TY - JOUR A1 - Pereira, Rui F. P. A1 - Zehbe, Kerstin A1 - Günter, Christina A1 - dos Santos, Tiago A1 - Nunes, Silvia C. A1 - Almeida Paz, Filipe A. A1 - Silva, Maria M. A1 - Granja, Pedro L. A1 - Taubert, Andreas A1 - de Zea Bermudez, Verónica T1 - Ionic liquid-assisted synthesis of mesoporous silk fibroin/silica hybrids for biomedical applications JF - ACS Omega N2 - New mesoporous silk fibroin (SF)/silica hybrids were processed via a one-pot soft and energy-efficient sol-gel chemistry and self-assembly from a silica precursor, an acidic or basic catalyst, and the ionic liquid 1-butyl-3-methylimidazolium chloride, acting as both solvent and mesoporosity-inducer. The as-prepared materials were obtained as slightly transparent-opaque, amorphous monoliths, easily transformed into powders, and stable up to ca. 300 degrees C. Structural data suggest the formation of a hexagonal mesostructure with low range order and apparent surface areas, pore volumes, and pore radii of 205-263 m(2) g(-1), 0.16-0.19 cm(3) g(-1), and 1.2-1.6 nm, respectively. In all samples, the dominating conformation of the SF chains is the beta-sheet. Cytotoxicity/bioactivity resazurin assays and fluorescence microscopy demonstrate the high viability of MC3T3 pre-osteoblasts to indirect (>= 99 +/- 9%) and direct (78 +/- 2 to 99 +/- 13%) contact with the SF/silica materials. Considering their properties and further improvements, these systems are promising candidates to be explored in bone tissue engineering. They also offer excellent prospects as electrolytes for solid-state electrochemical devices, in particular for fuel cells. Y1 - 2018 U6 - https://doi.org/10.1021/acsomega.8b02051 SN - 2470-1343 VL - 3 IS - 9 SP - 10811 EP - 10822 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Uchida, Ryusuke A1 - Binet, Silvia A1 - Arora, Neha A1 - Jacopin, Gwenole A1 - Alotaibi, Mohammad Hayal A1 - Taubert, Andreas A1 - Zakeeruddin, Shaik Mohammed A1 - Dar, M. Ibrahim A1 - Graetzel, Michael T1 - Insights about the Absence of Rb Cation from the 3D Perovskite Lattice BT - Effect on the Structural, Morphological, and Photophysical Properties and Photovoltaic Performance JF - Small N2 - Efficiencies >20% are obtained from the perovskite solar cells (PSCs) employing Cs+ and Rb+ based perovskite compositions; therefore, it is important to understand the effect of these inorganic cations specifically Rb+ on the properties of perovskite structures. Here the influence of Cs+ and Rb+ is elucidated on the structural, morphological, and photophysical properties of perovskite structures and the photovoltaic performances of resulting PSCs. Structural, photoluminescence (PL), and external quantum efficiency studies establish the incorporation of Cs+ (x < 10%) but amply rule out the possibility of Rb-incorporation into the MAPbI(3) (MA = CH3NH3+) lattice. Moreover, morphological studies and time-resolved PL show that both Cs+ and Rb+ detrimentally affect the surface coverage of MAPbI(3) layers and charge-carrier dynamics, respectively, by influencing nucleation density and by inducing nonradiative recombination. In addition, differential scanning calorimetry shows that the transition from orthorhombic to tetragonal phase occurring around 160 K requires more thermal energy for the Cs-containing MAPbI(3) systems compared to the pristine MAPbI(3). Investigation including mixed halide (I/Br) and mixed cation A-cation based compositions further confirms the absence of Rb+ from the 3D-perovskite lattice. The fundamental insights gained through this work will be of great significance to further understand highly promising perovskite compositions. KW - cation miscibility KW - cesium cation KW - perovskite solar cells KW - rubidium cation KW - X-ray diffraction Y1 - 2018 U6 - https://doi.org/10.1002/smll.201802033 SN - 1613-6810 SN - 1613-6829 VL - 14 IS - 36 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Kim, Yohan A1 - Heyne, Benjamin A1 - Abouserie, Ahed A1 - Pries, Christopher