Tuesday, March 24, 2026

“Harmless” Peptide May Actually Be Linked to Alzheimer’s Disease

 Research from UC Santa Cruz indicates that the P3 peptide—an alternative cleavage product of the amyloid precursor protein—may play a role in Alzheimer’s disease.

For many years, pharmaceutical companies have focused their Alzheimer’s drug development efforts on amyloid beta, a peptide known for forming sticky deposits in the brain. Billions of dollars and decades of research have gone into targeting these accumulations.

However, a biochemist at the University of California, Santa Cruz, says amyloid beta may not be the only peptide involved. A smaller and largely overlooked related peptide may also negatively affect brain cells.

In a new commentary published in the journal ChemBioChem, UC Santa Cruz professor Jevgenij Raskatov highlights peer-reviewed studies conducted by his research group and others showing that a shorter peptide can also gather into microscopic clusters and fibrous structures. This peptide, called P3, may also interact with amyloid β (Aβ) in ways that influence how it builds up and how toxic it becomes, suggesting it could contribute to neurodegeneration as well.

“The P3 peptide is, most likely, not the innocent bystander it was commonly thought to be. There’s still more research to be done. But this could turn Alzheimer’s research on its head,” said Raskatov, whose lab researches amyloid peptides to discover new ways to block toxicity and inform better therapeutics for Alzheimer’s patients. “P3 is a distinct aggregating peptide that is itself potentially neurotoxic and may be contributing to Alzheimer’s disease.”

Alzheimer’s Disease Burden and Limits of Amyloid-Beta Therapies

Alzheimer’s disease is the most common neurodegenerative disorder worldwide. Around 35 million people currently live with the condition, and its global economic impact exceeds $800 billion each year. Researchers expect the number of patients to double by 2050. Despite the intense focus on amyloid beta, most of the more than 400 clinical trials aimed at treating Alzheimer’s by targeting Aβ have failed. Some that showed limited benefit were also associated with serious side effects such as hemorrhages and strokes.

The Aβ peptide forms when a larger protein embedded in brain cell membranes, called the Amyloid Precursor Protein (APP), is cut by two enzymes in sequence. First β-secretase cleaves the protein, followed by γ-secretase. This process produces peptides of different lengths. Among them, those containing 40 or 42 amino acids have received the most attention. These are known as Aβ40 and Aβ42, with Aβ42 being especially prone to forming aggregates and causing toxicity. Because of this, it has been the primary focus of Alzheimer’s drug development for many years.

Existing medications include cholinesterase inhibitors and N-methyl-D-aspartate (NMDA) receptor antagonists. These drugs can temporarily ease symptoms but do not stop the disease from worsening. More recently, antibody-based treatments that target Aβ, such as lecanemab and donanemab, have been approved with the goal of clearing the peptide from the brain.

P3 Peptide Formation and the Overlooked “Amyloid α”

According to Raskatov, however, these approaches have delivered only limited progress. “Progress has been extremely slow, and the current state of the art in Alzheimer’s therapy leaves much to be desired,” he said. “We need fundamentally new approaches to the problem.”

The P3 peptide represents another major fragment generated from the same amyloid precursor protein. In this pathway, the protein is cleaved by α-secretase, followed by γ-secretase. Raskatov refers to this version as “Amyloid α,” or Aα, to help distinguish it from Amyloid beta and clarify its properties. Earlier research had assumed, without directly testing the idea, that P3 could not form amyloid structures, was harmless to cells, and would dissolve easily in water, eventually disappearing from the brain.

Because of those assumptions, the peptide received little scientific attention and was widely dismissed as irrelevant to Alzheimer’s disease. Raskatov, a peptide chemist, and members of his lab chose to challenge that long-standing belief. Over the past five years, they have published three major studies demonstrating clearly that P3 can form amyloid deposits just as readily as Aβ and can even generate them more quickly.

New Research Shows P3 Can Form Amyloid Deposits

Their research also suggests that P3 may damage neurons, although its toxicity appears to be lower than that of Aβ. Raskatov noted that an independent research group in the United Kingdom confirmed and expanded on these findings. At the same time, additional laboratories are beginning to explore how Aβ and Aα may influence one another.

David Teplow, an emeritus professor of neurology at UCLA and a prominent Alzheimer’s researcher, explained that amyloid beta has long been considered the primary cause of the disease. After reviewing Raskatov’s work independently, Teplow believes the field may be starting to reconsider that assumption.

“This re-evaluation has far-reaching consequences for both basic science and clinical research into the causes and treatment of Alzheimer’s disease,” said Teplow, a founding editorial board member of the Journal of Molecular Neuroscience, the American Journal of Neurodegenerative Disease, and editor-in-chief of Progress in Molecular Biology and Translational Science.

Ongoing Confusion and the Need for Further Study

While examining recent studies from other researchers, Raskatov said he was surprised by how his group’s findings have sometimes been interpreted. He identified at least four papers published in respected peer-reviewed journals that cited his work as proof that P3 is harmless and does not form amyloid.

