A green seaweed found in marine ecosystems may hold a new clue for calming the biological storm behind ulcerative colitis. In a study published on 26 August 2026 in The Science of Nature, researchers report that an ethanolic extract of Caulerpa peltata reduced signs of acute ulcerative colitis in laboratory mice and appeared to activate one of the body’s most important antioxidant defense systems. The findings do not show that seaweed can treat inflammatory bowel disease in people, but they identify a collection of marine compounds that could become the starting point for future drug research. The study’s central target was the Nrf2 pathway, a molecular safety system that helps cells neutralize oxidative damage while restraining inflammatory responses. By strengthening this pathway, the extract appeared to counter several processes that contribute to intestinal injury.
Ulcerative colitis is a chronic inflammatory bowel disease in which the immune system attacks the lining of the colon, causing inflammation, ulceration, abdominal pain, diarrhea and, in some cases, rectal bleeding. Its development is influenced by genetic susceptibility, immune dysfunction and environmental factors, and the condition is becoming an increasing public-health concern worldwide. Although existing therapies can suppress inflammation and induce remission, many patients require long-term treatment, and some eventually lose responsiveness or experience significant side effects. Researchers have therefore been searching for compounds that can influence inflammation while also repairing the chemical damage that accompanies it. Oxidative stress is especially important in this process. When reactive oxygen species accumulate faster than cells can remove them, they damage proteins, lipids and DNA, weaken the intestinal barrier and amplify immune signaling. This creates a damaging feedback loop in which inflammation generates oxidative stress, and oxidative stress intensifies inflammation.
The new work focused on Caulerpa peltata, a green macroalga belonging to a genus known for producing chemically diverse natural products. The researchers prepared an ethanolic extract, referred to as CPEE, and first examined its phytochemical composition and antioxidant capacity. Their screening indicated that the extract contained high levels of flavonoids and tannins, two broad classes of plant and algal compounds often associated with the ability to neutralize reactive molecules or influence cellular signaling. Such screening does not identify a single active drug, however. An extract is a complex mixture, and its biological effects may arise from several compounds acting together, from one dominant molecule, or from chemical interactions that change how individual constituents are absorbed and metabolized. The team therefore combined chemical analysis with biological testing and computer-based modeling to build a more complete picture of how CPEE might work.
Before testing the extract in a disease model, the researchers investigated its safety at concentrations ranging from 1.25 to 100 micrograms per milliliter using zebrafish embryotoxicity assays. Zebrafish embryos are widely used in early toxicology because their development is rapid, their transparent bodies make morphological changes easy to observe, and many basic cellular pathways are conserved with other vertebrates. In this study, the reported screening identified concentrations considered safe for subsequent investigation. That result is an initial safety signal rather than proof of safety in humans: an exposure that does not disrupt zebrafish development may still behave differently in mammals, and an extract administered to the body can produce metabolites not present in a laboratory dish. Nevertheless, the zebrafish stage allowed the researchers to narrow the experimental range before moving to mice and to examine whether the seaweed preparation caused obvious developmental or biochemical abnormalities.
The main animal experiment used BALB/c mice in which acute colitis was induced with dextran sodium sulfate, commonly abbreviated DSS. DSS damages the protective epithelial lining of the colon, allowing bacteria and inflammatory molecules to come into closer contact with tissue and provoking a reproducible inflammatory response. This model is not a replica of every feature of human ulcerative colitis, but it is widely used to study intestinal barrier failure, immune activation and oxidative injury. After colitis was induced, mice received CPEE at 100 milligrams per kilogram for seven days. Compared with untreated mice exposed to DSS, the treated animals showed reduced disease severity and less pathological damage, according to the study. The extract also helped maintain antioxidant enzyme activity, suggesting that its effects were not limited to suppressing visible inflammation but extended to the biochemical defenses that normally keep reactive oxygen species under control.
The molecular centerpiece of the findings was the Nrf2 pathway. Under resting conditions, the transcription factor Nrf2 is held in check by the protein Keap1, which helps direct Nrf2 toward degradation. When cells encounter oxidative or electrophilic stress, chemical changes in Keap1 can release Nrf2. The freed transcription factor moves into the nucleus, binds antioxidant response elements in DNA and increases production of protective proteins. Among the genes and enzymes associated with this response are heme oxygenase 1, or HO-1, and NAD(P)H quinone dehydrogenase 1, known as NQO1. HO-1 helps process heme and can generate products with cytoprotective effects, while NQO1 supports the reduction of reactive quinones and limits redox cycling. In the mouse colon, CPEE treatment improved expression of Nrf2, HO-1 and NQO1, linking the extract’s antioxidant effects to a defined cellular defense program rather than to nonspecific chemical scavenging alone.
