Mouse study finds THC dampens inflammation without reducing worm burden

Δ9-Tetrahydrocannabinol exposure shifts eosinophil and macrophage transcriptional programs towards an anti-inflammatory phenotype in helminth infection.

Journal of leukocyte biology • • Highly Relevant
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AI Summary

This mouse study asked how sustained Δ9-tetrahydrocannabinol (THC) exposure affects immune responses to infection with the parasitic worm Nippostrongylus brasiliensis. C57BL/6J mice received THC at 5 mg/kg/day or vehicle for 14 days before infection. The primary infection-related outcomes were unchanged: THC did not significantly alter infection-associated weight loss or helminth burden.

THC did, however, reshape several immune responses. It restrained infection-induced circulating eosinophils and monocytes, increased regulatory T cells, and reduced TNFα and IFNγ secretion from stimulated splenocytes. In lung eosinophils and macrophage-enriched cells, transcriptional programs shifted away from inflammatory, fibrotic, and costimulatory activity toward stress- and metabolism-related programs. THC also reduced CD80 expression, increased antigen-presentation-associated genes, and mitigated infection-associated loss of lung collagen. These findings suggest altered immune regulation and tissue remodeling—not improved infection control. Because this was an animal and cell-level analysis, the abstract cannot establish effects in humans, cannabis users, or treatment efficacy; this is an abstract-based summary, not a full-text review.

💡 Key Findings

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In infected mice, THC did not significantly change weight loss or helminth burden, indicating no demonstrated improvement in infection control.
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THC restrained circulating eosinophils and monocytes and increased regulatory T cells during helminth infection.
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THC-treated infected mice showed reduced TNFα and IFNγ secretion in stimulated splenocytes, consistent with restrained T-cell effector responses.
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Lung eosinophils and macrophage-enriched cells shifted from inflammatory, fibrotic, and costimulatory transcriptional programs toward stress- and metabolic-adaptive programs.
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The study was conducted in mice, so its findings cannot establish human immune effects or clinical benefit from THC exposure.
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📄 Original Abstract

Cannabis use is increasing globally, yet the immunological effects of Δ9-tetrahydrocannabinol (THC), the main intoxicating component of cannabis, remain incompletely understood. Given prior evidence that endocannabinoid signaling influences helminth immunity and type 2 inflammation, we investigated how sustained THC exposure alters immune responses to the helminth Nippostrongylus brasiliensis (Nb), which infects the lung and small intestine of mice. C57BL/6J mice were treated with THC (5 mg/kg/day) or vehicle for 14 days prior to helminth infection and assessed for parasite burden, innate immune cell and T cell responses, and transcriptional changes in lung eosinophils and macrophages. THC exposure did not significantly alter infection-associated weight loss or helminth burden; however, THC selectively restrained infection-induced circulating eosinophils and monocytes while increasing regulatory T cells. T cell activation assays showed reduced TNFα and IFNγ secretion in splenocytes from THC-treated infected mice. Bulk RNA sequencing showed that THC shifted lung eosinophils and CD11c+ lung macrophage-enriched cells from inflammatory, fibrotic, and costimulatory pathways toward stress and metabolic-adaptive transcriptional programs. Within the infected macrophage-enriched population, THC reduced CD80 expression while increasing MHC class II and antigen presentation-associated genes, suggesting a potential shift in macrophage-mediated T cell activation. Consistent with altered inflammatory and tissue remodeling-associated programs, immunofluorescent staining showed that THC mitigated infection-associated loss of lung collagen. Collectively, these findings indicate that THC reshapes the immune response to helminth infection by restraining innate and T cell effector responses while altering lung eosinophil and macrophage activation programs.

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