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Dive into the research topics where Daniel Nordmeyer is active.

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Featured researches published by Daniel Nordmeyer.


Langmuir | 2012

Surface Functionalization of Silica Nanoparticles Supports Colloidal Stability in Physiological Media and Facilitates Internalization in Cells

Christina Graf; Qi Gao; Irene Schütz; Christelle Njiki Noufele; Wentao Ruan; Uta Posselt; Elena Korotianskiy; Daniel Nordmeyer; Fiorenza Rancan; Sabrina Hadam; Annika Vogt; Jürgen Lademann; Volker Haucke; E. Rühl

The influence of the surface functionalization of silica particles on their colloidal stability in physiological media is studied and correlated with their uptake in cells. The surface of 55 ± 2 nm diameter silica particles is functionalized by amino acids or amino- or poly(ethylene glycol) (PEG)-terminated alkoxysilanes to adjust the zeta potential from highly negative to positive values in ethanol. A transfer of the particles into water, physiological buffers, and cell culture media reduces the absolute value of the zeta potential and changes the colloidal stability. Particles stabilized by L-arginine, L-lysine, and amino silanes with short alkyl chains are only moderately stable in water and partially in PBS or TRIS buffer, but aggregate in cell culture media. Nonfunctionalized, N-(6-aminohexyl)-3-aminopropyltrimethoxy silane (AHAPS), and PEG-functionalized particles are stable in all media under study. The high colloidal stability of positively charged AHAPS-functionalized particles scales with the ionic strength of the media, indicating a mainly electrostatical stabilization. PEG-functionalized particles show, independently from the ionic strength, no or only minor aggregation due to additional steric stabilization. AHAPS stabilized particles are readily taken up by HeLa cells, likely as the positive zeta potential enhances the association with the negatively charged cell membrane. Positively charged particles stabilized by short alkyl chain aminosilanes adsorb on the cell membrane, but are weakly taken up, since aggregation inhibits their transport. Nonfunctionalized particles are barely taken up and PEG-stabilized particles are not taken up at all into HeLa cells, despite their high colloidal stability. The results indicate that a high colloidal stability of nanoparticles combined with an initial charge-driven adsorption on the cell membrane is essential for efficient cellular uptake.


Beilstein Journal of Nanotechnology | 2014

PVP-coated, negatively charged silver nanoparticles: A multi-center study of their physicochemical characteristics, cell culture and in vivo experiments

Sebastian Ahlberg; Alexandra Antonopulos; Jörg Diendorf; Ralf Dringen; Matthias Epple; Rebekka Flöck; Wolfgang Goedecke; Christina Graf; Nadine Haberl; Jens Helmlinger; Fabian Herzog; Frederike Heuer; Stephanie Hirn; Christian Johannes; Stefanie Kittler; M. Köller; Katrin Korn; Wolfgang G. Kreyling; Fritz Krombach; Jürgen Lademann; Kateryna Loza; Eva M. Luther; Marcelina Malissek; Martina C. Meinke; Daniel Nordmeyer; Anne Pailliart; Jörg Raabe; Fiorenza Rancan; Barbara Rothen-Rutishauser; E. Rühl

Summary PVP-capped silver nanoparticles with a diameter of the metallic core of 70 nm, a hydrodynamic diameter of 120 nm and a zeta potential of −20 mV were prepared and investigated with regard to their biological activity. This review summarizes the physicochemical properties (dissolution, protein adsorption, dispersability) of these nanoparticles and the cellular consequences of the exposure of a broad range of biological test systems to this defined type of silver nanoparticles. Silver nanoparticles dissolve in water in the presence of oxygen. In addition, in biological media (i.e., in the presence of proteins) the surface of silver nanoparticles is rapidly coated by a protein corona that influences their physicochemical and biological properties including cellular uptake. Silver nanoparticles are taken up by cell-type specific endocytosis pathways as demonstrated for hMSC, primary T-cells, primary monocytes, and astrocytes. A visualization of particles inside cells is possible by X-ray microscopy, fluorescence microscopy, and combined FIB/SEM analysis. By staining organelles, their localization inside the cell can be additionally determined. While primary brain astrocytes are shown to be fairly tolerant toward silver nanoparticles, silver nanoparticles induce the formation of DNA double-strand-breaks (DSB) and lead to chromosomal aberrations and sister-chromatid exchanges in Chinese hamster fibroblast cell lines (CHO9, K1, V79B). An exposure of rats to silver nanoparticles in vivo induced a moderate pulmonary toxicity, however, only at rather high concentrations. The same was found in precision-cut lung slices of rats in which silver nanoparticles remained mainly at the tissue surface. In a human 3D triple-cell culture model consisting of three cell types (alveolar epithelial cells, macrophages, and dendritic cells), adverse effects were also only found at high silver concentrations. The silver ions that are released from silver nanoparticles may be harmful to skin with disrupted barrier (e.g., wounds) and induce oxidative stress in skin cells (HaCaT). In conclusion, the data obtained on the effects of this well-defined type of silver nanoparticles on various biological systems clearly demonstrate that cell-type specific properties as well as experimental conditions determine the biocompatibility of and the cellular responses to an exposure with silver nanoparticles.


