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Red Blood Cells and Antigenic Peptides Used to Reduce Autoimmune Disease Symptoms

Researchers in the laboratories of Hidde Ploegh, Ph.D., Boston Children's Hospital, and Harvey Lodish, Ph.D., Whitehead Founding Member, have prevented and alleviated two autoimmune diseases —multiple sclerosis (MS) and type 1 diabetes—in early-stage mouse mod

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Researchers in the laboratories of Hidde Ploegh, Ph.D., Boston Children's Hospital, and Harvey Lodish, Ph.D., Whitehead Founding Member, have prevented and alleviated two autoimmune diseases —multiple sclerosis (MS) and type 1 diabetes—in early-stage mouse models. They did so by using red blood cells modified to carry disease-specific antigens.

“This is a very promising step in the development of therapies for autoimmune diseases,” says Dr. Lodish, who is also a professor of biology and a professor of biological engineering at MIT. “If this type of response is also true in humans, then it could make a lot of these therapies possible for these diseases and similar conditions.”

Inappropriate immune responses cause scores of autoimmune diseases, from rheumatoid arthritis to systemic lupus erythematosus to inflammatory bowel disease, in which the body destroys its own cells. The National Institutes of Health estimates that autoimmune diseases affect more than 23 million Americans. These conditions are commonly treated with immunosuppressants to keep a patient's overactive immune response in check. However, these drugs also indiscriminately dull the immune response to pathogens.

Using antigenic peptides from the offending cells, researchers have retrained the immune system to ignore the antigens that trigger inappropriate immune responses. This method, called tolerance induction, shows promise, but the technique is fraught with problems, including delivering the antigenic peptides to their destination before they are degraded or beset by immune cells. To sidestep many of these issues, the labs of Lodish and Ploegh have relied on red blood cells.

Red blood cells are particularly well suited for the delivery of molecules throughout the body. Not only do these cells quickly access almost every tissue, they are also recycled every month in mice and every 4 months in humans without triggering an immune response against them. In previous research, the team attached biotin as a chemical tag and antibodies to red blood cells using a method developed by Ploegh's lab called “sortagging.”

The current work (“Engineered Erythrocytes Covalently Linked to Antigenic Peptides Can Protect against Autoimmune Disease”), which is described online in the Proceedings of the National Academy of Sciences, uses cargo-laden red blood cells to intercede in autoimmune diseases. Novalia Pishesha, an MIT Biological Engineering graduate student in the Lodish and Ploegh labs, drew blood from a mouse, used sortagging to decorate the red blood cells with the antigens that trigger the harmful immune response, and transfused the altered red blood cells back into mouse models of type 1 diabetes and MS. The entire process can be completed in about an hour.

In mice, the transfusions reduced symptoms of disease, and even a single injection prior to the onset of disease could prevent further symptoms. Although antigenic peptides can be effective in stimulating the induction of tolerance, the mechanism responsible is not well understood at the cellular and molecular levels.. “Essentially what we're doing is hijacking the red blood cell clearance pathway, such that the foreign antigen masquerades as the red blood cells' own, and such that these antigens are being tolerated in the process,” says Pishesha, who is also the first author of the PNAS paper.

For Dr. Ploegh, the research could lead to future insights into how the immune system regulates itself and how that sometimes goes awry. As a cautionary note, he points out that red blood cells used in the experiment are not “immunologically inert.”

“The Kell protein, which we use as an anchor point for many of our modifications, is a blood group antigen, and by its very nature shows that the immune system can distinguish red blood cells from genetically disparate individuals,” says Dr. Ploegh. “This [technique used by Pishesha] may be an interesting way to explore how the immune system distinguishes self from nonself.”

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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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02What 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 ↗
03What 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 ↗
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 ↗
05How do these peptides act?

These peptides, like the parent compound AC253, acted as antagonists at the AMY receptor. They were also resistant to protein breakdown, and crossed the blood-brain barrier easily when injected into the abdominal cavity, to localize in the hippocampus, which is crucial in memory. These peptides protected the brain against beta-amyloid injury, and normalized the AD-associated impairment of the memory-associated long-term potentiation of nerve impulses in the hippocampus. They improved memory testing results, and reduced the level of inflammation in the brain. These effects appear to be mediated via the blockade of AMY receptors. For instance, inhibition of microglial AMY receptors reduce the activation of the inflammasome NLRP3. This reduces the secretion of inflammatory chemicals in the surrounding brain tissue, which offers another mechanism for lower amyloid production. In addition, these peptides increase the rate of outflow of amyloid beta from the brain, which also contributes to a lower level of amyloid after treatment. These marked changes all occurred within a relatively short span of treatment. A very important additional finding was that treatment with these peptides brought about improvement in mice which were showing signs of well-established AD in the brain as well as in their behavior. This is unique in that most therapies fail to affect the progress of AD once it has begun to manifest clinically. Peptides also have fewer off-target effects. Small molecules are easy to administer, inexpensive to make and cross the blood-brain barrier more rapidly. For this reason, the team resorted to computational tools and artificial intelligence to come up with a new small molecular drug based on these peptides. This can be taken orally, and is similar in size and structure to the medications used for medical conditions like high blood pressure. An optimized version is being developed to enable human trials to be conducted. The work so far has taken about two decades, building step upon painstaking step to come up with the right solution. However, says Jhamandas, “Occasionally you come across a discovery that has the potential to change the game in a very fundamental way, like hitting a home run, and I'm very excited that we are really on to something here.” Short amylin receptor antagonist peptides improve memory deficits in Alzheimer’s disease mouse model. Rania Soudy, Ryoichi Kimura, Aarti Patel, Wen Fu, Kamaljit Kaur, David Westaway, Jing Yang & Jack Jhamandas. Scientific Reports, volume 9, Article number: 10942 (2019). https://doi.org/10.1038/s41598-019-47255-9. https://www.nature.com/articles/s41598-019-47255-9

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Peptide Therapy Guide Editorial Team

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