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Updated: Sep 10, 2025

Characterization of Immune Cell-derived Extracellular Vesicles and Studying Functional Impact on Cell Environment
Published on: June 2, 2020
Royal jelly derived extracellular vesicles modulate microglial nanomechanics and inflammatory responses
Gabriela Zavala1, Pablo Berríos2, Felipe Sandoval1
1Centro de Medicina Regenerativa, Facultad de Medicina, Clínica Alemana-Universidad del Desarrollo, Santiago, Chile. cschuh@udd.cl.
Abstract:
Microglia, the brain's resident immune cells, undergo profound mechanical and functional changes upon activation contributing to neuroinflammation, a pathological signature of many neurological diseases. Thus, new anti-inflammatory treatment options are needed that tackle these mechanobiological alterations in microglia, which remain strongly understudied. In this context, extracellular vesicles (EVs) are crucial mediators of intercellular and interkingdom communication, yet their influence on the mechanobiological properties of recipient cells remains largely unknown. Honeybee-derived Royal Jelly EVs (RJEVs) have demonstrated remarkable anti-inflammatory properties, but their impact on microglial cellular nanomechanics and uptake mechanisms remains unclear. In this study, we used a multi-disciplinary approach to analyze the resulting biological and nanomechanical changes following the activation of human microglia and the potential effect of RJEV treatment on these mechanobiological parameters. We observed that LPS treatment was associated with decreased cellular Young's modulus, increased membrane fluidity, and enhanced motility of microglia, indicating a more migratory and pro-inflammatory phenotype. Additionally, lipopolysaccharide (LPS) exposure altered cellular EV uptake mechanisms by shifting preference from an equilibrium of four mechanisms to the predominance of macropinocytosis and clathrin-dependent endocytosis. Remarkably, RJEV treatment counteracted these mechanobiological changes by, in turn, increasing microglial stiffness, reducing motility, and decreasing secretion of pro-inflammatory cytokines. This is the first study to demonstrate that microglial activation state dictates EV uptake mechanisms and to establish a direct link between inflammation, cellular and membrane mechanics, and EV-mediated modulation. Our findings highlight RJEVs as promising candidates for regulating neuroinflammation by targeting microglial mechanobiology as well as opening new strategies for EV-based therapeutics.
Insights
Honeybee-derived Royal Jelly EVs (RJEVs) reduce neuroinflammation by restoring microglial mechanics and function. This study shows RJEVs can reverse inflammation-induced changes in cell stiffness, motility, and inflammatory cytokine secretion.
Area of Science:
- Neuroscience
- Immunology
- Biotechnology
Background:
- Microglia, the brain's immune cells, change mechanically and functionally during neuroinflammation, a key factor in neurological diseases.
- Extracellular vesicles (EVs) mediate cell communication, but their effect on recipient cell mechanics is understudied.
- Honeybee-derived Royal Jelly EVs (RJEVs) show anti-inflammatory potential, yet their impact on microglial nanomechanics is unknown.
Purpose of the Study:
- To investigate the nanomechanical and biological changes in activated human microglia.
- To determine the effect of RJEVs on microglial mechanobiology and inflammatory responses.
- To explore how microglial activation influences EV uptake mechanisms.
Main Methods:
- Utilized a multi-disciplinary approach to analyze human microglia.
- Assessed cellular Young's modulus, membrane fluidity, and motility.
- Investigated changes in EV uptake mechanisms (macropinocytosis, clathrin-dependent endocytosis) and cytokine secretion.
Main Results:
- LPS activation decreased microglial stiffness, increased membrane fluidity and motility, indicating a pro-inflammatory phenotype.
- LPS exposure shifted EV uptake towards macropinocytosis and clathrin-dependent endocytosis.
- RJEV treatment reversed these changes, increasing stiffness, reducing motility, and decreasing pro-inflammatory cytokine secretion.
Conclusions:
- Microglial activation state significantly alters EV uptake mechanisms.
- RJEVs modulate microglial mechanobiology, offering a novel therapeutic strategy for neuroinflammation.
- This study establishes a link between inflammation, cellular mechanics, and EV-mediated modulation.
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