diversity & Inclusion Commitment + Facts + Leadership o About Dean Perlmutter + The Medical Campus o [ARCHIVED] Campus Construction & Growth + Facilities & Services + Faculty Recognition + History + Why St. Louis * Education + Areas of Study + Financial Support + Traditions o MD White Coat Ceremony o Match Day o Commencement * Research + Training Programs + Ongoing Research & Discovery + BJC Investigators + Nobel Prize Winners * Patient Care + Hospital Partners + Patient Stories + Clinical Trials * Impact + Cancer * News + Media Contacts + Show Me the Science Podcast + Announcements * Prospective Students * Current Students * Faculty * Staff * Alumni & Friends * Administrators * Researchers * Job Seekers * Directories + A to Z Index + Departments & Programs + Administrative Offices & Services * Maps & Directions + Street & Pedestrian Closures * Calendar * Contact * Giving * Policies + Links to Third-Party Websites + Website Privacy Policy Visit the News Hub News Release Alzheimer's disrupts circadian rhythms of plaque-clearing brain cells Mouse study shows how disease reprograms genes in specialized cells involved in amyloid removal by Mark Reynolds*October 23, 2025 Alarm clock resting on a brain with a split background of night sky with stars and day sky with cloudsGetty Images In a study published in Nature Neuroscience, researchers at WashU Medicine found in mice that amyloid accumulations in the brain -- which are characteristic of Alzheimer's disease -- threw off the daily rhythms of hundreds of genes in brain cells known as microglia and astrocytes in ways that were different from what aging alone caused. Alzheimer's disease is notorious for scrambling patients' daily rhythms. Restless nights with little sleep and increased napping during the day are early indicators of disease onset, while sundowning, or confusion later in the day, is typical for later stages of the disease. These symptoms suggest a link between the progression of the disease and the circadian system -- the body's internal clock that controls our sleep and wake cycle -- but scientists did not know the full nature of the connection. Researchers from Washington University School of Medicine in St. Louis have now shown in mice that the circadian rhythms within particular brain cells are disrupted in Alzheimer's disease in ways that change how and when hundreds of genes regulate key functions in the brain. The findings, published October 23 in Nature Neuroscience, suggest that controlling or correcting these circadian rhythms could be a potential way to treat the disease. "There are 82 genes that have been associated with Alzheimer's disease risk, and we found that the circadian rhythm is controlling the activity of about half of those," said Erik S. Musiek, MD, PhD, the Charlotte & Paul Hagemann Professor of Neurology at WashU Medicine, who led the study. In mice modeling Alzheimer's disease, the typical daily activity patterns of those genes were altered. "Knowing that a lot of these Alzheimer's genes are being regulated by the circadian rhythm gives us the opportunity to find ways to identify therapeutic treatments to manipulate them and prevent the progression of the disease." Musiek, the co-director of the Center on Biological Rhythms and Sleep (COBRAS) at WashU Medicine and a neurologist who specializes in aging and dementia, said that changes in sleep patterns are among the most frequent concerns reported to him by caregivers of Alzheimer's patients. He and colleagues have previously shown that these changes begin in Alzheimer's years before memory loss becomes apparent. He noted that in addition to creating burdens for caregivers and patients, disrupted sleep patterns generate biological and psychological stresses that accelerate the progression of the disease. Breaking this feedback loop requires identifying its origins. The body's circadian clock is thought to act on 20% of all genes in the human genome, controlling when they turn on or off to manage processes including digestion, the immune system and our sleep-wake cycle. Musiek had previously identified a specific protein, YKL-40, that fluctuates across the circadian cycle and regulates normal levels of amyloid protein in the brain. He found that too much of YKL-40, which is linked to Alzheimer's risk in humans, leads to amyloid build-up, an accumulation that is a hallmark of the neurodegenerative disease. Amyloid disrupts rhythmic brain functions The cyclic nature of Alzheimer's symptoms suggests that there are more circadian-regulated proteins and their associated genes involved beyond YKL-40. So in this latest study, Musiek and his colleagues examined gene expression in the brains of mice with accumulations of amyloid proteins that mimic early stages of Alzheimer's, as well as those of both healthy, young animals