Independent education resourceInformation here does not replace care from a qualified health professional.
Peptide Therapy GuideClear peptide education

Educational guide

Modified peptides show promise against tuberculosis bacteria

Antibiotic treatments are losing effectiveness against a range of common bacterial pathogens, including E. coli, K. pneumoniae, Salmonella and Acinetobacter, according to a warning issued by the World Health Organization last October. For the microbe that give

Written by Peptide Therapy Guide Editorial Team
For education only

This guide cannot diagnose a condition or recommend a personal treatment plan. Discuss medical questions with a qualified professional.

Antibiotic treatments are losing effectiveness against a range of common bacterial pathogens, including E. coli, K. pneumoniae, Salmonella and Acinetobacter, according to a warning issued by the World Health Organization last October. For the microbe that gives rise to tuberculosis, a team of researchers from Penn State and The University of Minnesota Medical School found that a potential solution may be chemically changing the structure of a naturally occurring peptide - a building block of proteins - to make it a more stable and effective antimicrobial agent, while reducing potential toxicity to human cells.

The synthetically structured peptides could potentially help the cocktail of drugs used to treat tuberculosis be more effective, according to the researchers. They published their work in Nature Communications.

There's a desire to create new drugs that can kill bacteria through mechanisms that are not used by traditional antibiotics. Particularly, there is an interest in molecules that may be difficult for bacteria to evolve resistance towards, providing a longer span of time for these treatments to be clinically useful." Scott Medina, Korb Early Career Associate Professor of Biomedical Engineering at Penn State and corresponding author on the paper

Traditional antibiotics often work by inhibiting biochemical pathways that are susceptible to resistance mutations - which bacteria evolve to evade the antibiotics. To find an alternative, the researchers started with host-defense peptides (HDPs), short chains of amino acids that are produced naturally in the body and have been identified as potential treatments for antibiotic-resistant infections. However, these therapies are often unstable and quickly degraded by natural enzymes in the body.

Seeking a more stable compound, the team applied combinations of chemical techniques to make the peptides more resilient to enzymes: "backbone-inversion," which reverses the direction of the structural framework; and chirality, or "handedness," switching, which alters the spatial orientation of the molecule.

"We knew that the peptide could kill bacteria cells, and specifically the mycobacteria that cause tuberculosis," Medina said. "We initially set out to use these chemical tweaks to make the treatment more stable in the body, so it would be around longer and therefore extend its antibacterial effects."

The team found that the retro-inverted variant was not only more stable, but was dramatically more potent against the tuberculosis pathogen and less toxic to human cells compared to the original molecule.

"When we compared the original molecule - which doesn't have any chemical modifications - to the one that we did modify, not only was the modified one more stable, but now it was also much more active," Medina said. "That's something that we didn't expect to see."

Using various microscopy and structural analysis techniques, the researchers identified the cause of the phenomenon: the new shape imparted by the retro-inversion made it more energetically efficient for HDPs to penetrate protective bacterial cell membranes.

Medina said that inverted HDPs work via a different mechanism than traditional antibiotics. Instead of disrupting protein targets important to bacterial survival, the inverted HDPs physically degrading the membrane to destroy the pathogen and make it more difficult for the bacteria to evolve the mutations needed to become resistant.

"There's definitely more that needs to be done," Medina said. "We don't envision that this is a drug that's going to entirely replace current TB therapies. Rather, we think the biggest value of our molecule is its potential to enhance the activity of current TB drugs when given together, making the current treatments much more effective."

Glossop, H. D., et al. (2025). Retro-inversion imparts antimycobacterial specificity to host defense peptides. Nature Communications. DOI: 10.1038/s41467-025-67162-0. https://www.nature.com/articles/s41467-025-67162-0

Connected reading

Helpful context for this guide

Source-derived material selected through this article’s indexed topics.

Related questions

01What 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 ↗
02What 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

Source: www.news-medical.net ↗
03What 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 ↗
04What 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 ↗
05What 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 ↗
comparison

Comparisons

Side-by-side pages for commonly compared peptides and research compounds.

Source: peptideuniv.com
Research context

Read sources and limitations before applying a claim.

Longevity, Performance & Obesity Research

A research peptide formulation developed to investigate metabolic regulation, mitochondrial function, and nutrient-sensing pathways.

Source: mypeptidematch.com ↗
P

About the author

Peptide Therapy Guide Editorial Team

Editorial team for Peptide Therapy Guide.

View all articles →