A1 - Ippen, Christian A1 - Günter, Christina A1 - Taubert, Andreas A1 - Wedel, Armin T1 - CuS nanoplates from ionic liquid precursors-Application in organic photovoltaic cells JF - The journal of chemical physics : bridges a gap between journals of physics and journals of chemistr N2 - Hexagonal p-type semiconductor CuS nanoplates were synthesized via a hot injection method from bis(trimethylsilyl) sulfide and the ionic liquid precursor bis(N-dodecylpyridinium) tetrachloridocuprate( II). The particles have a broad size distribution with diameters between 30 and 680 nm and well-developed crystal habits. The nanoplates were successfully incorporated into organic photovoltaic (OPV) cells as hole conduction materials. The power conversion efficiency of OPV cells fabricated with the nanoplates is 16% higher than that of a control device fabricated without the nanoplates. (C) 2018 Author(s). Y1 - 2018 U6 - https://doi.org/10.1063/1.4991622 SN - 0021-9606 SN - 1089-7690 VL - 148 IS - 19 PB - American Institute of Physics CY - Melville ER - TY - JOUR A1 - Krüger, Stefanie A1 - Schwarze, Michael A1 - Baumann, Otto A1 - Günter, Christina A1 - Bruns, Michael A1 - Kübel, Christian A1 - Szabo, Dorothee Vinga A1 - Meinusch, Rafael A1 - Bermudez, Veronica de Zea A1 - Taubert, Andreas T1 - Bombyx mori silk/titania/gold hybrid materials for photocatalytic water splitting BT - combining renewable raw materials with clean fuels JF - Beilstein journal of nanotechnology N2 - The synthesis, structure, and photocatalytic water splitting performance of two new titania (TiO2)/gold(Au)/Bombyx mori silk hybrid materials are reported. All materials are monoliths with diameters of up to ca. 4.5 cm. The materials are macroscopically homogeneous and porous with surface areas between 170 and 210 m(2)/g. The diameter of the TiO2 nanoparticles (NPs) - mainly anatase with a minor fraction of brookite - and the Au NPs are on the order of 5 and 7-18 nm, respectively. Addition of poly(ethylene oxide) to the reaction mixture enables pore size tuning, thus providing access to different materials with different photocatalytic activities. Water splitting experiments using a sunlight simulator and a Xe lamp show that the new hybrid materials are effective water splitting catalysts and produce up to 30 mmol of hydrogen per 24 h. Overall the article demonstrates that the combination of a renewable and robust scaffold such as B. mori silk with a photoactive material provides a promising approach to new monolithic photocatalysts that can easily be recycled and show great potential for application in lightweight devices for green fuel production. KW - Bombyx mori silk KW - gold KW - photocatalytic water splitting KW - titania Y1 - 2018 U6 - https://doi.org/10.3762/bjnano.9.21 SN - 2190-4286 VL - 9 SP - 187 EP - 204 PB - Beilstein-Institut zur Förderung der Chemischen Wissenschaften CY - Frankfurt, Main ER - TY - JOUR A1 - Schneider, Matthias A1 - Günter, Christina A1 - Taubert, Andreas T1 - Co-deposition of a hydrogel/calcium phosphate hybrid layer on 3D printed poly(lactic acid) scaffolds via dip coating BT - Towards Automated Biomaterials Fabrication JF - Polymers N2 - The article describes the surface modification of 3D printed poly(lactic acid) (PLA) scaffolds with calcium phosphate (CP)/gelatin and CP/chitosan hybrid coating layers. The presence of gelatin or chitosan significantly enhances CP co-deposition and adhesion of the mineral layer on the PLA scaffolds. The hydrogel/CP coating layers are fairly thick and the mineral is a mixture of brushite, octacalcium phosphate, and hydroxyapatite. Mineral formation is uniform throughout the printed architectures and all steps (printing, hydrogel deposition, and mineralization) are in principle amenable to automatization. Overall, the process reported here therefore has a high application potential for the controlled synthesis of biomimetic coatings on polymeric biomaterials. KW - 3D printing KW - dip-coating