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Study links antimicrobial peptides to amyloid disease and neurodegeneration

Background For decades, antimicrobial peptides (AMPs) and amyloid-forming peptides were studied in largely separate contexts. AMPs were viewed primarily as innate immune effectors helping the host control microbial invasion, whereas amyloid aggregation was mor

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Background

For decades, antimicrobial peptides (AMPs) and amyloid-forming peptides were studied in largely separate contexts. AMPs were viewed primarily as innate immune effectors helping the host control microbial invasion, whereas amyloid aggregation was more commonly linked to disorders such as Alzheimer's disease (Aβ), Parkinson's disease (α-synuclein), type 2 diabetes (hIAPP), and systemic amyloidosis. Yet a growing body of evidence challenges this clean separation.

Both molecular families share striking structural and functional overlaps: they can adopt β-sheet-rich conformations, self-assemble into fibrillar aggregates, and disrupt lipid membranes through similar mechanisms. This convergence raises a medically profound question - can AMPs directly shape the course of amyloid disease, and might amyloid aggregates in turn compromise host defense against infection? Key Contributions In this comprehensive review published in Research, Prof. Jie Zheng and co-workers at the University of Texas at San Antonio (UTSA) synthesize emerging evidence that AMPs and disease-related amyloids can influence one another through heterotypic cross-seeding interactions. The key scientific contributions include:

① A unified mechanistic framework. The authors systematically identify three molecular mechanisms by which β-sheet-rich AMPs modulate amyloid fibrillization: (a) structural compatibility - shared β-sheet topology enables template-directed cross-seeding; (b) directional seeding asymmetry - cross-seeding is inherently asymmetric, with AMPs promoting fibrillization in one direction but not the other, explaining the diverse and sometimes opposing effects of AMPs on amyloid assembly; and (c) surface-mediated catalysis - membrane-bound AMPs act as two-dimensional nucleation templates, dramatically lowering the kinetic barrier for amyloid fibril formation. Critically, the effects of AMPs extend beyond simple inhibition and include pathway rerouting, heterotypic co-assembly, fibril capping, remodeling of toxic intermediates, and modulation of immune responses. ② A bidirectional pathogen-amyloid feedback loop. The review proposes and substantiates a self-reinforcing disease cycle: microbial infection induces host AMP and amyloid production (amyloid-β itself functions as an endogenous AMP in the brain), while amyloid aggregates amplify neuroinflammation through sustained innate immune activation - creating a chronic, self-perpetuating loop. This cross-seeding-mediated communication axis provides a compelling mechanistic link between infection biology and neurodegeneration, two processes previously considered largely independent. ③ Rational design of dual-function AMP inhibitors. Building on these mechanistic foundations, the authors present recent advances in engineering next-generation AMP-derived inhibitors with enhanced amyloid specificity (targeting Aβ, hIAPP, and α-synuclein), improved proteolytic stability, and translational potential. These dual-function peptides simultaneously suppress amyloid aggregation and retain antimicrobial activity - a multifunctional therapeutic strategy uniquely suited to diseases where infection, inflammation, and aberrant aggregation are intertwined. ④ Open challenges and future roadmap. The authors identify several key unresolved questions: Which sequence or structural features determine whether an AMP selectively recognizes a given amyloid species? Under what conditions does an AMP suppress aggregation, redirect it toward less toxic states, or - in some cases - accelerate heterotypic assembly? How do membranes, metal ions, inflammatory mediators, and the microbiome shape these outcomes in vivo? And how can peptide stability, CNS delivery, and target specificity be improved for clinical use? Broader Impact By placing infection, innate immunity, and protein misfolding within a single mechanistic framework, this review opens new conceptual territory at a neglected disease interface. Conventional anti-amyloid strategies typically focus on a single pathogenic target. AMPs, by contrast, may offer genuine multifunctionality - combining antimicrobial activity, immunomodulation, and anti-amyloid potential within one molecular scaffold. This makes them particularly attractive as templates for next-generation therapeutics in neurodegeneration, metabolic disease, and systemic amyloidosis. By bringing together findings across neurodegeneration, microbiology, amyloid biophysics, and peptide engineering, this review provides not just a literature summary, but a forward-looking framework for data-driven discovery and the rational design of multifunctional peptides - encouraging researchers to rethink amyloid disease as part of a broader biological interface where host defense, infection, and pathological aggregation converge.

Zhang, Y., et al. (2026). Antimicrobial Peptides as Cross-Seeding Modulators at the Neurodegenerative–Infectious Interface. Research. DOI:10.34133/research.1149. https://spj.science.org/doi/10.34133/research.1149

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Related questions

01What is the concept of the immune self, and how has it evolved over the decades?

