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Alzheimer's Disease Protein Aggregation Prevented by Cell-Penetrating Peptides

An international research team headed by scientists at New York University (NYU) Abu Dhabi has developed small proteins called cell-penetrating peptides (CPPs), which can prevent formation of the amyloid-β (Aβ) protein aggregates that are characteristic of Alz

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An international research team headed by scientists at New York University (NYU) Abu Dhabi has developed small proteins called cell-penetrating peptides (CPPs), which can prevent formation of the amyloid-β (Aβ) protein aggregates that are characteristic of Alzheimer’s disease (AD), and so inhibit Aβ-induced neurotoxicity.

The CPPs effectively target Aβ both outside and inside neurons, protecting them against the damage caused by Aβ aggregation. “The designed CPPs represent a novel potential treatment strategy for Alzheimer’s disease,” said NYU Abu Dhabi assistant professor of biology, Mazin Magzoub, PhD. “These findings also reveal a general underlying principle for inhibition of pathogenic protein aggregation that will facilitate the design of even more potent CPP-based therapeutics for various neurodegenerative diseases.”

The investigators reported on their developments and results in Cell Reports Physical Science, in a paper titled, “Designed Cell-Penetrating Peptide Inhibitors of Amyloid-beta Aggregation and Cytotoxicity.”

Alzheimer’s disease, Huntington’s disease, Parkinson’s disease, and prion diseases are among the broad range of incurable degenerative disorders that are associated with the misfolding of proteins or peptides into aggregate known as amyloids, the authors explained. Of these, Alzheimer’s disease is an irreversible and progressive brain disorder, and the most common cause of dementia. AD is characterized by the formation of neurofibrillary tangles, and aggregates, or plaques that contain misfolded Aβ peptides derived from the amyloid-β precursor protein (AβPP), in a process that is toxic to the brain’s neurons. The disorder causes progressive death of neurons, which destroys memory and cognitive function.

Proteins and peptides represent promising classes of therapeutics for many types of diseases because they are biocompatible, biodegradable, and can selectively bind to specific targets, which reduces the potential for toxicity, the researchers noted. Proteins also offer greater chemical diversity than other biological molecule classes, and they can be produced relatively easily and at relatively low cost. “Consequently, there has been a concerted effort to develop peptide-based amyloid inhibitors, which fall into two broad classes; rationally designed peptides, which include sequences derived from the target amyloid protein, and randomly generated peptides, which are often identified from library screens,” the investigators noted.

There are still some hurdles to be overcome, however. One significant obstacle to the successful application of most proteins as therapeutics is their poor delivery to target organs and cells. “This has necessitated the use of drug-delivery systems, such as CPPs, in order to overcome major physiological obstacles, e.g., the blood-brain and blood-cerebrospinal fluid barriers, and facilitate efficient delivery of the amyloid inhibitor peptides.”

The Magzoub lab researchers, together with collaborators in the lab of NYU president Andrew Hamilton, PhD, at NYU New York, and a team at the lab of Astrid Gräslund, PhD, at Stockholm University, reported on their development of CPPs that can be readily delivered to the brain, and which effectively prevent the aggregation of Aβ. CPPs are short peptides, typically 5–40 residues, the authors explained. “CPPs alone, or coupled to cargoes many times their own molecular mass, enter cells with high efficiency and low toxicity in vitro and in vivo and target specific intracellular organelles. Notably, CPPs also readily cross the blood-brain barrier.” The constructs effectively combine beneficial properties of proteins with potent therapeutic effects and highly efficient delivery to target cells.

The team had previously demonstrated the ability of a prion protein (PrP)-targeting CPP to protect against abnormal and harmful forms of the protein associated with prion diseases, a class of neurodegenerative disorders that includes mad cow disease in cattle and Creutzfeldt-Jakob disease (CJD) in humans.

The second inhibitor model comprised the NCAM1 peptide conjugated to a sequence derived from Aβ (Aβ16-20) that is analogous to the PrP sequence.

Using a range of techniques, they then extensively characterized the interactions of the designed CPPs with Aβ. Specifically, they used established aggregation and cell viability assays to determine the effects of the designed CPPs on the aggregation and associated neurotoxicity of Aβ. Simultaneously, the scientists used confocal fluorescence microscopy to probe the cellular uptake and intracellular distribution of Aβ in the presence of the CPPs. Combining experimental techniques with computer simulations shed further light on the mechanism of binding of the CPPs to Aβ. The results showed that the designed CPPs targeted both extracellular and intracellular Aβ protein, stabilizing it in a non-aggregated, non-abnormal state, and inhibited Aβ induced neurotoxicity.