KW - poly(lactic acid) KW - PLA KW - calcium phosphate KW - gelatin KW - chitosan KW - hydrogel KW - calcium phosphate hybrid material KW - biomaterials Y1 - 2018 U6 - https://doi.org/10.3390/polym10030275 SN - 2073-4360 VL - 10 IS - 3 PB - MDPI CY - Basel ER - TY - THES A1 - Abouserie, Ahed T1 - Ionic liquid precursors for multicomponent inorganic nanomaterials T1 - Ionische Flüssigkeiten als Vorstufe für anorganische Mehrkomponenten-Nanomaterialien N2 - Health effects, attributed to the environmental pollution resulted from using solvents such as benzene, are relatively unexplored among petroleum workers, personal use, and laboratory researchers. Solvents can cause various health problems, such as neurotoxicity, immunotoxicity, and carcinogenicity. As such it can be absorbed via epidermal or respiratory into the human body resulting in interacting with molecules that are responsible for biochemical and physiological processes of the brain. Owing to the ever-growing demand for finding a solution, an Ionic liquid can use as an alternative solvent. Ionic liquids are salts in a liquid state at low temperature (below 100 C), or even at room temperature. Ionic liquids impart a unique architectural platform, which has been interesting because of their unusual properties that can be tuned by simple ways such as mixing two ionic liquids. Ionic liquids not only used as reaction solvents but they became a key developing for novel applications based on their thermal stability, electric conductivity with very low vapor pressure in contrast to the conventional solvents. In this study, ionic liquids were used as a solvent and reactant at the same time for the novel nanomaterials synthesis for different applications including solar cells, gas sensors, and water splitting. The field of ionic liquids continues to grow, and become one of the most important branches of science. It appears to be at a point where research and industry can work together in a new way of thinking for green chemistry and sustainable production. N2 - Der Einfluss von kommerziellen organischen Lösungsmitteln auf den menschlichen Körper ist bekannt, jedoch nicht ausreichend untersucht worden. Spezielle Lösungsmittel wie Benzol, welche auch vermehrt in der Petrolchemie genutzt werden, zeigen akute Toxizität auf den biologischen Organismus. Daher ist der Bedarf der Verwendung eines alternativen Lösungsmittel groß. Ionische Flüssigkeiten können hier potentiell eine Alternative sein. Als Ionische Flüssigkeiten (ILs) werden Salze in flüssigem Zustand bei niedriger Temperatur (unter 100 °C) oder sogar bei Raumtemperatur definiert. Aufgrund ihrer Variabilität in der Zusammensetzung der strukturellen ionischen Moleküle ergeben sich ungewöhnliche Eigenschaften, welche auf einfachste Weise durch Mischen zweier ionischer Flüssigkeiten beliebig angepasst werden können. ILs werden sowohl als gewöhnliche Lösungsmittel verwendet, jedoch entwickelten sie sich aufgrund ihrer besonderen Eigenschaften vermehrt zu Reaktionsagenzien. Dies ist zurückzuführen auf ihre gute thermische Stabilität, elektrische Leitfähigkeit und ihrem geringen Dampfdruck. In dieser Arbeit wurden nun spezielle Ionische Flüssigkeiten speziell auf ihr Verhalten in chemischen Reaktionen als Reagenz untersucht. Als Ausgangsreaktion diente hierbei eine neuartige Synthese von Nanomaterialen, welche speziell in Solarzellen, Gassensoren und auch in der katalytischen Wasserspaltung genutzt werden. Das Anwendungspotenzial der ILs gewinnt immer mehr an Bedeutung und führt in der Forschung sowie auch in der Industrie zu neuen Denkweisen für nachhaltige Produktionen und auch Entwicklungen. KW - ionic liquids KW - Alkylpyridinium salts KW - Structure elucidation KW - Phase transitions KW - Nanoparticles KW - Metal Chalcogenides KW - Organic photovoltaic Cell KW - Ionische Flüssigkeiten KW - Alkylpyridinium-Salze KW - Strukturaufklärung KW - Phasenübergänge KW - Nanopartikel KW - Metallchalkogenide KW - Organische