Independent education resourceInformation here does not replace care from a qualified health professional.
Peptide Therapy GuideClear peptide education

Educational guide

FDA-approved anti-seizure drug could help fight Alzheimer's disease

While physicians and scientists have long known Alzheimer's disease involves the buildup of toxic protein fragments in the brain, they have struggled to understand how these harmful fragments are produced. Now, in a new study, Northwestern University scientist

Written by Peptide Therapy Guide Editorial Team
For education only

This guide cannot diagnose a condition or recommend a personal treatment plan. Discuss medical questions with a qualified professional.

While physicians and scientists have long known Alzheimer's disease involves the buildup of toxic protein fragments in the brain, they have struggled to understand how these harmful fragments are produced.

Now, in a new study, Northwestern University scientists have pinpointed when and where toxic proteins accumulate within the brains of Alzheimer's patients - and discovered a decades-old Food and Drug Administration (FDA)-approved drug that can stop the accumulation process before it even begins.

By studying animal models, human neurons and brain tissue from high-risk patients, the team discovered a particularly toxic protein fragment, called amyloid-beta 42, accumulates inside neurons' synaptic vesicles - the tiny packets that neurons use to send signals. But, when the scientists administered levetiracetam (an inexpensive, decades‑old anti‑seizure drug) to the animals and human neurons, the drug prevented neurons from forming amyloid-beta 42.

While many of the Alzheimer's drugs currently on the market, such as lecanemab and donanemab, are approved to clear existing amyloid plaques, we've identified this mechanism that prevents the production of the amyloid‑beta 42 peptides and amyloid plaques. Our new results uncovered new biology while also opening doors for new drug targets." Jeffrey Savas, corresponding author, associate professor of behavioral neurology at Northwestern University Feinberg School of Medicine

The study will be published Feb. 11 in Science Translational Medicine.

Introduction of anti-seizure drug to the Alzheimer's fight

At the heart of the new discovery is amyloid precursor protein (APP), a protein that plays important roles in brain development and synaptic formation. Abnormal processing of APP can lead to the production of amyloid‑beta peptides, which play a central role in the development of Alzheimer's disease. The Northwestern scientists found that how APP is trafficked also controls whether a neuron forms amyloid-beta 42.

During the synaptic vesicle cycle - a fundamental process that underlies every thought, movement, memory or sensation - levetiracetam binds to a protein called SV2A. This interaction slows down a step in which neurons recycle synaptic vesicle components from the cell's surface. By pausing this recycling process, the drug enables APP to remain on the cell's surface longer, diverting it away from the pathway that produces toxic amyloid‑beta 42 proteins.

"In our 30s, 40s and 50s, our brains are generally able to steer proteins away from harmful pathways," Savas said. "As we age, that protective ability gradually weakens. This is not a statement of disease; this is just a part of aging. But in brains developing Alzheimer's, too many neurons go astray, and that's when you get amyloid-beta 42 production. And then it's tau (or 'tangles'), and then it's dead cells, then dementia, then neuroinflammation - and then it's too late."

Drug would need to be taken 'very, very early'

To effectively prevent Alzheimer's symptoms, high-risk individuals would need to begin taking levetiracetam "very, very early," Savas said, possibly up to 20 years before the new FDA-approved Alzheimer's disease test would even capture mildly elevated levels of amyloid-beta 42.

"You couldn't take this when you already have dementia because the brain has already undergone a number of irreversible changes and a lot of cell death," Savas said.

Because of this, Savas said he and his team might attempt to identify patient populations with genetic forms of Alzheimer's, which includes patients with Down syndrome. Although these patients are somewhat rare, they are the key group to benefit from these discoveries.

Mining existing human clinical data

Leveraging its status as an FDA-approved and widely used drug, the team mined existing human clinical data to investigate whether Alzheimer's patients who took levetiracetam experienced slowed cognitive decline. They obtained clinical data from the National Alzheimer's Coordinating Center and conducted a correlative analysis, finding that Alzheimer's patients who took levetiracetam were associated with a significant delay from the diagnosis of cognitive decline to death compared to those taking lorazepam or no/other anti-epileptic drugs.

