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February 11, 2026Pharmaceuticals0 citationsOpen Access

IL-33-Driven Macrophage Reprogramming as a Potential Immunometabolic Strategy for Herpes Simplex Keratitis

YHYun HeYLYaoyao LiuJOJunwen Ouyang

Key Points

  • The aim is to determine if IL-33 influences macrophage metabolism to enhance antiviral protection in herpes simplex keratitis.
  • Stimulated bone marrow-derived macrophages with IL-33.
  • Characterized macrophages function using qRT-PCR, flow cytometry, and immunofluorescence.
  • Conducted integrated transcriptomic and metabolomic profiling.
  • Adoptively transferred macrophages into a mouse model of herpes simplex keratitis for in vivo validation.
  • IL-33 increased CD169 and MHC-II expression in macrophages.
  • IL-33-treated macrophages suppressed HSV-1 replication in vitro.
  • Multi-omics integration revealed 616 differentially expressed genes and substantial remodeling of metabolism.
  • Adoptive transfer of treated macrophages reduced corneal opacity and viral burden in mice.
  • LPL inhibition negated benefits while L-PC supplementation partially restored antiviral function.

Abstract

Background: Herpes simplex keratitis (HSK), caused by herpes simplex virus type 1 (HSV-1), is a major cause of infectious blindness. Macrophages are key antiviral effector cells, yet the metabolic mechanisms driving their protective responses remain poorly defined. This study aimed to determine whether interleukin-33 (IL-33) modulates macrophage metabolism and function to enhance antiviral protection in HSK. Methods: Bone marrow-derived macrophages (BMDMs) were stimulated with IL-33, followed by phenotypic and functional characterization using qRT-PCR, flow cytometry, and immunofluorescence. Integrated transcriptomic and non-targeted LC-MS metabolomic profiling was performed to uncover regulatory pathways. For in vivo validation, differently treated BMDMs were adoptively transferred subconjunctivally into a mouse HSK model. Clinical scoring, fluorescein staining, TCID50 quantification of tear samples, and corneal viral gene detection were used to evaluate disease severity and viral burden. Results: IL-33 stimulation increased CD169 and MHC-II expression, expanded the CD169+ macrophage subset, and suppressed HSV-1 replication in vitro. Multi-omics integration identified 616 differentially expressed genes and 417 differentially expressed metabolites, revealing substantial remodeling of lipid and amino acid metabolism and suggesting a critical IL-33–lipoprotein lipase (LPL)–palmitoylcarnitine (L-PC) metabolic axis. In vivo, prophylactic adoptive transfer of IL-33-treated BMDMs significantly reduced corneal opacity, epithelial injury, tear viral titers, and virogene expression. LPL inhibition eliminated these benefits, whereas L-PC supplementation partially restored antiviral and clinical improvements. Conclusions: IL-33 reprograms macrophages toward a CD169+ antiviral phenotype through an LPL-dependent metabolic pathway, establishing an LPL–L-PC axis essential for enhanced antiviral function and protection against HSK. These findings highlight metabolic tuning of macrophages as a potential preventive immunomodulatory approach for HSV-1-induced ocular disease.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/698c1c46267fb587c655e9f3https://doi.org/10.3390/ph19020285
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1HSV-1–Driven Lipid Metabolic Reprogramming and Lipid Droplet Accumulation in Macrophages Impair Antiviral Immunity2026
  2. 2Topical Glycolysis Inhibition Restores MAVS-Associated Antiviral Signaling in Herpes Simplex Keratitis2026
  3. 3Antagonizing Viral MicroRNAs Reduces Ocular HSV-1 Pathogenesis and Enhances Mucosal Immune Homeostasis2025 · 5 citations
  4. 4Divergent roles of macrophage subsets, FoxP3, and IL-17A in HSV-1–induced CNS pathology2025
  5. 5Tug of war: innate immunity and herpes simplex keratitis2025 · 5 citations