Lion's Mane, Yamabushitake · 2026 · Journal Article
High relevancePhysicochemical properties and immunological effects of macrophage membrane-coated PLGA nanoparticles loaded with Hericium erinaceus polysaccharides.
Hericium erinaceus
Key points
- In this study, we developed biomimetic Hericium erinaceus polysaccharides PLGA nanoparticles (NPs) coated with macrophage membrane (MM-PLGA-HEP) and examined their immune activity in vitro and in vivo
- Nanoparticle characterization revealed that from HEP to MM-PLGA-HEP, there was an increase in negative surface charge (with enhanced stability), structural changes, and a morphological transition from porous HEP sheets to spherical MM-PLGA-HEP. In vitro evaluations confirmed that MM-PLGA-HEP exhibited no cytotoxicity, significantly enhanced macrophage proliferation, dose-dependently stimulated nitric oxide secretion, and uptake studies confirmed its superior internalization efficiency in macrophages
- In vivo administration of MM-PLGA-HEP in mice revealed significant improvements in spleen and liver indices, splenic lymphocyte proliferation, macrophage phagocytosis, and CD40/CD86 expression, indicating robust immune activation
- Furthermore, MM-PLGA-HEP induced sustained antigen release, resulting in elevated IgG levels and enhanced humoral immune responses compared to controls
- These findings underscore the potential of MM-PLGA-HEP as a novel nanocarrier for targeted drug delivery and vaccine adjuvant applications, providing a promising platform for enhanced immunotherapy and antigen-specific delivery
Metadata-grounded summary
Citation abstract
In this study, we developed biomimetic Hericium erinaceus polysaccharides PLGA nanoparticles (NPs) coated with macrophage membrane (MM-PLGA-HEP) and examined their immune activity in vitro and in vivo. Nanoparticle characterization revealed that from HEP to MM-PLGA-HEP, there was an increase in negative surface charge (with enhanced stability), structural changes, and a morphological transition from porous HEP sheets to spherical MM-PLGA-HEP. In vitro evaluations confirmed that MM-PLGA-HEP exhibited no cytotoxicity, significantly enhanced macrophage proliferation, dose-dependently stimulated nitric oxide secretion, and uptake studies confirmed its superior internalization efficiency in macrophages. In vivo administration of MM-PLGA-HEP in mice revealed significant improvements in spleen and liver indices, splenic lymphocyte proliferation, macrophage phagocytosis, and CD40/CD86 expression, indicating robust immune activation. Furthermore, MM-PLGA-HEP induced sustained antigen release, resulting in elevated IgG levels and enhanced humoral immune responses compared to controls. These findings underscore the potential of MM-PLGA-HEP as a novel nanocarrier for targeted drug delivery and vaccine adjuvant applications, providing a promising platform for enhanced immunotherapy and antigen-specific delivery.
Citation
Qin T, Hong A, Lin Y, Zheng Z, Fan G, Chen C, et al. (2026). Physicochemical properties and immunological effects of macrophage membrane-coated PLGA nanoparticles loaded with Hericium erinaceus polysaccharides. Colloids and surfaces. B, Biointerfaces https://doi.org/10.1016/j.colsurfb.2025.115366 PMID: 41389608
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