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Neutrophil activation by plasma opsonized polymeric microspheres: inhibitory effect of pluronic F127
J K Jackson1, C M Springate, W L Hunter
1Division of Pharmaceutics and Biopharmaceutics, Faculty of Pharmaceutical Sciences, University of British Columbia, Vancouver, Canada.
Abstract:
The phagocytosis of drug-loaded polymeric microspheres by white blood cells, such as neutrophils or mononuclear cells, represents the major clearance mechanism by which this foreign material is eliminated from the body. The process of phagocytosis requires the activation of the white blood cells by the microsphere surface, followed by binding and engulfment. Phagocytosis may result in the removal of the microspheres from the blood or the disease site and an inflammatory response. Therefore, we have studied the level of neutrophil activation by microspheres ( +/- opsonization) manufactured from various biomaterials or polymers. Polymer microspheres with equivalent size distributions were made from poly (DL-lactic acid) (PLA), poly(epsilon-caprolactone) (PCL), poly(methyl methacrylate) (PMMA) or a 50 : 50 blend of PLA: poly(ethylene-co-vinyl acetate) (PLA: EVA). Neutrophils were isolated from human blood and activation of these cells by microspheres was measured by chemiluminescence (CL). All four types of microspheres induced only low levels of CL, however these levels were enhanced significantly if the microspheres were pretreated with plasma or IgG suggesting an opsonization effect. The adsorption of IgG or proteins from plasma was confirmed by polyacrylamide gel electrophoresis (SDS-PAGE). The poloxamer Pluronic F127 inhibited the opsonization effect of IgG and plasma on all four types of microspheres and inhibited protein adsorption as measured by SDS-PAGE. Since neutrophil activation is part of the inflammation process in vivo, these in vitro data suggest that all four types of microspheres are likely to be inflammatory if injected into body compartments containing plasma-derived fluids. Pretreatment of the microspheres with Pluronic F127 may reduce the inflammatory potential of the microspheres.
Insights
Drug-loaded polymeric microspheres are cleared by white blood cells. Opsonization with plasma or IgG significantly enhances this process, potentially causing inflammation. Pluronic F127 may reduce microsphere-induced inflammation.
Area of Science:
- Biomaterials Science
- Immunology
- Drug Delivery Systems
Background:
- Polymeric microspheres are used for drug delivery but can be cleared by phagocytosis.
- Phagocytosis by white blood cells (neutrophils, mononuclear cells) is a key elimination mechanism.
- This process can lead to microsphere removal and potential inflammation.
Purpose of the Study:
- To investigate neutrophil activation by different polymeric microspheres.
- To assess the role of opsonization (plasma or IgG) in microsphere phagocytosis.
- To evaluate the effect of Pluronic F127 on microsphere-induced neutrophil activation.
Main Methods:
- Microspheres synthesized from poly (DL-lactic acid) (PLA), poly(epsilon-caprolactone) (PCL), poly(methyl methacrylate) (PMMA), and a PLA:poly(ethylene-co-vinyl acetate) (EVA) blend.
- Human neutrophils isolated and stimulated with microspheres.
- Neutrophil activation measured by chemiluminescence (CL).
- Opsonization assessed by plasma/IgG pretreatment and protein adsorption via SDS-PAGE.
- Effect of Pluronic F127 evaluated.
Main Results:
- All tested microspheres induced low levels of neutrophil activation (CL).
- Plasma or IgG pretreatment significantly enhanced CL, indicating opsonization.
- SDS-PAGE confirmed IgG and protein adsorption to microsphere surfaces.
- Pluronic F127 inhibited opsonization and protein adsorption.
- Pluronic F127 reduced microsphere-induced neutrophil activation.
Conclusions:
- Polymeric microspheres can activate neutrophils, suggesting potential in vivo inflammation.
- Opsonization significantly increases microsphere-induced neutrophil activation.
- Pluronic F127 demonstrates potential to mitigate the inflammatory response to polymeric microspheres.

