Hybrid nanomaterials of biomolecule corona coated magnetic nanoparticles and their interaction with biological systems

Author:

Dutz Silvio12ORCID,Weidner Andreas1,von der Lühe Moritz34,Gräfe Christine5,Biehl Philip34,Demut Johanna5,Warncke Paul6,Jungmann Sandra6,Fischer Dagmar46,Schacher Felix H.34,Clement Joachim H.45ORCID

Affiliation:

1. Institute of Biomedical Engineering and Informatics (BMTI) , Technische Universität Ilmenau , Ilmenau , Germany

2. Department of Nano Biophotonics , Leibniz Institute of Photonic Technology (IPHT) , Jena , Germany

3. Institute of Organic Chemistry and Macromolecular Chemistry (IOMC) , Friedrich-Schiller-University Jena , Jena , Germany

4. Jena Center for Soft Matter (JCSM) , Friedrich-Schiller-University Jena , Jena , Germany

5. Klinik für Innere Medizin II, Abteilung Hämatologie und Internistische Onkologie , Universitätsklinikum Jena , Jena , Germany

6. Institute of Pharmacy, Pharmaceutical Technology und Biopharmacy , Friedrich-Schiller-University Jena , Jena , Germany

Abstract

Abstract Magnetic nanoparticles (MNPs) are interesting for various applications in medicine. If administered to a biological system like the human body, a so-called biomolecule corona is formed on the surface of the particles, which highly determines the biological fate of the particles. To elucidate whether a preconditioning of the MNPs by incubation with biomolecules influences biocompatibility and bioavailability, the formation of such a corona was investigated in more detail. For this, the influence of particle characteristics, e.g., surface charge, as well as various incubation parameters on the resulting corona was investigated. It was found that the biomolecule corona is formed immediately after bringing together the particles with the biomolecule source. By variation of the biomolecule content of the incubation medium, the size of the corona can be modulated. Regarding the interaction of the nanoparticles with cells, it was shown that the presence of a biomolecule corona reduces the interaction and that a more pronounced biomolecule corona leads to a reduced uptake of the magnetic nanohybrids into the cells. Cell viability tests confirmed biocompatibility of the biomolecule-coated particles. A more pronounced corona promotes a higher cell viability. By using a shell-less hen’s egg model, no or reduced adverse effects of all biomolecule-coated MNP for this in vivo test were found. Resulting from these investigations, we were able to demonstrate that our newly developed nanohybrids significantly reduce in vivo toxicity compared to uncoated MNPs.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Walter de Gruyter GmbH

Subject

General Physics and Astronomy,General Materials Science,General Chemistry

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