Photovoltaikzelle Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-418950 ER - TY - THES A1 - Grunert, Bianca T1 - Entwicklung von Markierungsreagenzien für die bildgebende Diagnostik T1 - Development of cell labeling probes for diagnostic imaging N2 - Die intrazelluläre Markierung mit geeigneten Reagenzien ermöglicht ihre bildgebende Darstellung in lebenden Organismen. Dieses Verfahren (auch „Zell-Tracking“ genannt) wird in der Grundlagenforschung zur Entwicklung zellulärer Therapien, für die Erforschung pathologischer Prozesse, wie der Metastasierung, sowie für Therapiekontrollen eingesetzt. Besondere Bedeutung haben in den letzten Jahren zelluläre Therapien mit Stammzellen erlangt, da sie großes Potential bei der Regeneration von Geweben bei Krankheiten wie Morbus Parkinson oder Typ-1-Diabetes versprechen. Für die Entwicklung einer zellulären Therapie sind Informationen über den Verbleib der applizierten Zellen in vivo (Homing-Potential), über ihre Zellphysiologie sowie über die Entstehung möglicher Entzündungen notwendig. Das Ziel der vorliegenden Arbeit war daher die Synthese von Markierungsreagenzien, die nicht nur eine effiziente Zellmarkierung ermöglichen, sondern einen synergistischen Effekt hinsichtlich des modalitätsübergreifenden Einsatzes in den bildgebenden Verfahren MRT und Laser-Ablation(LA)-ICP-MS erlauben. Die MRT-Bildgebung ermöglicht die nicht invasive Nachverfolgung markierter Zellen in vivo und die LA-ICP-MS die anschließende ex vivo Analytik zur Darstellung der Elementverteilung (Bioimaging) in einer Biopsieprobe oder in einem Gewebeschnitt. Für diese Zwecke wurden zwei verschiedene Markierungsreagenzien mit dem kontrastgebenden Element Gadolinium synthetisiert. Gadolinium eignet sich aufgrund seines hohen magnetischen Moments hervorragend für die MRT-Bildgebung und da es in Biomolekülen nicht natürlich vorkommt, konnten die Reagenzien gleichermaßen für die Zellmarkierung und das Bioimaging mit der LA-ICP-MS untersucht werden. Für die Synthese eines makromolekularen Reagenzes wurde das kommerziell verfügbare Dendrimer G5-PAMAM über bifunktionelle Linker mit dem Chelator DOTA funktionalisiert, um anschließend Gadolinium zu komplexieren. Ein zweites, nanopartikuläres Reagenz wurde über eine Solvothermal-Synthese erhalten, bei der Ln:GdVO4-Nanokristalle mit einer funktionellen Polyacrylsäure(PAA)-Hülle dargestellt wurden. Die Dotierung der Ln:GdVO4-PAA Nanokristalle mit verschiedenen Lanthanoiden (Ln=Eu, Tb) zeigte ihre prinzipielle Multiplexfähigkeit in der LA-ICP-MS. Beide Markierungsreagenzien zeichneten sich durch gute Bioverträglichkeiten und r1-Relaxivitäten aus, was zudem ihr Potential für Anwendungen als präklinische „blood-pool“ MRT-Kontrastmittel belegte. Die Untersuchung der Zellmarkierung erfolgte anhand einer Tumorzelllinie und einer Stammzelllinie, wobei beide Zellarten erfolgreich intrazellulär mit beiden Reagenzien markiert wurden. Nach der Zellmarkierung veranschaulichte die in vitro MRT-Bildgebung von Zell-Phantomen eine deutlichere Kontrastverstärkung der Zellen nach der Markierung mit den Nanokristallen im Vergleich zum kommerziellen Kontrastmittel Magnevist®. Die hohe Effizienz der Zellmarkierung mit den Nanokristallen und die damit verbundenen hohen Signalintensitäten in einer einzelnen Zelle erlaubten beim Bioimaging mit der LA-ICP-MS, Messungen bis zu einer Auflösung von 4 µm Laser Spot Size. Nach der Zellmarkierung mit den DOTA(Gd3+)-funktionalisierten G5-PAMAM Dendrimeren waren hingegen Aufnahmen mit der LA-ICP-MS nur bis zu einer Auflösung von 12 µm Laser Spot Size möglich. Insgesamt waren die Ln:GdVO4-PAA Nanokristalle mit größerer Ausbeute und kostengünstiger herstellbar als die DOTA(Gd3+)-funktionalisierten G5-PAMAM Dendrimere und zeigten zudem eine effizientere Zellmarkierung. Die Ln:GdVO4-PAA Nanokristalle erscheinen somit für das Zell-Tracking als besonders vielversprechend. Darauf aufbauend wurden die Nanokristalle zur Etablierung der Antikörper-Konjugation