The researchers also used liquid chromatography–mass spectrometry to characterize bioactive compounds in the extract and then applied molecular docking and molecular-dynamics simulations to predict how those compounds might interact with Keap1. Molecular docking estimates how a small molecule could fit into a protein’s binding pocket and calculates a predicted binding energy. Molecular dynamics goes further by simulating the movement of atoms over time, allowing researchers to ask whether a proposed interaction remains stable under changing molecular conditions. The computational analysis supported stable interactions between compounds identified in CPEE and Keap1. These results are mechanistically suggestive, but they do not demonstrate that the same compounds reach the relevant tissues at sufficient concentrations inside a living animal. Docking scores are hypotheses about binding, not measurements of drug action. Confirming the mechanism will require purification of individual molecules, biochemical binding assays, genetic tests of the Nrf2–Keap1 system and pharmacokinetic studies showing how the compounds are absorbed and distributed.
The study’s appeal lies in the way it connects marine biodiversity with a therapeutic problem that remains difficult to solve. Seaweeds of the Caulerpa genus have been investigated for antioxidant, anti-inflammatory and other biological activities, and related compounds such as caulerpin have shown protective effects in experimental models of colitis. The new results add C. peltata extract to that growing research landscape, while pointing specifically to Nrf2-related signaling as a potential explanation for its protective activity. Yet the distance between a promising mouse experiment and a clinically useful treatment is substantial. The researchers tested an acute DSS model over seven days, not the prolonged, relapsing disease experienced by many patients. The extract’s precise active ingredients, optimal dose, long-term toxicity, effects on the gut microbiome and interactions with standard medicines remain unresolved. The datasets generated in the work are available from the corresponding author upon reasonable request, creating an opportunity for independent analysis and follow-up studies.
For now, the findings suggest that Caulerpa peltata is best viewed not as an unproven dietary cure, but as a chemically rich source for drug discovery. If future experiments confirm that its compounds selectively activate protective antioxidant signaling without suppressing necessary immune functions, they could help inspire new treatments designed to protect the intestinal barrier while reducing inflammation. Such therapies might eventually take the form of purified molecules, standardized extracts or targeted delivery systems that release active compounds in the colon. Before any of those possibilities can be considered for patients, researchers will need to reproduce the results, identify the molecules responsible, establish rigorous manufacturing standards and test safety and efficacy in progressively more realistic models, followed by carefully controlled clinical trials. The seaweed’s promise is therefore real but preliminary: its most important contribution may be showing how an organism growing in the ocean can illuminate a molecular route toward treating disease in the gut.
Subject of Research: The protective effects and molecular mechanism of Caulerpa peltata ethanolic extract in experimental acute ulcerative colitis
Subject of Research: Biology
Article Title: Caulerpa peltata extract protects against Dextran sodium sulfate-induced acute ulcerative colitis via modulating Nrf2 pathway
Article References: Chanbasha, Y. B., Ragunath, M., & Pandurangan, A. K. (2026). Caulerpa peltata extract protects against Dextran sodium sulfate-induced acute ulcerative colitis via modulating Nrf2 pathway. The Science of Nature, 113(5), Article 101. https://doi.org/10.1007/s00114-026-02150-y
Image Credits: AI Generated
DOI: 10.1007/s00114-026-02150-y
Keywords: Caulerpa peltata, ulcerative colitis, Nrf2 pathway, oxidative stress, Keap1, antioxidant enzymes, DSS-induced colitis, molecular docking
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Lydia K. (August 28, 2026). Seaweed extract eases acute colitis by activating the Nrf2 pathway. Scienmag. https://scienmag.com/seaweed-extract-eases-acute-colitis-by-activating-the-nrf2-pathway/
Lydia K. “Seaweed extract eases acute colitis by activating the Nrf2 pathway.” Scienmag, 28 August 2026, https://scienmag.com/seaweed-extract-eases-acute-colitis-by-activating-the-nrf2-pathway/. Accessed 28 August 2026.
Lydia K. “Seaweed extract eases acute colitis by activating the Nrf2 pathway.” Scienmag. August 28, 2026. https://scienmag.com/seaweed-extract-eases-acute-colitis-by-activating-the-nrf2-pathway/
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