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Medicinal and edible plants offer potential immunomodulatory mechanisms for various autoimmune diseasesMedicinal Plants May Offer New Ways to Manage Autoimmune Diseases

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Key Takeaway
Note that MEPs show potential immunomodulatory effects in preclinical models but lack sufficient clinical validation.

This narrative review explores the potential of medicinal and edible plants (MEPs) and their active constituents as immunomodulatory agents for autoimmune diseases including lupus, rheumatoid arthritis, colitis, and other conditions. The authors synthesize evidence regarding how these compounds may regulate critical pathways such as NF-kB, MAPK, JAK/STAT, and NLRP3 inflammasome signaling. Additionally, the review discusses the modulation of Th17/Treg and Th1/Th2 responses, oxidative stress, and tissue barrier dysfunction.

Specific regulatory patterns were identified for different conditions: HMGB1 inhibition in lupus-associated renal injury; regulation of histone lactylation and ferroptosis in rheumatoid arthritis-associated synovial pathology; neutrophil modulation in inflammatory arthritis; and intestinal protection via the microbiota-metabolite-AhR axis in colitis.

However, the authors note significant limitations to these findings. Most evidence is derived from cellular and animal studies rather than human clinical trials. Challenges such as poor bioavailability, variable chemical composition, lack of dosage standardization, and incomplete safety evaluations currently limit the translation of these findings into clinical practice. While MEPs are promising sources for adjunctive strategies, they require further validation through standardized mechanistic studies and well-designed clinical trials.

How this fits prior evidence

This narrative review addresses a gap in identifying novel immunomodulatory targets by exploring medicinal and edible plants (MEPs). These may offer alternative pathways to established treatments like TNF inhibitors or subcutaneous methotrexate. While the review identifies specific mechanisms such as HMGB1 inhibition and NLRP3 signaling, these findings are currently based on non-human models and do not yet confirm clinical efficacy in patients with lupus, rheumatoid arthritis, or colitis.

This review looked at how medicinal and edible plants (MEPs) might help people with autoimmune diseases, such as lupus, rheumatoid arthritis, and colitis. The research focused on the chemical components within these plants and how they interact with the body's immune system.

Researchers found that these plant compounds can influence several key pathways involved in inflammation. Specifically, they may help regulate signals like NF-kB and JAK/STAT, which are often overactive in autoimmune conditions. The study also noted that certain plants might protect tissues or balance different types of immune cells to reduce overall inflammation.

It is important to note that most of this evidence comes from studies using cells and animals rather than human patients. Because the chemical makeup of these plants can vary so much, it is currently unclear how they would work in humans or what dosages would be safe. These findings are early and suggest that while these plants are promising for future treatments, more clinical trials are needed to confirm their safety and effectiveness for people.

What this means for you:
Plant-based compounds show promise in lab studies for autoimmune diseases but need more human testing to be proven safe.

Common questions

Which autoimmune conditions are these plants being studied for?

The review specifically looked at how these plant compounds might affect conditions like lupus, rheumatoid arthritis, and colitis. These diseases involve the immune system attacking the body's own tissues.

Are these plant treatments safe to use for autoimmune diseases right now?

The safety of these plants for human use is not yet fully evaluated. Because much of the data comes from animal and cell studies, you should talk to your doctor before using any herbal supplements.

How do these plants work in the body?

These plants contain active ingredients that may regulate several immune pathways, such as NF-kB and NLRP3. They may also help manage oxidative stress and balance different types of immune cells to reduce inflammation.

Study Details

Study typeSystematic review
EvidenceLevel 1
PublishedAug 2026
View Original Abstract ↓
Autoimmune diseases (ADs) and related immune-mediated inflammatory disorders are characterized by loss of immune tolerance, persistent inflammatory activation, immune-cell imbalance, oxidative stress, and tissue-specific injury. Although conventional immunomodulatory therapies remain central to disease management, their long-term use may be limited by adverse effects, variable treatment responses, and high costs. Medicinal and edible plants (MEPs) provide a diverse source of bioactive compounds with potential immunoregulatory activity. This narrative review summarizes the immunological basis of representative autoimmune and immune-mediated inflammatory disorders and critically evaluates the mechanisms, therapeutic potential, and translational limitations of selected MEPs and their major active constituents. Current evidence indicates that MEP-derived interventions commonly regulate NF-κB, MAPK, JAK/STAT, and NOD-like receptor family pyrin domain-containing 3 (NLRP3) inflammasome signaling, while also modulating imbalances in Th17/Treg and Th1/Th2 responses, oxidative stress, and tissue barrier dysfunction. In addition to these shared mechanisms, several disease-relevant regulatory patterns have emerged, including high mobility group box 1 (HMGB1) inhibition in lupus-associated renal injury, regulation of histone lactylation and ferroptosis in rheumatoid arthritis-associated synovial pathology, neutrophil modulation in inflammatory arthritis, and intestinal protection mediated by the microbiota–metabolite–aryl hydrocarbon receptor (AhR) axis in colitis. However, most available evidence is derived from cellular and animal studies, whereas high-quality clinical data remain limited. Poor bioavailability, variable chemical composition, insufficient formulation and dosage standardization, incomplete safety evaluation, and regulatory challenges continue to hinder clinical translation. MEPs therefore represent promising sources of adjunctive immunomodulatory strategies for ADs, but their therapeutic value requires further validation through standardized mechanistic studies and well-designed clinical trials.
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