Adaptive immunity is the ability of specific lymphocytes to differentiate between self and non-self (foreign) antigens and defend the body by selectively destroying non-self-peptides. This concept is possibly the most crucial factor in several immunological medical domains and is increasingly being explored across cancer immunotherapy, vaccine design, pathogen identification, and autoimmune disorders (including allergies). A growing body of literature elucidates the importance of peptides, short amino acid chains linked via peptide bonds, in providing the adaptive immune system with the information required to effectively distinguish between self and non-self particles. This has resulted in the proposal of the ‘immune self’ concept, which postulates that self-similarity is a fundamental determinant of immune recognition. First introduced by Frank MacFarlane Burnet in 1949, the immune self-concept and its sister, the self-nonself theory, have substantially evolved over the decades. Initially driven by observations from Medawar’s early transplantation experiments, Nils K. Jerne (1974; eigen-behavior theory), Polly Matzinger (1994; danger theory), and most recently, evidence from research conducted independently by Waldmann, Mitchison, and Janeway has refined the immune self-concept from ‘all body elements are self, and foreign elements are non-self’ to the most recent ‘infectious non-self (foreign and usually harmful) versus noninfectious self (safe) elements.’

Source: www.news-medical.net ↗
02What is nisin?

Some bacterial species produce antimicrobial peptides known as bacteriocins that have been used in the food industry as preservatives. For example, nisin, which is produced by Lactococcus lactis, has broad-spectrum bactericidal activity and has been used as a food preservative throughout the world. Nisin is effective in controlling Gram-positive bacteria such as Clostridioides difficile. In combination with other compounds like ethylene diamine tetra-acetic acid and cinnamaldehyde, nisin has been effective in controlling enterotoxigenic Gram-negative bacteria such as Escherichia coli. Previous studies have used chicken and mouse models to demonstrate the in vivo efficacy of nisin on the microbiome, whereas nisin efficacy has been proven in ex vivo experiments on the human microbiome. To date, no studies have assessed the in vivo effects of nisin in large mammals.

Source: www.news-medical.net ↗
03What was done in this study?

In the study, published in Scientific Reports, the researchers built on their earlier discovery of the peptide called AC253. This compound was tested in mice with AD. It was found to block the attachment of beta-amyloid to a brain cell receptor called the amylin receptor, and thus inhibit its toxic effects, as shown by an improvement in spatial memory. However, it is difficult to administer this compound because it doesn’t cross the blood-brain barrier in large amounts, and is quickly broken down in the blood. The dosage must therefore be massively increased, pushing up the amounts required for efficacy and increasing the difficulty of administration, besides enhancing the chances of an immune reaction. One way out is to convert the formulation into a pill rather than an injectable form. The complex structure of AC253 makes this difficult as well. Instead, the team devised an ingenious solution. They cleaved the compound into smaller amylin peptides, or chains of 12-14 amino acids, and tested each for its anti-amyloid activity in old mice which showed signs of AD. In this way, they found two short peptides that had the same effects as the larger compound. In particular, the researchers identified a segment that was common to both peptides, namely, SQELHRLQTY.

Source: www.news-medical.net ↗
04What was this study about?

It has been noted in around 20 percent of the world population suffers from some form of pain or the other. In many individuals, pain may be relieved initially with pain medications, but soon tolerance develops, and there is a decrease in the efficacy of pain relievers. One of the main symptoms of IBS seen commonly in many sufferers is chronic abdominal pain. Professor Lewis said, "All pains are complex, but gut pain is particularly challenging to treat and affects around 20 percent of the world's population. Current drugs are failing to produce effective pain relief in many patients before side effects limit the dose that can be administered." Professor Brierley echoed this statement saying, "Internal organs have a complex network of sensory nerves that have a wide array of voltage-gated ion channels and receptors to detect stimuli... The hypersensitivity of these nerves in disease often contributes to the development of pain."

Source: www.news-medical.net ↗
05A peptide identified in a fungus found in northern European pine forests possesses as much power as penicillin as well as vancomycin, according to an international team of researchers.

