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Stapled lipopeptides show promise as broad-spectrum antiviral agents

Compounds that obstruct the "landing gear" of a range of harmful viruses can successfully protect against infection by the virus that causes COVID-19, a study published today and led by Dana-Farber Cancer Institute scientists shows. Based on the findings, rese

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Compounds that obstruct the "landing gear" of a range of harmful viruses can successfully protect against infection by the virus that causes COVID-19, a study published today and led by Dana-Farber Cancer Institute scientists shows. Based on the findings, researchers have launched a human clinical trial of one such compound made by chemically stabilizing a key coronavirus peptide.

If the compound, called a stapled lipopeptide, proves effective as a nasal spray in the trial, it could be the basis for a new drug modality to prevent or treat COVID-19, say the authors of the study, posted online today in the journal Nature Communications. Because such compounds foil a mechanism used by many types of viruses to enter and infect cells, stapled lipopeptides may also be effective against dangerous and potentially deadly viruses such as RSV, Ebola, and Nipah, as the authors also demonstrate in their study.

Although vaccines, monoclonal antibodies, and small molecule drugs have played a crucial role in protecting people from life-threatening COVID-19 infection, there remains a critical gap in the treatment arsenal." Loren Walensky, MD, PhD, Physician and Principal Investigator, Linde Program in Cancer Chemical Biology at Dana-Farber/Boston Children's Cancer and Blood Disorders Center

He led the research with Gregory Bird, PhD, of Dana-Farber and Robert Davey, PhD, of Boston University's National Emerging Infectious Diseases Laboratories (NEIDL).

"The constant evolution of the virus and the emergence of new variants has markedly decreased the effectiveness of immune-based approaches, requiring periodic reformulation of vaccines. What has been missing are fast-acting, easy-to-administer, and resistance-proof agents that can be used before or after exposure to the virus to directly prevent infection or reduce symptoms. Our study is an encouraging indication that stapled lipopeptides offer that potential," Walensky added.

Unlike mRNA vaccines, which are a form of immune-based therapy that provides delayed protection and also requires periodic administration due to viral mutation and/or waning immunity, the stapled lipopeptides developed by Walensky's lab act directly on SARS-CoV-2, the coronavirus responsible for COVID-19, interfering with its ability to infect healthy cells. Because this approach does not use the immune system as an intermediary, it is especially promising for people with weakened immune systems, either due to their disease or treatment with immunosuppressive agents, such as chemotherapy.

Walensky's lab has pioneered the development and application of stapled peptides for nearly 20 years. These unique agents consist of natural peptides – a stretch of amino acids in a defined sequence – whose bioactive structure is chemically stabilized by an installed "staple" and, in this case, further linked to a lipid, which is believed to help concentrate the stapled peptide at the site of viral infection – the membrane surface of the otherwise healthy cell. The new study shows that stapled lipopeptides are exceptionally stable, resisting extremes of temperature and chemical conditions, an important feature for persistence both inside and outside the body. The design strategy not only prevents peptide degradation in the body upon administration, but also remedies prior challenges with shipment and storage, such as the required cold chain for COVID-19 vaccines.

In 2010, Walensky's lab first developed double-stapled peptides that target the same key step in the process by which the human immunodeficiency virus (HIV) binds to, and then infects, human cells, causing AIDS. The stapled peptides mimicked the virus's "landing gear," a bundle of six coils or "helices" of the virus that comes together, enabling the virus to fuse with the membrane of the host cell. The therapeutic approach, known as fusion inhibition, prevents the virus from entering the cell to off-load its nucleic acid blueprint, which otherwise turns the cell into a virus-producing factory. The stapled peptide, which mimics one of the coiled regions, disrupts formation of the fusion apparatus, halting infection at its source.

In 2014, Walensky's team developed analogous stapled peptides targeting this same feature of the RSV virus, which can cause severe respiratory illness and even respiratory failure in the elderly and very young alike. They showed that administering the stapled peptide as a nose drop could prevent RSV infection in mice and also prevent the spread of established nasal infection from migrating to the lungs. When the COVID-19 pandemic broke out in early 2020, Walensky's lab promptly converted one of the coiled motifs of the SARS-CoV-2 six-helix bundle into a stapled peptide in an effort to develop a therapeutic for pre- and post-exposure prophylaxis.

"Remarkably, the viral peptide sequence that we use to block the fusion apparatus is 100% identical between SARS-CoV-2 and SARS1, which emerged as a deadly respiratory virus in 2003," notes Walensky. He points out that, in contrast to the viral sequences that mutate frequently to evade immune-based therapies, the virus's fusion sequences are rarely altered due to the critical role of six-helix bundle assembly in promoting viral infection. In cooperation with researchers expert in highly pathogenic viruses at the NEIDL, Walensky's team began developing dozens of stapled peptide fusion inhibitors for anti-viral testing, altering the location of the staple and the linker between the staple and the lipid, to determine which version worked best against the broadest spectrum of SARS-CoV-2 variants. Ironically, as the virus evolved to evade vaccines and monoclonal antibodies, the more effective the stapled lipopeptides became, owing to the essential nature of the fusion mechanism they target.

