TY - JOUR A1 - Löwa, N. A1 - Knappe, Patrick A1 - Wiekhorst, F. A1 - Eberbeck, D. A1 - Thünemann, Andreas A1 - Trahms, L. T1 - Hydrodynamic and magnetic fractionation of superparamagnetic nanoparticles for magnetic particle imaging N2 - Resovist® originally developed as a clinical liver contrast agent for Magnetic Resonance Imaging exhibits also an outstanding performance as a tracer in Magnetic Particle Imaging (MPI). In order to study the physical mechanism of the high MPI performance of Resovist®, we applied asymmetric flow field–flow fractionation (A4F) and static magnetic fractionation (SMF) to separate Resovist® into a set of fractions with defined size classes. As A4F based on an elution method separates MNP according to their hydrodynamic size, SMF fractionates a particle distribution by its magnetic moment. The obtained fractions of both separation techniques were then magnetically characterized by magnetorelaxometry measurements to extract the corresponding effective magnetic anisotropy and hydrodynamic size distribution parameters. Additionally, the MPI performance of each fraction was assessed using magnetic particle spectroscopy. With both separation techniques fractions (normalized to their iron amount) an MPI signal gain of a factor of two could be obtained, even though the distribution of effective anisotropy and hydrodynamic size were significantly different. Relating these findings to the results from magnetic characterization allows for a better understanding of the underlying mechanisms of MPI performance of Resovist®. This knowledge may help to improve the design of novel MPI tracers and development of separation methods. KW - Superparamagnetic nanoparticles KW - Asymmetric flow field–flow fractionation KW - Magnetic particle spectroscopy KW - Magnetorelaxometry KW - Magnetic separation KW - Magnetic particle imaging KW - Resovist® KW - Nanotechnology KW - SAXS KW - Nanoparticles PY - 2015 U6 - https://doi.org/10.1016/j.jmmm.2014.08.057 SN - 0304-8853 VL - 380 SP - 266 EP - 270 PB - Elsevier B.V. CY - Amsterdam AN - OPUS4-32562 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Lak, A. A1 - Thünemann, Andreas A1 - Schilling, M. A1 - Ludwig, F. T1 - Resolving particle size modality in bi-modal iron oxide nanoparticle suspensions N2 - Particle size modality in bi-modal iron oxide suspensions was resolved by exploiting complex ac-susceptibility (ACS), small angle X-ray scattering (SAXS) and photon cross-correlation spectroscopy. To explain dynamic magnetic response of bi-modal suspensions, the Debye model was expanded to a linear superposition form allowing for the contribution of both particle fractions. This modified and adopted model is able to resolve the bi-modal particle size distributions. The SAXS curves of mono- and bi-modal suspensions were fitted well using a Monte Carlo simulation scheme, allowing the detection of bi-modal particle size distributions with high precision. KW - Iron oxide nanoparticle KW - Bi-modal size distribution characterization KW - Complex ac-susceptibility KW - Small angle X-ray scattering KW - Modeling KW - Nanotechnology KW - SAXS KW - Nanoparticles PY - 2015 U6 - https://doi.org/10.1016/j.jmmm.2014.08.050 SN - 0304-8853 VL - 380 SP - 140 EP - 143 PB - Elsevier CY - Amsterdam AN - OPUS4-32563 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Löwa, N. A1 - Knappe, Patrick A1 - Wiekhorst, F. A1 - Eberbeck, D. A1 - Thünemann, Andreas A1 - Trahms, L. T1 - How hydrodynamic fractionation influences MPI performance of resovist N2 - We studied the magnetic resonance imaging liver contrast agent Resovist by a variety of magnetic measurement techniques, in order to understand the physical mechanism of their high magnetic particle imaging (MPI) performance, wirh a focus on the size-dependent contributions of the MPI signal. To this end, we used asymmetric flow field-flow fractionation to separate Resovist into a set of fractions with defined hydrodynamic diameters. The individual fractions were magnetically characterized by static magnetization and magnetorelaxometry measurements to obtain the corresponding effective magnetic anisotropy and effective size distribution parameters. In addition, the MPI performance of each fraction was assessed by magnetic particle spectroscopy. We observed an MPI signal gain of about 100% with respect to their iron amount for the best fraction. Relating these finding to the results from magnetic characterization provides more insight into mechanisms of MPI performance of Resovist. This knowledge may help to improve the design of novel MPI tracers. KW - Nanotechnology KW - Nanoparticles KW - Asymmetric flow field-flow fractionation KW - Magnetic nanoparticles (MNP) KW - Magnetic particle imaging (MPI) KW - Magnetic particle spectroscopy KW - Magnetic separation KW - Magnetorelaxometry (MRX) KW - Resovist PY - 2015 U6 - https://doi.org/10.1109/TMAG.2014.2326833 SN - 0018-9464 SN - 1941-0069 VL - 51 IS - 2 SP - 5300104-1 EP - 5300104-4 PB - Institute of Electrical and Electronics Engineers CY - New York, NY AN - OPUS4-33337 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Neffe, A.T. A1 - Von Ruesten-Lange, M. A1 - Braune, S. A1 - Lützow, K. A1 - Roch, T. A1 - Richau, K. A1 - Krüger, A. A1 - Becherer, T. A1 - Thünemann, Andreas A1 - Jung, F. A1 - Haag, R. A1 - Lendlein, A. T1 - Multivalent grafting of hyperbranched oligo- and polyglycerols shielding rough membranes to mediate hemocompatibility N2 - Hemocompatible materials are needed for internal and extracorporeal biomedical applications, which should be realizable by reducing protein and thrombocyte adhesion to such materials. Polyethers have been demonstrated to be highly efficient in this respect on smooth surfaces. Here, we investigate the grafting of oligo- and polyglycerols to rough poly(ether imide) membranes as a polymer relevant to biomedical applications and show the reduction of protein and thrombocyte adhesion as well as thrombocyte activation. It could be demonstrated that, by performing surface grafting with oligo- and polyglycerols of relatively high polydispersity (>1.5) and several reactive groups for surface anchoring, full surface shielding can be reached, which leads to reduced protein adsorption of albumin and fibrinogen. In addition, adherent thrombocytes were not activated. This could be clearly shown by immunostaining adherent proteins and analyzing the thrombocyte covered area. The presented work provides an important strategy for the development of application relevant hemocompatible 3D structured materials. KW - Nanotechnology KW - thrombocyte adhesion KW - biomedical applications PY - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-308196 SN - 2050-750X SN - 2050-7518 VL - 2 IS - 23 SP - 3626 EP - 3635 PB - Royal Soc. of Chemistry CY - Cambridge AN - OPUS4-30819 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -