903 resultados para DNA nanostructures dendrimers RNA therapies drug delivery microglia microRNA DNAzymes self-assembly


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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Topical corticosteroids, e.g., dexamethasone acetate (DMA), are extensively used to treat cutaneous inflammatory disorders even though their use is correlated with potential local and systemic side effects. The objective of this study was to develop and test the topical delivery of DMA-loaded surfactant based systems in vitro; these studies could guarantee a suitable delivery and therapeutic efficacy, as well as minimize DMA's side effects. A phase diagram was constructed using polyoxypropylene (5) polyoxyethylene (20) cetyl alcohol as the surfactant (S), isopropyl myristate as the oil phase (O) and water (W). The systems were characterized using polarization light microscopy (PLM), as well as rheological and small angle X-ray scattering (SAXS) measurements. Depending on the concentration of the constituents, it was possible to obtain microemulsions (MEs) and liquid crystalline mesophases (lamellar and hexagonal). These types of arrangement were verified using PLM measurements. The SAXS results revealed that increasing the W/S ratio led to ME, as well as lamellar (LAM) and hexagonal (HEX) arrangements. The MEs displayed typical Newtonian behavior while the LAM and HEX phases exhibited pseudoplasticity and plasticity, respectively. The MEs displayed excellent drug solubilization that was approximately 10-fold higher than was observed with the individual components. The in vitro cutaneous permeation studies using pig ear skin and analysis of the mechanical parameters (hardness, compressibility, cohesiveness and adhesiveness) were carried out with a HEX phase and O/W emulsion. The HEX phase achieved better drug permeation and retention in the skin while its mechanical properties were suitable for skin administration. PPG-5-CETETH-20-based systems may be a promising platform delivering DMA and other topical corticosteroids through the skin.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Topical photodynamic therapy (PDT) has been applied to almost all types of nonmelanoma skin cancer and numerous superficial benign skin disorders. Strategies to improve the accumulation of photosensitizer in the skin have been studied in recent years. Although the hydrophilic phthalocyanine zinc compound, zinc phthalocyanine tetrasulfonate (ZnPcSO4) has shown high photodynamic efficiency and reduced phototoxic side effects in the treatment of brain tumors and eye conditions, its use in topical skin treatment is currently limited by its poor skin penetration. In this study, nanodispersions of monoolein (MO)-based liquid crystalline phases were studied for their ability to increase ZnPcSO4 uptake by the skin. Lamellar, hexagonal and cubic crystalline phases were prepared and identified by polarizing light microscopy, and the nanodispersions were analyzed by dynamic light scattering. In vitro skin penetration studies were performed using a Franz's cell apparatus, and the skin uptake was evaluated in vivo in hairless mice. Aqueous dispersions of cubic and hexagonal phases showed particles of nanometer size, approximately 224 +/- 10 nm and 188 +/- 10 nm, respectively. In vitro skin retention experiments revealed higher fluorescence from the ZnPcSO4 in deeper skin layers when this photosensitizer was loaded in the hexagonal nanodispersion system when compared to both the cubic phase nanoparticles and the bulk crystalline phases (lamellar, cubic and hexagonal). The hexagonal nanodispersion showed a similar penetration behavior in animal tests. These results are important findings, suggesting the development of MO liquid crystal nanodispersions as potential delivery systems to enhance the efficacy of topical PDT.