“This is exactly the opposite of what we have actually shown,” Raskatov said. “We remain in the dark on how this sort of grand confusion may have come about. Clearly, there is more work ahead of us.”

 

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Friday, November 30, 2018

A New Antibiotic Could Help Prevent Alzheimer’s, Parkinson’s

Researchers have found that antibiotic minocycline can increase the lifespan of aged roundworms by preventing the build-up of proteins, revealing a protective mechanism that could be used to help prevent age-related neurodegenerative diseases in humans.

Protein aggregation has been known to cause several progressive age-related brain diseases, including amyotrophic lateral sclerosis, Alzheimer's, Parkinson's and prion disease.

The study, led by a team from the Scripps Research in the US, showed that minocycline prevents this build-up even in older animals with age-impaired stress-response pathways.

The number of proteins in a cell is balanced by the rate of protein manufacture and disposal, called proteostasis. As we age, proteostasis becomes impaired.

For the study, the team first tested 21 different molecules known to extend lifespan in young and old Caenorhabditis elegans (C. elegans) worms.

They found that all of these molecules prolonged the lives of young worms; however, the only drug that worked on older worms was minocycline.

To find out why, they treated young and old worms with either water or minocycline and then measured two proteins called a-synuclein and amyloid-ß -- known to build up in Parkinson's and Alzheimer's diseases, respectively.

It is because minocycline directly affects the protein-manufacturing machinery of the cell, known as the ribosome. This was true in worms as well as in mouse and human cells, the researchers said.

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Wednesday, April 11, 2018

THIS IS ONLY FOR INFORMATION, ALWAYS CONSULT YOU PHYSICIAN BEFORE HAVING ANY PARTICULAR FOOD/ MEDICATION/EXERCISE/OTHER REMEDIES. PS- THOSE INTERESTED IN RECIPES ARE FREE TO VIEW MY BLOG- https://gseasyrecipes.blogspot.com/ FOR INFO ABOUT KNEE REPLACEMENT, YOU CAN VIEW MY BLOG- https:// kneereplacement-stickclub.blogspot.com/ FOR CROCHET DESIGNS Scientists neutralize and reverse a key genetic risk factor for Alzheimer's

Alzheimer's disease has a range of risk factors, but one of the clearest connections is the gene apoE4. Now, researchers have peered closer at the protein encoded by this gene and uncovered how it affects the brain, how it increases the risks of Alzheimer's and most importantly, how the damage can be reversed.
 
The apoE gene comes in three variations, apoE2, E3 and E4, and everybody carries two copies in various combinations. The most common form is apoE3, and it doesn't seem to have any influence over a person's likelihood of developing Alzheimer's. But apoE4, present in up to 15 percent of people, is the real troublemaker: Having one copy increases the Alzheimer's risk by two to three times, while those unlucky enough to have two copies are 12 times more likely to develop the disease.

But why is that the case? The proteins created by these genes are extremely similar, with apoE4 differing from apoE3 at only one tiny point. So, the new study set out to examine what problems the former is causing in the brain, and whether that single change can be canceled out.

Rather than using mouse models, the results of which don't usually translate well to human biology, the researchers experimented with human cells instead. The team gathered skin cells from Alzheimer's patients with two apoE4 genes, as well as some from people with two apoE3 genes without Alzheimer's. These were converted into induced pluripotent stem cells, and then turned into human neurons.

The team compared the neurons from the apoE3 and apoE4 donors, and found that the latter didn't function as well as they should. This means the protein breaks down into fragments in the cells, over time leading to the build-up of proteins in the brain that forms the calling card of Alzheimer's.

Interestingly, apoE4's devastating effects are clear in humans but not in mice. That illustrates the flaws in using animal models of human diseases, and may go a long way towards explaining why treatments that previously seemed so promising in mice haven't panned out in human trials.

"There's an important species difference in the effect of apoE4 on amyloid beta," says the first author of the study. "Increased amyloid beta production is not seen in mouse neurons and could potentially explain some of the discrepancies between mice and humans regarding drug efficacy. This will be very important information for future drug development."

Having determined that apoE4 damages human brain cells, the team wanted to examine the root of the problem – namely, whether the problems were caused by the presence of apoE4 or perhaps just the absence of apoE3.

"It's fundamentally important to address this question because it changes how you treat the problem," says the lead author of the study. "If the damage is caused due to the loss of a protein's function, you would want to increase protein levels to supplement those functions. But if the accumulation of a protein leads to a toxic function, you want to lower production of the protein to block its detrimental effect."

To figure that out, the team grew brain cells with no forms of apoE, and found they functioned much the same as those with the common apoE3 protein. As soon as apoE4 was added though, the neurons degraded in a familiar Alzheimer's fashion, indicating that this protein is actively the problem.

Best of all, the researchers were able to fix the damage after the fact, using a class of compounds that turn apoE4 into something closer to E3. Treating the brain cells with these structure-correcting molecules restored function to the neurons, and effectively reversed the signs of Alzheimer's. The scientists are now looking to the pharmaceutical industry to help with improving the compounds for future testing in human patients.

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