The effect of polycarboxylate shell of magnetite nanoparticles on protein corona formation in blood plasma
The development of protein corona around nanoparticles upon administration to the human body is responsible in a large part for their biodistribution, cell-internalization and toxicity or biocompatibility. We studied the influence of the chemical composition of polyelectrolyte shells (citric acid (C...
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Veröffentlicht in: | Journal of magnetism and magnetic materials 2017-04, Vol.427, p.95-99 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The development of protein corona around nanoparticles upon administration to the human body is responsible in a large part for their biodistribution, cell-internalization and toxicity or biocompatibility. We studied the influence of the chemical composition of polyelectrolyte shells (citric acid (CA) and poly(acrylic-co-maleic acid) (PAM)) of core-shell magnetite nanoparticles (MNPs) on the evolution of protein corona in human plasma (HP). The aggregation state and zeta potential of the particles were measured in the range of HP concentration between 1 and 80 (v/v)% 3min and 20h after dispersing the particles in HP diluted with Tris buffered saline. Naked MNPs aggregated in HP solution, but the carboxylated MNPs became stabilized colloidally at higher plasma concentrations. Significant differences were observed at low plasma concentration. CA@MNPs aggregated instantly while the hydrodynamic diameter of PAM@MNP increased only slightly at 1–3v/v % HP concentrations. The observed differences in protein corona formation can be explained by the differences in the steric effects of the polycarboxylate shells. It is interesting that relatively small but systematic changes in zeta potential alter the aggregation state significantly.
•Human plasma protein corona cannot stabilize naked and citrate-coated magnetite nanoparticles.•Polycarboxylic acid (PAM) coated MNPs are well stabilized with HP protein corona.•Stability pattern of naked, CA and PAM-coated MNPs is not predicted by zeta potential. |
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ISSN: | 0304-8853 1873-4766 |
DOI: | 10.1016/j.jmmm.2016.11.017 |