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Liposomes have been an excellent option as drug delivery systems, since they are able of incorporating lipophobic and/or lipophilic drugs, reduce drug side effects, increase drug targeting, and control delivery. Also, in the last years, their use reached the field of gene therapy, as non-viral vectors for DNA delivery. As a strategy to increase system stability, the use of polymerizable phospholipids has been proposed in liposomal formulations. In this work, through differential scanning calorimetry (DSC) and electron spin resonance (ESR) of spin labels incorporated into the bilayers, we structurally characterize liposomes formed by a mixture of the polymerizable lipid diacetylenic phosphatidylcholine 1,2-bis(10,12-tricosadiynoyl)-sn-glycero-3-phosphocholine (DC8,9PC) and the zwitterionic lipid 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC), in a 1:1 molar ratio. It is shown here that the polymerization efficiency of the mixture (c.a. 60%) is much higher than that of pure DC8,9PC bilayers (c.a. 20%). Cationic amphiphiles (CA) were added, in a final molar ratio of 1:1:0.2 (DC8,9PC:DMPC:CA), to make the liposomes possible carriers for genetic material, due to their electrostatic interaction with negatively charged DNA. Three amphiphiles were tested, 1,2-dioleoyl-3-trimetylammonium-propane (DOTAP), stearylamine (SA) and trimetyl (2-miristoyloxietyl) ammonium chloride (MCL), and the systems were studied before and after UV irradiation. Interestingly, the presence of the cationic amphiphiles increased liposomes polymerization. MCL displaying the strongest effect. Considering the different structural effects the three cationic amphiphiles cause in DC8,9PC bilayers, there seem to be a correlation between the degree of DC8,9PC polymerization and the packing of the membrane at the temperature it is irradiated (gel phase). Moreover, at higher temperatures, in the bilayer fluid phase, more polymerized membranes are significantly more rigid. Considering that the structure and stability of liposomes at different temperatures can be crucial for DNA binding and delivery, we expect the study presented here contributes to the production of new carrier systems with potential applications in gene therapy. (C) 2012 Elsevier Ireland Ltd. All rights reserved.

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The purpose of this study was to prepare and characterize coated pellets for controlled drug delivery. The influence of chitosan (CS) in pellets was evaluated by swelling, in vitro drug release and intestinal permeation assays. Pellets were coated with an enteric polymer, Kollicoat (R) MAE 30 DP, in a fluidized-bed apparatus and the coating formulations were based on a factorial design. Metronidazole (MT) released from coated and uncoated pellets were assessed by dissolution method using Apparatus I. Intestinal permeation was evaluated by everted intestinal sac model in rats, used to study the absorption of MT from coated pellets containing CS or not through the intestinal tissue. Although the film coating avoided drug dissolution in gastric medium, the overall drug release and intestinal permeation were dependent on the presence of CS. Thus, pellets containing CS show potential as a system for controlled drug delivery. (C) 2011 Elsevier Ltd. All rights reserved.

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Core-shell macromolecules with dendritic polyphenylene core and polymer shell Zusammenfassung / Abstract Core-shell macromolecular structures have become of great interest in materials science because they gave an opportunity to combine a large variety of chemical and physical properties in the single molecule, by combination of different (in terms of chemistry and physics) cores and shells. The interest in such complex structures was provoked by their potential applications in the coating and painting industry (latexes), as supports for catalysts in polymer industry, or as nano-containers and transporters for genes or drug delivery. The aim of this study was the synthesis, characterization and further application of core-shell macromolecules possessing a hydrophobic stiff core (polyphenylene dendrimers) surrounded with a hydrophilic, soft, covalently bonded polymer shell (poly(ethylene oxide) and its copolymers). The requirements for such complex substances were that they should be well-defined in terms of molecular weight (narrow molecular weight distribution) and in molecular structure. The preparation of core-shell molecules containing dendrimer as a core was possible via two synthetic routs: “grafting-onto” and “grafting-from”. The resulting core-shell macromolecules possessed narrow polydispersity as guaranteed by the excellent structural and functional definition of the dendrimer and the narrow polydispersity of the PEO, PS-b-PEO and PI-b-PEO attached to the dendrimer surface. Additional investigation of the size of the particles indicated a relation between both the length and the number of the polymer chains and the hydrodynamic radius determined by Dynamic Light Scattering and Fluorescent Correlation Spectroscopy. Core-shell nano-particles were applied as metallocene supports in heterogeneous olefin polymerizations. Our results indicate that such catalyst systems, that have a size of at least one order of magnitude smaller than the used by now organic supports, could be very useful as model compounds for investigations on catalyst fragmentation and its influence on the product parameters.