ausgewählt, was sie für die molekulare in vivo Bildgebung sowie für die Immuno-Bildgebung von Gewebeschnitten oder Biopsie-Proben mit der LA-ICP-MS anwendbar macht. N2 - Labeling of intracellular structures using appropriate reagents allows diagnostic imaging of such structures in living organisms. This procedure, also known as ‘cell-tracking’, can be applied in various fields of basic research, e.g. for development of cellular therapies, understanding of pathological processes such as metastasis as well as monitoring of therapeutic strategies. In recent years, cellular therapies involving stem cells have gained increasing importance for they promise great potential in the regeneration of damaged tissue associated with various diseases such as Parkinson’s disease or Type 1 diabetes. However, to enable the development of a cell-based therapy, information regarding the in vivo ability of administered cells to migrate to the organ of their origin (homing potential), the cell physiology and the risk of potential inflammation is essential. The objective of the present thesis was the synthesis of labeling reagents that not only enable efficient cell labeling, but also allow tracking of the labeled cells via magnetic resonance imaging (MRI) and laser ablation inductively coupled plasma mass spectroscopy (LA-ICP-MS). MRI offers the ability to non-invasively track the labeled cells in vivo, whereas LA-ICP-MS allows subsequent ex vivo analysis of biopsy samples. To this end, two different types of labeling reagents were synthesized containing the contrast-enhancing element gadolinium (Gd). Gd is perfectly suited for MRI due to its high magnetic moment and, since it does not occur naturally in biomolecules, the Gd-containing labelling reagents could additionally be investigated with regard to their cell labeling and bioimaging efficacy using LA-ICP-MS. Synthesis of a macromolecular labeling reagent was performed by functionalization of the commercially available dendrimer G5-PAMAM with the chelator DOTA, which subsequently allows complexation of Gd3+-ions. A second nanoparticulate labeling reagent was synthesized via a solvothermal route which yielded in Ln:GdVO4 nanocrystals having a functional shell of polyacrylic acid. Doping of these nanocrystals with different lanthanides (Ln=Eu, Tb) demonstrated their fundamental capability for multiple implementation with LA-ICP-MS. All synthesized labeling reagents showed suitable biocompatibility and r1-relativities, indicating their potential for application as in vivo preclinical MR imaging agents. The cell labeling efficacy of the synthesized reagents was investigated in both cancer and stem cell lines, whereby both cell types showed efficient intracellular uptake. After cell labelling, in vitro MRI of cell phantoms indicated that the nanocrystalline-labelled cells portrayed a significantly higher contrast enhancement, in comparison to labelling with the commercially available MRI agent, Magnevist. Bioimaging of the nanocrystalline-labelled cells with LA-ICP-MS enabled resolutions of up to 4 µm laser spot size to be achieved since the high labelling efficacy allowed high signal intensities to be observed. On the other hand, measurements of dendrimer-labelled cells could be performed up to resolutions of 12 µm laser spot size. Evaluation of the different labelling reagents showed that the one based on nanocrystals could be synthesized more cost effectively, with greater yields and resulted in a higher cell labelling efficacy, demonstrating a superior aptitude for cell-tracking applications. Consequently, the nanocrystalline labeling reagent was selected for conjugation with antibodies, which in turn enables in vitro ICP-MS-based immunohistochemistry detection as well as in vivo molecular imaging. KW - Zellmarkierung KW - Magnetresonanztomographie KW - Laserablation-ICP-MS KW - cell labeling probe KW - magnetic resonance imaging Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-422830 