The authors reported that the CPPs effectively inhibited Aβ oligomerization, fiber formation, and the associated neurotoxicity. “Based on these studies on two diverse amyloid systems, and given that the polycationic sequences target highly conserved molecular features of amyloids we propose that these constructs are general amyloid inhibitors, with potential applications in many amyloid-related diseases,” they concluded. “The CPP property of the constructs ensures their efficient delivery to all target tissues including the brain, and all target cells and subcellular organelles (e.g., mitochondria). At these locations, the CPPs will interact with the target amyloid protein/peptide and effectively inhibit its self-assembly and downstream toxic effects.”

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Related questions

01So, how can this definition challenge be overcome?

To precisely define self and non-self peptides and, in turn, self-similarity, we must first improve our understanding of the adaptive immune cascade and its constituent components. In brief, the fundamental unit of adaptive immune recognition comprises the major histocompatibility complex (MHC) molecules (called the human leukocyte antigen [HLA] in humans), the peptide being presented (and, in turn, identified as self or non-self), and the T cell receptor.

Source: www.news-medical.net ↗
02How stable is the antibody?

A crucial question often addressed during preclinical development focuses on the in vivo stability of therapeutic antibodies. Increasing the half-life of a therapeutic antibody has several benefits ranging from higher treatment efficacy to increased advantages for the patients who will have a fewer number of therapy sessions and a reduced cost. Given these compelling benefits, following the identification of therapeutic antibodies with the desired specificity, developers usually subject them to a refinement step to increase their stability. This process is often hindered by the lack of reliable experimental tools to predict the half-life of antibodies in patients. The major hurdle of using mouse models to predict antibody stability in the serum lies in the way immunoglobulin proteins are processed by the organism. In mammals, most proteins circulating in the serum undergo constant uptake by endothelial cells and are routed through the endosomes to the lysosomal compartment for degradation. In the endosomes, immunoglobulin G (IgG) proteins are recognized and bound by a transmembrane protein, called the neonatal Fc receptor (FcRn), which mediates their recycling to the plasma membrane and subsequent release back into the serum. As a result, the half-life of IgGs are significantly extended by this mechanism. Since most therapeutic antibodies belong to the IgG class, this recycling system is very relevant for their relative stability in the body. Remarkably, the relative affinity between IgGs and FcRn is extremely disparate between different species, with the mouse receptor showing a much higher affinity than its human counterpart.

Source: www.genengnews.com ↗
03What are functional peptides?

Conventional pharmacological studies on spices have traditionally focused on secondary metabolites like polyphenols, alkaloids, and terpenes. More recently, food science research has also examined spice proteins and their enzymatic hydrolysates, using proteomic methods such as liquid chromatography–tandem mass spectrometry (LC-MS/MS) to identify short bioactive peptide sequences released from larger precursor proteins.6 Once released during food processing, fermentation, or gastrointestinal digestion, these functional peptides can act as metabolic regulators, antimicrobials, or antioxidants.1 Functional peptides refer to specific protein fragments that, once released from their parent proteins, exert biological activities.1,2 In the context of foods, these activities are most often demonstrated using in vitro biochemical or cell-based assays, and their physiological relevance depends on bioavailability and dose.2 Unlike intact proteins, which can have the potential to be allergenic or difficult to absorb due to their complex tertiary structures, functional peptides may exhibit improved bioaccessibility, and some small peptides can cross the intestinal epithelial barrier via peptide transport systems. However, absorption efficiency varies substantially by peptide sequence and digestive conditions.6 Nutriomics and mechanistic investigations have established that the bioactivity of a peptide is dictated by its physicochemical properties, particularly its amino acid composition, molecular weight, and net charge. For example, the presence of hydrophobic amino acids like proline, leucine, and valine often correlates with high antioxidant and enzyme-inhibitory activity.2,3 Smaller peptides, typically those less than three kilodaltons (kDa) in size, exhibit greater stability against proteolytic degradation in the gastrointestinal tract.3 Moreover, cationic peptides are particularly effective as antimicrobial agents through their electrostatic interactions with bacterial membranes.3

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04What 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 ↗
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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