"Although the magnitude of change was small (on the scale of a few years), this analysis supports the positive effect of levetiracetam to slow the progression of Alzheimer's pathology," Savas said.

Study also examined Down syndrome brains

In addition to using genetically engineered mouse models and cultured human neurons, the scientists also studied human brain tissue from deceased patients with Down syndrome who died in their 20s or 30s from car accidents or other events. More than 95% of patients with Down syndrome will develop an early and aggressive form of Alzheimer's by around age 40, Savas said, because the APP gene is linked to the chromosome that is triplicated in their genome.

"By obtaining Down syndrome patient brains from people who died in their 20s or 30s, we know they would have eventually developed Alzheimer's, so it gives us an opportunity to study the very initial early changes in the human brain," Savas said.

The study found these brains had the same accumulation of presynaptic proteins that Savas' lab had found in engineered mouse models in a previous paper.

"That is what we and others call the paradoxical stage of Alzheimer's disease, which is that before synapses are lost and dementia ensues, the first thing that happens is presynaptic proteins accumulate," Savas said. "So conceivably, if you started giving these patients levetiracetam in their teenage years, it could actually have a preventative therapeutic benefit."

Savas said levetiracetam "is not perfect," and noted that the drug breaks down in the body very quickly. He and others are in the process of making a better version of levetiracetam, which would last longer in the body and help better target the mechanism that prevents the production of the plaques.

The study is titled, "Levetiracetam prevents Aβ production through SV2a-dependent modulation of App processing in Alzheimer's disease models."

Other Northwestern study authors include Nalini R. Rao, Ivan Santiago-Marrero1, Olivia DeGulis, Toshihiro Nomura, Kritika Goyal, SeungEun Lee, Timothy J. Hark, Justin C. Dynes, Emily X. Dexter, Arun Upadhyay, Robert Vassar and Anis Contractor.

Rao, N. R., et al. (2026). Levetiracetam prevents Aβ production through SV2a-dependent modulation of APP processing in Alzheimer’s disease models. Science Translational Medicine. DOI: 10.1126/scitranslmed.adp3984. https://www.science.org/doi/10.1126/scitranslmed.adp3984

Connected reading

Helpful context for this guide

Source-derived material selected through this article’s indexed topics.

Related questions

01What are carbs?

Your weight loss plan should keep you healthy and strong as you lose the extra weight. Many plans include a diet low in carbohydrates. Carb cycling is a method of optimizing your carbohydrate intake to meet your needs while dieting, fasting, and working out. When you're carb cycling, you consume carbs to meet your needs on some days and avoid them on other days. The aim of carb cycling is to consume carbohydrates when your body needs them and exclude them at other times. Such strategies in your diet plan can help your weight loss efforts. Carbohydrates, or carbs, are a significant part of the average human diet. Along with proteins and fats, they make up the bulk of your daily meals. Most carbohydrates are broken down by your body into glucose to provide energy for your cells and tissues. Carbohydrates in your diet are of three types — sugars, starches, and fiber. Sugars are simple carbs. Glucose, sugar (sucrose), lactose found in milk, and fructose found in fruits, are naturally occurring sugars. Your body metabolizes these molecules rapidly to yield energy. Starches are complex carbs. They're large molecules that consist of hundreds of molecules of simple sugars joined together. Your body needs to break them down to release energy. Starches are found in bread, potatoes, peas, corn, cereals, and pasta. Fiber is also a complex carbohydrate. Human bodies can't break down these large molecules, so they provide no energy. They're usually excreted as they are in the feces. They add bulk to your meal, so you feel full. Fiber in the diet helps avoid constipation and lowers blood sugar and cholesterol levels. Carbohydrates are an essential part of your diet. A typical diet provides 45% to 65% of its calories from carbohydrates. If you have 2,000 calories a day, you should have about 275 grams of carbohydrates. Always try to choose healthy foods for your carb intake:

Source: www.medicinenet.com ↗
02Could you provide some insights into the potential applications and implications of your research for the broader field of neuroscience, neurology and drug discovery?