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In this work, two different systems were investigated to develop fundamental understanding of the self-assembly behavior of polyelectrolytes and small organic counterions with a certain geometry. Complexes formed were characterized by light scattering in solution, as well as UV-Vis spectroscopy, analytical ultracentrifugation, gel electrophoresis, zeta potential and IR spectroscopy. The morphologies of the aggregates were observed by AFM in dried state on surface. The charge ratio, the valence and the structure of the counterion were shown to represent key parameters in the complexation. The influence of polyelectrolyte type and molecular weights was also determined for the structure formed.rnrnOne system was mainly focused on the association of double-strand DNA with non-intercalating divalent and tetravalent organic counterions. The other model system involved linear NaPSS and oligolysines. In addition, various influences on the morphology of the charged self-assembly complexes in AFM studies were discussed. It was shown that electrostatic self-assembly of DNA and non-intercalating counterions as well as of a linear synthetic polyelectrolyte with oligolysine counterions that can build mutual hydrogen bonds can yield supramolecular aggregates of a defined size. Various morphologies (flower-like, rod-like, toroidal and spherical) of the assemblies were obtained for different combinations of polyelectrolyte and counterions. Results presented in this work are of importance for the fundamental understanding of the association behavior of various polyelectrolytes and organic counterions. The selection of biopolymers for the study may give an opportunity to transfer the basic research results into biological applications, such as gene therapy or drug delivery.rn

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Dextran-based polymers are versatile hydrophilic materials, which can provide functionalized surfaces in various areas including biological and medical applications. Functional, responsive, dextran based hydrogels are crosslinked, dextran based polymers allowing the modulation of response towards external stimuli. The controlled modulation of hydrogel properties towards specific applications and the detailed characterization of the optical, mechanical, and chemical properties are of strong interest in science and further applications. Especially, the structural characteristics of swollen hydrogel matrices and the characterization of their variations upon environmental changes are challenging. Depending on their properties hydrogels are applied as actuators, biosensors, in drug delivery, tissue engineering, or for medical coatings. However, the field of possible applications still shows potential to be expanded. rnSurface attached hydrogel films with a thickness of several micrometers can serve as waveguiding matrix for leaky optical waveguide modes. On the basis of highly swelling and waveguiding dextran based hydrogel films an optical biosensor concept was developed. The synthesis of a dextran based hydrogel matrix, its functionalization to modulate its response towards external stimuli, and the characterization of the swollen hydrogel films were main interests within this biosensor project. A second focus was the optimization of the hydrogel characteristics for cell growth with the aim of creating scaffolds for bone regeneration. Matrix modification towards successful cell growth experiments with endothelial cells and osteoblasts was achieved.rnA photo crosslinkable, carboxymethylated dextran based hydrogel (PCMD) was synthesized and characterized in terms of swelling behaviour and structural properties. Further functionalization was carried out before and after crosslinking. This functionalization aimed towards external manipulation of the swelling degree and the charge of the hydrogel matrix important for biosensor experiments as well as for cell adhesion. The modulation of functionalized PCMD hydrogel responses to pH, ion concentration, electrochemical switching, or a magnetic force was investigated. rnThe PCMD hydrogel films were optically characterized by combining surface plasmon resonance (SPR) and optical waveguide mode spectroscopy (OWS). This technique allows a detailed analysis of the refractive index profile perpendicular to the substrate surface by applying the Wentzel Kramers Brillouin (WKB) approximation. rnIn order to perform biosensor experiments, analyte capturing units such as proteins or antibodies were covalently coupled to the crosslinked hydrogel backbone by applying active ester chemistry. Consequently, target analytes could be located inside the waveguiding matrix. By using labeled analytes, fluorescence enhancement was achieved by fluorescence excitation with the electromagnetic field in the center of the optical waveguide modes. The fluorescence excited by the evanescent electromagnetic field of the surface plasmon was 2 3 orders of magnitude lower. Furthermore, the signal to noise ratio was improved by the fluorescence excitation with leaky optical waveguide modes.rnThe applicability of the PCMD hydrogel sensor matrix for clinically relevant samples was proofed in a cooperation project for the detection of PSA in serum with long range surface plasmon spectroscopy (LRSP) and fluorescence excitation by LRSP (LR SPFS). rn