ER - TY - JOUR A1 - Frede, Katja A1 - Schreiner, Monika A1 - Zrenner, R. A1 - Graefe, Jan A1 - Baldermann, Susanne T1 - Carotenoid biosynthesis of pak choi (Brassica rapa ssp chinensis) sprouts grown under different light-emitting diodes during the diurnal course JF - Photochemical & photobiological sciences N2 - Light-emitting diodes (LEDs) are considered the future of greenhouse lighting. This study investigates the carotenoid concentrations of pak choi sprouts after growth under blue, red and white LEDs at six different time points. Furthermore, the diurnal changes of RNA transcripts of key genes of the carotenoid biosynthesis pathway as well as of the carotenoid cleavage dioxygenase 4 (CCD4) gene and of the transcription factor genes elongated hypocotyl 5 (HY5) and circadian clock associated 1 (CCA1) were investigated. The carotenoid concentrations were steady throughout the day, but showed a small maximum in the afternoon. An average total carotenoid concentration of 536 +/- 29 ng mg(-1) DM produced under white LEDs was measured, which is comparable to previously described field-grown levels. The carotenoid concentrations were slightly lower under blue or red LEDs. Moreover, the diurnal RNA transcript rhythms of most of the carotenoid biosynthesis genes showed an increase during the light period, which can be correlated to the carotenoid maxima in the afternoon. Blue LEDs caused the highest transcriptional induction of biosynthetic genes as well as of CCD4, thereby indicating an increased flux through the pathway. In addition, the highest levels of HY5 transcripts and CCA1 transcripts were determined under blue LEDs. Y1 - 2018 U6 - https://doi.org/10.1039/c8pp00136g SN - 1474-905X SN - 1474-9092 VL - 17 IS - 10 SP - 1289 EP - 1300 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Klopsch, Rebecca A1 - Baldermann, Susanne A1 - Voss, Alexander A1 - Rohn, Sascha A1 - Schreiner, Monika A1 - Neugart, Susanne T1 - Bread enriched with legume microgreens and leaves BT - ontogenetic and baking-driven changes in the profile of secondary plant metabolites JF - Frontiers in chemistry N2 - Flavonoids, carotenoids, and chlorophylls were characterized in microgreens and leaves of pea (Pisum sativum) and lupin (Lupinus angustifolius) as these metabolites change during ontogeny. All metabolites were higher in the leaves for both species. Acylated quercetin and kaempferol sophorotrioses were predominant in pea. Genistein and malonylated chrysoeriol were predominant in lupin. Further, the impact of breadmaking on these metabolites using pea and lupin material of two ontogenetic stages as an added ingredient in wheat-based bread was assessed. In "pea microgreen bread" no decrease of quercetin was found with regard to the non-processed plant material. However kaempferol glycosides showed slight decreases induced by the breadmaking process in "pea microgreen bread" and "pea leaf bread." In "lupin microgreen bread" no decrease of genistein compared to the non-processed plant material was found. Chrysoeriol glycosides showed slight decreases induced by the breadmaking process in "lupin microgreen bread" and "lupin leaf bread." In all breads, carotenoids and chlorophylls were depleted however pheophytin formation was caused. Thus, pea and lupin microgreens and leaves are suitable, natural ingredients for enhancing health-promoting secondary plant metabolites in bread and may even be used to tailor bread for specific consumer health needs. KW - ontogeny KW - microgreen KW - pea KW - lupin KW - flavonoid KW - carotenoid KW - thermal processing of food Y1 - 2018 U6 - https://doi.org/10.3389/fchem.2018.00322 SN - 2296-2646 VL - 6 PB - Frontiers Research Foundation CY - Lausanne ER - TY - THES A1 - Schimka, Selina T1 - Photoresponsive soft nano-objects BT - Non-colvalently bound azobenzene containing molecules and their interaction with DNA, microgels and upconverting nanopaticles to enable biological application Y1 - 2018 ER -