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Boosting Epoxy-Oxylipins: A Promising New Avenue for Halting Chronic Inflammation

22 Janvier 2026, 22:45pm

Publié par Box News

Boosting Epoxy-Oxylipins: A Promising New Avenue for Halting Chronic Inflammation

Researchers at University College London (UCL) have uncovered a key mechanism that helps the body switch off inflammation – a breakthrough that could lead to new treatments for chronic diseases affecting millions worldwide.

Inflammation is the body's frontline defence against infection and injury, but when it doesn't switch off properly, it can drive serious health conditions such as arthritis, heart disease, and diabetes. Until now, scientists didn't fully understand how the body decides to stop the immune 'fight' response and start healing.

Published in Nature Communications, the study reveals that tiny fat-derived molecules called epoxy-oxylipins act as natural brakes on the immune system. These molecules prevent the overgrowth of certain immune cells, known as intermediate monocytes, that can cause chronic inflammation – linked to tissue damage, illness and disease progression.

For the study, healthy human volunteers were given a tiny injection of UV-killed E. coli bacteria into the forearm, which triggered a short-lived inflammatory reaction – pain, redness, heat and swelling – similar to what happens after an infection or injury.

Volunteers were split into two groups: prophylactic arm and therapeutic arm.

At different times the volunteer groups were given a drug called GSK2256294, which blocks an enzyme known as soluble epoxide hydrolase (sEH), which naturally breaks down epoxy-oxylipins.

Prophylactic arm: Participants received the drug two hours before inflammation began, to see if boosting epoxy-oxylipins early could prevent harmful immune changes. In this group there were 24 volunteers – 12 were treated, 12 untreated (placebo).

Therapeutic arm: Participants received the drug four hours after inflammation started, mimicking real-world treatment once symptoms appear. In this group there were 24 volunteers – 12 were treated, 12 untreated (placebo).

Both approaches showed that blocking the enzyme sEH with GSK2256294 raised epoxy-oxylipin levels, accelerated pain resolution, and sharply reduced levels of intermediate monocytes in blood and tissue – the immune cells linked to chronic inflammation and disease. Interestingly, the drug did not significantly alter external symptoms, such as redness and swelling.

Further tests revealed that one epoxy-oxylipin, 12,13-EpOME, works by shutting down a protein signal called p38 MAPK, which drives monocyte transformation. This was confirmed in lab experiments and in volunteers given a p38-blocking drug.

Our findings reveal a natural pathway that limits harmful immune cell expansion and helps calm inflammation more quickly.

Targeting this mechanism could lead to safer treatments that restore immune balance without suppressing overall immunity.

With chronic inflammation ranked as a major global health threat, this discovery opens a promising avenue for new therapies."

Dr. Olivia Bracken, first author, UCL Department of Aging, Rheumatology and Regenerative Medicine
Corresponding author Professor Derek Gilroy (UCL Division of Medicine) said: "This is the first study to map epoxy-oxylipin activity in humans during inflammation.

"By boosting these protective fat molecules, we could design safer treatments for diseases driven by chronic inflammation."

He added: "This was an entirely human-based study with direct relevance to autoimmune diseases, as we used a drug already suitable for human use – one that could be repurposed to treat flares in chronic inflammatory conditions, an area currently bereft of effective therapies."

Why epoxy-oxylipins?

Scientists chose to study epoxy-oxylipins because these fat-derived molecules were known from animal research to reduce inflammation and pain, but their role in humans remained unknown. Unlike well-studied inflammatory mediators, such as histamine and cytokines, epoxy-oxylipins are part of an underexplored pathway that scientists believed could naturally calm the immune system.

Next steps

The discovery opens the door to clinical trials exploring sEH inhibitors as potential therapies for conditions like rheumatoid arthritis and cardiovascular disease.

Dr Bracken said: "For instance, rheumatoid arthritis is a condition in which the immune system attacks the cells that line your joints. sEH inhibitors could be trialled alongside existing medications to investigate if they can help prevent or slow down joint damage incurred by the condition."