Then, in partnership with the laboratory of Richard Bowen, DVM, PhD, of Colorado State University and the newly formed Red Queen Therapeutics of Cambridge, Massachusetts that licensed the Dana-Farber technology, the Walensky lab began testing the inhibitors in hamsters. The studies evaluated a lead stapled lipopeptide as a preventive and therapeutic agent. The animals were randomly selected to receive an inhibitor before and/or after nasal inoculation with SARS-CoV-2.

The results were very encouraging, Walensky remarks. The animals in each group that received the inhibitor maintained their weight, an indication that they remained well despite viral exposure. Examination of their noses showed a relative drop in viral titers compared to the untreated control group and evaluation of their lung tissue found that the animals were significantly protected from severe pneumonia, a common complication of COVID-19.

"Similar to what we saw with RSV, nasal treatment with a stapled peptide fusion inhibitor – even if given after inoculation with SARS-CoV-2 – prevented the infection from adversely affecting the lungs and causing severe disease," Walensky comments.

A second set of studies explored whether the inhibitors could help reduce transmission of the virus from one hamster to another. Again, the results were encouraging. "Animals that weren't treated consistently lost weight. Those that received treatment, either before or after exposure to an infected hamster, preserved their weight," Walensky notes. Correspondingly, viral loads in the noses and lungs of treated animals were lower than in untreated animals.

The fact that many viruses with pandemic potential rely on the six-helix bundle to enter and infect cells suggests that stapled lipopeptides developed by Walensky's lab can be adapted to block or reduce infection by other viruses "on demand."

"Red Queen Therapeutics was founded on the conviction that this novel technology from the Walensky lab would be broadly applicable in successfully combating viral threats, using a pre- and post-exposure prophylaxis paradigm, and COVID presents a proving ground as well as an important opportunity in its own right," said Ron Moss, M.D., CEO of Red Queen Therapeutics. "We are excited to validate data in this publication with our human trials in SARS-CoV-2 now under way and anticipate having data to share later this quarter," he added.

"This approach has the potential to fill an important gap in our arsenal against COVID-19 and other viruses that cause severe respiratory and hemorrhagic diseases," Walensky relates. "Imagine being able to protect yourself from COVID-19 or other disruptive respiratory viruses with a simple nasal spray that you could use to avoid infection at a large gathering or after exposure to a close contact who turns out to test positive for SARS-CoV-2. That is the promise this work holds, not only for otherwise healthy individuals, but especially for immunocompromised patients who remain most at risk of severe infection. As a Dana-Farber chemical biology lab that specializes in studying mechanisms of cancer chemoresistance in children, my group has also been interested in tackling the secondary causes of morbidity and mortality in our patients, and that includes life-threatening infections by treatment-resistant bacteria and viruses.

The research was supported by the Dana-Farber Cancer Institute, a grant from the Massachusetts Consortium on Pathogen Readiness and the National Institutes of Health to the NEIDL, and the Pre-clinical Services Program of the National Institute for Allergy and Infectious Diseases, which funded in part the animal testing performed at Colorado State University.

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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

Source: www.news-medical.net ↗
02So, how can this definition challenge be overcome?

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Source: www.news-medical.net ↗
03How do these peptides act?

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Source: www.news-medical.net ↗
04What roles does the system play?

The endogenous opioids and their receptors are widely distributed throughout the central and peripheral nervous systems, particularly the parts of these systems that regulate pain, emotion, reward, stress responses, motivation, drug addiction, and autonomic control. The differential expression and location of the various receptor subtypes across different neurons account for the wide range of opioid-related behaviors. The activation of µ-opioid receptors is mainly known for playing a role in pain relief. Still, research has also indicated it may be involved in behaviors related to survival, such as appetite and reproduction. The activity of µ-opioid receptors is also known to play a critical role in responses to social stimuli by modulating responses to social rejection or social acceptance, for example. Activation of the δ-opioid receptors and κ-opioid receptors is also known to be involved in pain modulation. Also, studies have shown that NOP activation is involved in pain mechanisms and several behaviors related to psychological stress. Alterations in the endogenous opioid system are suspected to be involved in Parkinson's disease, seizures, neuroprotective mechanisms, and depression.

Source: www.news-medical.net ↗
05What 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 ↗
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Peptide Therapy Guide Editorial Team

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