In a typical neuron, the cell body comprises only about 10-20% of the cytoplasm; the rest lies in the axon and dendrites. Thus, understanding neurons requires acknowledging the axon's role. We advocate for the research focus to consider this polarization and complex structure. By highlighting different transcriptomics within axons versus cell bodies and targeting their regulation, we can influence the entire neuron's functioning, potentially transforming treatment approaches.

Source: www.news-medical.net ↗
03There is considerable excitement around AI in drug development. Where do you see the largest gap between hype and reality, and where is AI perhaps underappreciated?

AI is moving so quickly that in the gap between answering this and publication, I could be proved wrong! With that caveat, there is a lot of hype around AI drug discovery campaigns. AI is certainly a substantial part of many discovery programs today and has been applied in drug discovery for many years. However, we need to be realistic about what AI is doing, where humans remain central, and how that balance may vary. AI agents are an area that has emerged relatively recently and continues to evolve quickly. They can complete tasks for example data extraction and reporting with guidance from experts, helping to generate larger, more standardized datasets over time. They can also help build closed-loop systems that connect computation and experiment directly, with strategic direction still coming from expert scientists. However, care and oversight is needed with these systems to validate their actions. I also think people often equate AI with generative AI, but there are many other AI systems which are underappreciated. For example, the GNN property prediction models and task-specific predictive tools we discussed earlier can be extremely valuable. Some of these methods receive less attention simply because they have already become familiar in drug discovery.

Source: www.news-medical.net ↗
04How does Protein A affect humans?

S. aureus is a Gram-positive and cocci-shaped bacterium, meaning that it appears purple with ‘Gram stain’, and these bacterial are seen as clusters of small, spherical cells. S. aureus is a part of the human microbiome – mostly being found on the surface of the skin and all mucous membranes (e.g. eyes, mouth and ears). They are opportunistic bacteria, meaning that if a break in the skin occurs, or if the host becomes immunodeficient in some way, S. aureus can eventually cause an infection. When S. aureus does infect a human host, it may result in a variety of different diseases, but very commonly it causes recurrent soft tissue and skin infections. These infections have become more prevalent in recent years, mainly as nosocomial forms, as methicillin-resistant strains of S. aureus (MRSA) have evolved in hospitals across the western world. In humans, protein A (once it is released into the extra-cellular environment) can bind with the ‘Fc’ fragment of immunoglobulin G (IgG) and has been observed to be antiphagocytic in vitro - which is consistent with its IgG binding abilities, as binding to IgG can interfere with bacterial attachment by the antibody. This means that it can prevent itself from being destroyed by certain elements of the human immune system (as was also similarly observed in the guinea pig experiment from 2013). S. aureus infections, such as endocarditis, are usually treated with a strong course of antibiotics. Protein A can therefore function slightly differently in different species, but always has the same goal: it interferes with the host’s B-cells within their immune system to prevent S. aureus from being phagocytosed and destroyed. This is an ideal adaptation, and when coupled with the known propensity of S. aureus to be more easily transmitted than other coagulase-positive bacteria, it indicates faster and more widespread bacterial transmission.

Source: www.news-medical.net ↗
05Do BCAA Supplements Increase Muscle Mass?

There is mixed evidence regarding the effectiveness of BCAA supplements to increase muscle mass in its users. Research investigating such effects between those who took BCAA supplements and a placebo found that those who took the supplement reported increase energy metabolism and reduced levels of substances attributed to muscle damage. However, other researchers proposed there is a lack of consensus regarding the effects of BCAAs as a nutritional supplement. Despite disagreement in the scientific literature, it is indicated that potential overconsumption of BCAAs may pose health risks. However, more research is needed to further investigate the impact of both typical and excessive consumption.

Source: www.news-medical.net ↗
comparison

Comparisons

Side-by-side pages for commonly compared peptides and research compounds.

Source: peptideuniv.com
Research context

Read sources and limitations before applying a claim.

Longevity, Performance & Obesity Research

A research peptide formulation developed to investigate metabolic regulation, mitochondrial function, and nutrient-sensing pathways.

Source: mypeptidematch.com ↗
P

About the author

Peptide Therapy Guide Editorial Team

Editorial team for Peptide Therapy Guide.

View all articles →