and aged mice without amyloid accumulations. The scientists collected tissue at 2-hour intervals over 24 hours and then performed an analysis of what genes were active during particular phases of the circadian cycle. They found that the amyloid accumulations threw off the daily rhythms of hundreds of genes in brain cells known as microglia and astrocytes in ways that were different from what aging alone caused. Microglia are part of the brain's immune response, clearing away toxic materials and dead cells, while astrocytes have roles in supporting and maintaining communication between neurons. The affected genes are generally involved in helping microglial cells break down waste material from the brain, including amyloid. While the circadian disruption didn't entirely shut down the genes in question, it turned an orderly sequence of events into a scattershot affair that could degrade the optimal synchronicity of brain cells' functions, such as clearing amyloid. In addition, the researchers found that the presence of amyloid appeared to create new rhythms in hundreds of genes that do not typically have a circadian pattern of activity. Many of the genes are involved in the brain's inflammatory response to infection or imbalances such as amyloid plaque build-up. Musiek said that altogether the findings point to exploring therapies that target circadian cycles in microglia and astrocytes to support healthy brain function. "We have a lot of things we still need to understand, but where the rubber meets the road is trying to manipulate the clock in some way, make it stronger, make it weaker or turn it off in certain cell types," he said. "Ultimately, we hope to learn how to optimize the circadian system to prevent amyloid accumulation and other aspects of Alzheimer's disease." * Click to share on Facebook (Opens in new window) Facebook * Click to share on X (Opens in new window) X * Click to share on LinkedIn (Opens in new window) LinkedIn * Sheehan PW, Fass S, Sapkota D, Kang S, Hollis HC, Lawrence JH, Anafi RC, Dougherty JD, Fryer JD, Musiek ES. A glial circadian gene expression atlas reveals cell type and disease-specific reprogramming in response to amyloid pathology or aging. Nature Neuroscience. October 23, 2025. DOI: 10.1038/s41593-025-02067-1. This study was funded by the National Institute on Aging (R01AG054517, T32AG058518), the National Institute of Neurological Disorders and Stroke (R01NS102272) and the National Institutes of Health (R00AG061231). The content is solely the responsibility of the authors and does not necessarily represent the official view of the NIH. About WashU Medicine WashU Medicine is a global leader in academic medicine, including biomedical research, patient care and educational programs with more than 3,000 faculty. Its National Institutes of Health (NIH) research funding portfolio is the second largest among U.S. medical schools and has grown 83% since 2016. Together with institutional investment, WashU Medicine commits well over $1 billion annually to basic and clinical research innovation and training. Its faculty practice is consistently among the top five in the country, with more than 2,000 faculty physicians practicing at 130 locations. WashU Medicine physicians exclusively staff Barnes-Jewish and St. Louis Children's hospitals -- the academic hospitals of BJC HealthCare -- and Siteman Cancer Center, a partnership between BJC HealthCare and WashU Medicine and the only National Cancer Institute-designated comprehensive cancer center in Missouri. WashU Medicine physicians also treat patients at BJC's community hospitals in our region. With a storied history in MD/PhD training, WashU Medicine recently dedicated $100 million to scholarships and curriculum renewal for its medical students, and is home to top-notch training programs in every medical subspecialty as well as physical therapy, occupational therapy, and audiology and communications sciences. [20250115_A] Media Contact Abeeha Shamshad Senior Media Relations Specialist 925-998-0775 abeeha@wustl.edu [mark-reyno] Writer Mark Reynolds Senior Science Writer r.mark@wustl.edu Mark covers surgery, cell biology and physiology, radiology, neuroscience, neurosurgery, and both occupational and physical therapy. Prior to joining Washington University, he was a freelance writer for many years, specializing in science and medicine with publications in CNRS International, Canadian Geographic and the Medical Post, among others. He is a former editor of McGill University's Headway/En Tete research magazine and has won awards from the Canada Council for the Advancement of Education including for best science writing. He has a bachelor's degree from Dalhousie University in Halifax, Nova Scotia. Related Editors' Picks * Pamela K. 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