Dr Caroline Aylott, Head of Research Delivery at Arthritis UK, said: "The pain of arthritis can affect how we move, think, sleep and feel, along with our ability to spend time with loved ones. Pain is incredibly complex and is affected by many different factors. We also know that everybody's pain is different.

"That is why it is important that we invest in research like this, that helps us understand what causes and influences people's experience of pain.

"We are excited to see the results of this study which has found a natural process that could stop inflammation and pain. We hope in the future that this will lead to new pain management options for people with arthritis."

The study was funded by Arthritis UK and involved researchers at UCL, King's College London, University of Oxford, Queen Mary University of London, and National Institute of Environmental Health Sciences, USA.

(Source : NewsMedical)

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Ashwagandha’s Anti-Inflammatory Mechanisms Explained Simply

16 Novembre 2025, 21:49pm

Publié par Box News

Ashwagandha’s Anti-Inflammatory Mechanisms Explained Simply

Ashwagandha (Withania somnifera) can reduce inflammation because it contains natural compounds called withanolides, the most studied of which is withaferin A. These molecules interact with several of the same biochemical “switches” the body uses to start and sustain inflammation, and by calming those switches Ashwagandha helps lower the overall inflammatory response.

Inflammation itself is the body’s normal reaction to injury or infection: immune cells release signaling molecules called cytokines (for example TNF-α, IL-6 and IL-1β) and activate signaling pathways that produce redness, swelling and pain. Those reactions are useful for short periods, but when they remain active for a long time they can harm tissues and contribute to chronic disease. Ashwagandha’s compounds work at multiple points in this process to reduce both the signals and the biochemical traffic that keep inflammation going.

One important target is a protein complex known as NF-κB, which acts like a master switch for many inflammatory genes. Withanolides, including withaferin A, have been shown in laboratory studies to interfere with NF-κB activation; when that master switch is less active, cells produce fewer inflammatory chemicals. Ashwagandha also affects other signaling routes that amplify inflammation, such as MAPK pathways, so the overall amplification of the inflammatory response is reduced.

Beyond switching off signaling pathways, Ashwagandha tends to lower levels of key inflammatory molecules. In experimental studies it has been associated with decreases in cytokines like TNF-α, IL-6 and IL-1β, which are commonly elevated in chronic inflammation. The plant’s extracts have also been shown to reduce the activity of enzymes that make inflammatory mediators—specifically COX-2, which helps produce prostaglandins that cause pain and swelling, and iNOS, which produces nitric oxide that can worsen inflammation. By cutting activity at these enzymes, fewer inflammatory chemicals are produced at the tissue level.

Inflammation and oxidative stress feed each other, and Ashwagandha appears to help on that front as well. Some components activate the Nrf2 pathway, a cellular defense system that increases antioxidant enzymes. Strengthening antioxidant defenses reduces oxidative damage and indirectly weakens inflammatory signaling, creating another route by which Ashwagandha can lower inflammation.

Most of what we know about these mechanisms comes from cell and animal studies; those experiments consistently show effects on NF-κB, MAPK, cytokines and inflammatory enzymes. Human trials are fewer and use different extract types and doses, but several clinical studies and reviews report reductions in blood markers of inflammation (for example C-reactive protein) and improvements in symptoms related to chronic inflammation. Because study methods and supplement quality vary, the human evidence is promising but not uniform.

It’s important to be cautious: “natural” does not guarantee safety or consistent effect for everyone. Ashwagandha can interact with medications and cause side effects in some people, and different supplements contain different amounts of active withanolides, so results will vary between products. Anyone considering Ashwagandha for inflammatory issues should discuss it with a healthcare professional and use a reputable product.

In short, Ashwagandha contains withanolides that can dial down central inflammatory switches (like NF-κB and MAPK), reduce inflammatory cytokines and enzymes, and boost antioxidant defenses; together these actions help explain why the plant can have anti-inflammatory effects, according to laboratory, animal and some human studies.

(Source : ChatGPT)

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