Nanomedicine: Nanotechnology, Biology and Medicine | 2014

Skin barrier disruptions in tape stripped and allergic dermatitis models have no effect on dermal penetration and systemic distribution of AHAPS-functionalized silica nanoparticles

Anja Ostrowski; Daniel Nordmeyer; Alexander Boreham; Robert Brodwolf; Lars Mundhenk; Joachim W. Fluhr; Jürgen Lademann; Christina Graf; E. Rühl; Ulrike Alexiev; Achim D. Gruber

The skin is a potential site of entry for nanoparticles (NP) but the role of disease-associated barrier disturbances on the path and extent of skin penetration of NP remains to be characterized. Silica nanoparticles (SiO2-NP) possess promising potential for various medical applications. Here, effects of different skin barrier disruptions on the penetration of N-(6-aminohexyl)-aminopropyltrimethoxysilane (AHAPS) functionalized SiO2-NP were studied. AHAPS-SiO2-NP (55±6 nm diameter) were topically applied on intact, tape stripped or on inflamed skin of SKH1 mice with induced allergic contact dermatitis for one or five consecutive days, respectively. Penetration of AHAPS-SiO2-NP through the skin was not observed regardless of the kind of barrier disruption. However, only after subcutaneous injection, AHAPS-SiO2-NP were incorporated by macrophages and transported to the regional lymph node only. Adverse effects on cells or tissues were not observed. In conclusion, AHAPS-SiO2-NP seem to not cross the normal or perturbed mouse skin. From the clinical editor: Skin is a potential site of entry for nanoparticles; however, it is poorly understood how skin diseases may alter this process. In tape-stripped skin and allergic contact dermatitis models the delivery properties of AHAPS-SiO2 nanoparticles remained unchanged, and in neither case were these NP-s able to penetrate the skin. No adverse effects were noted on the skin in these models and control mice.


Beilstein Journal of Nanotechnology | 2015

Overview about the localization of nanoparticles in tissue and cellular context by different imaging techniques

Anja Ostrowski; Daniel Nordmeyer; Alexander Boreham; Cornelia Holzhausen; Lars Mundhenk; Christina Graf; Martina C. Meinke; Annika Vogt; Sabrina Hadam; Jürgen Lademann; E. Rühl; Ulrike Alexiev; Achim D. Gruber

Summary The increasing interest and recent developments in nanotechnology pose previously unparalleled challenges in understanding the effects of nanoparticles on living tissues. Despite significant progress in in vitro cell and tissue culture technologies, observations on particle distribution and tissue responses in whole organisms are still indispensable. In addition to a thorough understanding of complex tissue responses which is the domain of expert pathologists, the localization of particles at their sites of interaction with living structures is essential to complete the picture. In this review we will describe and compare different imaging techniques for localizing inorganic as well as organic nanoparticles in tissues, cells and subcellular compartments. The visualization techniques include well-established methods, such as standard light, fluorescence, transmission electron and scanning electron microscopy as well as more recent developments, such as light and electron microscopic autoradiography, fluorescence lifetime imaging, spectral imaging and linear unmixing, superresolution structured illumination, Raman microspectroscopy and X-ray microscopy. Importantly, all methodologies described allow for the simultaneous visualization of nanoparticles and evaluation of cell and tissue changes that are of prime interest for toxicopathologic studies. However, the different approaches vary in terms of applicability for specific particles, sensitivity, optical resolution, technical requirements and thus availability, and effects of labeling on particle properties. Specific bottle necks of each technology are discussed in detail. Interpretation of particle localization data from any of these techniques should therefore respect their specific merits and limitations as no single approach combines all desired properties.


