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Monday, August 6, 2012



Activity of microemulsion-based nanoparticles at the human bio-nano interface: concentration-dependent effects on thrombosis and hemolysis in whole blood

Abstract

Background: Although microemulsion-based nanoparticles (MEs) may be useful for drug delivery or scavenging, these benefits must be balanced against potential nanotoxicological effects in biological tissue (bio-nano interface). We investigated the actions of assembled MEs and their individual components at the bio-nano interface of thrombosis and hemolysis in human blood.
Methods: Oil-in-water MEs were synthesized using ethylbutyrate, sodium caprylate, and pluronic F-68 (ME4) orF-127 (ME6) in 0.9% NaCl
. The effects of MEs or components on thrombosis were determined using thromboelastography,
platelet contractile force, clot elastic modulus, and platelet counting. For hemolysis, MEor components
were incubated with erythrocytes, centrifuged, and washed for measurement of free hemoglobin by spectroscopy.
w/v
Results and conclusions: The mean particle diameters (polydispersity index) for ME6and ME4were 23.6±2.5 nm (0.362) and 14.0±1.0 nm (0.008), respectively. MEs (0, 0.03, 0.3, 3 mM) markedly reduced the thromboelastograph maximal amplitude in a concentration-dependent manner (49.0 ±4.2, 39.0 ±5.6, 15.0 ±8.7, 3.8 ±1.3 mm, respectively), an effect highly correlated (r20.94) with similar changes caused by pluronic surfactants (48.7 ± 10.9,30.7 ± 15.8, 20.0 ± 11.3, 2.0 ± 0.5) alone. Neither oil nor sodium caprylate alone affected the thromboelastograph.
The clot contractile force was reduced by ME (27.3 ± 11.1–6.7 ± 3.4 kdynes/cm, P 0.02, n 5) whereas the platelet population not affected (175 ±28–182 ±23 106/ml, P 0.12, n 6). This data suggests that
MEs reduced platelet activity due to associated pluronic surfactants, but caused minimal changes in protein func-tion necessary for coagulation. Although pharmacological concentrations of sodium caprylate caused hemolysis(EC213 mM), MEs and pluronic surfactants did not disrupt erythrocytes. Knowledge of nanoparticle activity and potential associated nanotoxicity at this bio-nano interface enables rational ME design for in vivo applications.502


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