Reporting in the October 13 issue of Nature, a team from Denmark-based biotech company Novozymes, and researchers from Georgetown University Medical Center and the David Geffen School of Medicine at UCLA, say they have isolated "plectasin," the first defensin ever found in fungi. The research was performed at Novozymes laboratories in Denmark. Defensins are peptides, miniature protein molecules that are produced by a wide range of animals to protect themselves against infection. Humans have defensins in their white blood cells and in their skin, for example, but it is believed that this new fungal defensin, plectasin, is more potent and targets certain bacteria more specifically. Indeed, when plectasin was tested in the laboratory and in animals, it proved to be highly effective against the bacteria Streptococcus pneumoniae, and Streptococcus pyogenes, including strains that are now resistant to conventional antibiotics. These bacteria are responsible for such diseases as meningitis, community-acquired pneumonia, strep throat, life-threatening sepsis, and flesh destroying skin infections. The discovery of plectasin has implications for the development of defensins as a treatment against many common, and deadly, infections, and may initiate a new era of antibiotic discovery and development, said study co-author Michael Zasloff, M.D., Ph.D., Professor in the Departments of Surgery and Pediatrics at Georgetown University Medical Center. Zasloff says that the field of antibiotic development has not changed much since 1929 when Alexander Fleming realized that the fungal "bread mold" Penicillium, which had landed by chance in a Petri dish produced a substance that eliminated colonies of staphylococcal bacteria. "Most antibiotics used by humans are produced by fungi and certain soil bacteria," he said. "Using our existing tools of discovery, we have failed to uncover any new classes of antibiotics from these sources over the past decade. However, by utilizing a new genetic approach that allowed the team to discover plectasin, we now know that a whole class of antibiotics has been overlooked." "This finding (plectasin), and the existence of about 200,000 additional species of fungi, opens up a vast universe to explore for novel peptide antibiotics," said co-author Robert Lehrer, M.D., Distinguished Professor of Medicine at the David Geffen School of Medicine at UCLA. Plectasin, if proven safe and effective in humans, could be on the market by 2012, said Lehrer. Zasloff and Lehrer are known internationally as experts in antimicrobial peptides - the class of antibiotics that plectasin falls within - and in this study they collaborated with Novozymes, a Danish biotech company that led the research. Zasloff and Lehrer are the only two scientists from U.S. universities on the team of 20 researchers who co-authored the research paper. All life forms have to defend themselves against microbial invaders - bacteria, fungi, viruses - and to do this, they produce antimicrobial defensin peptides. In humans, defensins are made by specific white blood cells and immune cells that later engulf foreign invaders, and by the skin and mucous membranes, in order to kill microbes before they invade protective barriers. Researchers believe that fungi have a similar system of defense, especially since these plant-like organisms live off rotting matter, said Zasloff. "They must compete with other organisms, like bacteria and viruses, which also want to consume the same meal. In addition, they need to defend themselves from being eaten by the microbes which surround them." But he said no one had been able to find defensins in fungi using traditional research techniques, which involved growing fungi in liquid cultures and then testing the culture to see if it contained any antibiotic molecule. The research team instead used the latest genetic science to search for the defensins they thought fungi must have. Selecting the Pseudoplectania nigrella species of fungus may have been serendipitous, Lehrer said, but the Novozymes team used state-of-the-art biotechnology to intercept ,and interpret its genetic messages and exhibited tremendous skill in producing plectasin efficiently, economically, and in large amounts." "I started working on antimicrobial peptides over three decades ago, said Lehrer, and my laboratory first described human defensins in 1985. So, the discovery of plectasin makes me feel like a grandfather." Further examination revealed that this defensin, plectasin, resembles defensins found in spiders, scorpions, dragonflies and mussels - thus suggesting that the defensins found in insects, molluscs and fungi arose from a common ancestral gene, the researchers say. Based on this information, the scientists now believe that defensins appeared in living things more than a billion years ago. The investigators then turned to the National Center for Antimicrobials and Infection Control, the Danish equivalent of the U.S. Centers for Disease Control, to test plectasin in the laboratory for antimicrobial activity against a broad spectrum of bacteria. It showed potent activity against several species of Gram-positive bacteria, and was especially active against S. pneumoniae (the leading cause of pneumonia), including all known clinical strains and those that are now resistant to conventional antibiotics. "That is important because increasing bacterial resistance to conventional antibiotics threatens the future of many antibiotics in current use," Zasloff said. "In mouse studies, plectasin showed extremely low toxicity, and was as effective as vancomycin and penicillin in curing the animals of experimental peritonitis (inflammation of the lining of the abdominal cavity, which can be deadly) and pneumonia caused by S. pneumoniae, the researchers report. "Although the precise mechanism by which plectasin exerts its antimicrobial activity is still under investigation, it may work by a mechanism that is very different from traditional antibiotics, Zasloff said. "As a group, defensins exhibit activity against many types of bacteria, fungi, protozoa, and even viruses. It is entirely possible that fungal defensins will be discovered that could be developed against all of these human pathogens," Zasloff added.

Source: www.news-medical.net ↗
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