Langmuir | 2018

Shape-Dependent Dissolution and Cellular Uptake of Silver Nanoparticles

Christina Graf; Daniel Nordmeyer; Christina Sengstock; Sebastian Ahlberg; Jörg Diendorf; Jörg Raabe; Matthias Epple; M. Köller; Jürgen Lademann; Annika Vogt; Fiorenza Rancan; E. Rühl

The cellular uptake and dissolution of trigonal silver nanoprisms (edge length 42 ± 15 nm, thickness 8 ± 1 nm) and mostly spherical silver nanoparticles (diameter 70 ± 25 nm) in human mesenchymal stem cells (hMSCs) and human keratinocytes (HaCaT cells) were investigated. Both particles are stabilized by polyvinylpyrrolidone (PVP), with the prisms additionally stabilized by citrate. The nanoprisms dissolved slightly in pure water but strongly in isotonic saline or at pH 4, corresponding to the lowest limit for the pH during cellular uptake. The tips of the prisms became rounded within minutes due to their high surface energy. Afterward, the dissolution process slowed down due to the presence of both PVP stabilizing Ag{100} sites and citrate blocking Ag{111} sites. On the contrary, nanospheres, solely stabilized by PVP, dissolved within 24 h. These results correlate with the finding that particles in both cell types have lost >90% of their volume within 24 h. hMSCs took up significantly more Ag from nanoprisms than from nanospheres, whereas HaCaT cells showed no preference for one particle shape. This can be rationalized by the large cellular interaction area of the plateletlike nanoprisms and the bending stiffness of the cell membranes. hMSCs have a highly flexible cell membrane, resulting in an increased uptake of plateletlike particles. HaCaT cells have a membrane with a 3 orders of magnitude higher Youngs modulus than for hMSC. Hence, the energy gain due to the larger interaction area of the nanoprisms is compensated for by the higher energy needed for cell membrane deformation compared to that for spheres, leading to no shape preference.


Proceedings of SPIE | 2015

Penetration of spherical and rod-like gold nanoparticles into intact and barrier-disrupted human skin

Christina Graf; Daniel Nordmeyer; Sebastian Ahlberg; Jörg Raabe; Annika Vogt; Jürgen Lademann; Fiorenza Rancan; E. Rühl

The penetration of spherical and rod-like gold nanoparticles into human skin is reported. Several skin preparation techniques are applied, including cryo techniques, such as plunge freezing and freeze drying, and the use of wet cells. Their advantages and drawbacks for observing nanoparticle uptake are discussed. Independent of the particle shape no uptake into intact skin is observed by a combination of imaging approaches, including scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDX), and scanning X-ray microscopy (STXM). These results are discussed along with suitable skin preparation approaches. Experiments on barrier-disrupted skin, i.e. mechanical lesions made by pricking, indicate, however, that gold particles can be identified deep in the dermis, as follows from STXM studies on wet skin samples.


Nanoscale | 2014

Iron oxide nanoparticles stabilized with dendritic polyglycerols as selective MRI contrast agents

Daniel Nordmeyer; Patrick Stumpf; Dominic Gröger; Andreas Hofmann; Sven Enders; Sebastian B. Riese; Jens Dernedde; Matthias Taupitz; Ursula Rauch; Rainer Haag; E. Rühl; Christina Graf


Nanoscale Research Letters | 2014

AHAPS-functionalized silica nanoparticles do not modulate allergic contact dermatitis in mice

Anja Ostrowski; Daniel Nordmeyer; Lars Mundhenk; Joachim W. Fluhr; Jürgen Lademann; Christina Graf; E. Rühl; Achim D. Gruber


Journal of Comparative Pathology | 2015

Allergic contact dermatitis in mice is not affected or penetrated by ahaps-functionaliZed silica nanoparticles

A. Ostrowski; Daniel Nordmeyer; Lars Mundhenk; Joachim W. Fluhr; Christina Graf; E. Rühl; Achim D. Gruber


Journal of Comparative Pathology | 2014

Effects of Skin Barrier Disruptions on the Penetration of Ahaps-Functionalized Silica Nanoparticles in the Mouse

A. Ostrowski; Daniel Nordmeyer; Lars Mundhenk; Joachim W. Fluhr; Christina Graf; E. Rühl; Achim D. Gruber

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Christina Graf

Free University of Berlin

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E. Rühl

Free University of Berlin

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Achim D. Gruber

Free University of Berlin

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Lars Mundhenk

Free University of Berlin

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Anja Ostrowski

Free University of Berlin

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