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In the last decades noble metal nanoparticles (NPs) arose as one of the most powerful tools for applications in nanomedicine field and cancer treatment. Glioblastoma multiforme (GBM), in particular, is one of the most aggressive malignant brain tumors that nowadays still presents a dramatic scenario concerning median survival. Gold nanorods (GNRs) and silver nanoparticles (AgNPs) could find applications such as diagnostic imaging, hyperthermia and glioblastoma therapy. During these three years, both GNRs and AgNPs were synthesized with the “salt reduction” method and, through a novel double phase transfer process, using specifically designed thiol-based ligands, lipophilic GNRs and AgNPs were obtained and separately entrapped into biocompatible and biodegradable PEG-based polymeric nanoparticles (PNPs) suitable for drug delivery within the body. Moreover, a synergistic effect of AgNPs with the Alisertib drug, were investigated thanks to the simultaneous entrapment of these two moieties into PNPs. In addition, Chlorotoxin (Cltx), a peptide that specifically recognize brain cancer cells, was conjugated onto the external surface of PNPs. The so-obtained novel nanosystems were evaluated for in vitro and in vivo applications against glioblastoma multiforme. In particular, for GNRs-PNPs, their safety, their suitability as optoacoustic contrast agents, their selective laser-induced cells death and finally, a high tumor retention were all demonstrated. Concerning AgNPs-PNPs, promising tumor toxicity and a strong synergistic effect with Alisertib was observed (IC50 10 nM), as well as good in vivo biodistribution, high tumor uptake and significative tumor reduction in tumor bearing mice. Finally, the two nanostructures were linked together, through an organic framework, exploiting the click chemistry azido-alkyne Huisgen cycloaddition, between two ligands previously attached to the NPs surface; this multifunctional complex nanosystem was successfully entrapped into PNPs with nanoparticles’ properties maintenance, obtaining in this way a powerful and promising tool for cancer fight and defeat.

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Within this thesis, new approaches for the concepts of peptide-polymer conjugates and peptide-based hybrid nanomaterials are investigated. In the first part, the synthesis of a triblock polymer-peptide-polymer is carried out following a typical peptide coupling reaction, both in solution and on solid-phase. The peptide sequence is chosen, so that it is cleaved by an enzyme preparation of trypsin. End-functionalized polystyrene is used as a model hydrophobic polymer and coupled to the peptide sequence. The results show successful coupling reactions in both methods, while the solid phase method produced a more defined product. Suspensions, consisting of peptide-polymer conjugates particles, are prepared in water by ultrasonication. In contact with the enzyme, the peptide constituting the conjugated particles is cleaved. This demonstrates the enzymatic cleavage in heterophase of enzymatic sequence bond to hydrophobic polymers, and is of great interest for the encapsulation and delivery of hydrophobic molecules.rnA second approach is the preparation of peptide-based hybrid nanocapsules. This is achieved by interfacial polyaddition in inverse miniemulsion with the peptide sequence functionalized with additional amino acids. A method suitable to the use of a peptide sequence for interfacial polyaddition was developed. It is shown that, the polarity of the dispersed phase influences the structures prepared, from particle-like to polymeric shell with a liquid core.rnThe peptide sequence is equipped with a FRET pair (more exactly, an internally-quenched fluorescent system) which allows the real-time monitoring of the enzymatic cleavage of the recognition site. This system shows the successful cleavage of the peptide-based nanocapsules when trypsin preparation is added to the suspensions. A water-soluble fluorescent polymer is efficiently entrapped and its possible use as marker for the capsules is highlighted. Furthermore, a small water-soluble fluorescent dye (SR-101) is successfully encapsulated and the encapsulation efficiency as a function of the functionality of the peptide and the amount of comonomer equivalent (toluene diisocyanate) is studied. The dye is encapsulated at such a high concentration, that self-quenching occurs. Thus, the release of the encapsulated dye triggered by the enzymatic cleavage of the peptide results in a fluorescence recovery of the dye. The fluorescence recovery of the FRET pair in the peptide and of the encapsulated dye correlate well.rnFinally, nanocapsules based on a hepsin-cleavable peptide sequence are prepared. Hepsin is an enzyme, which is highly upregulated in prostate cancer cells. The cleavage of the nanocapsules is investigated with healthy and “cancerous” (hepsin-expressing) cell cultures. The degradation, followed via fluorescence recovery of the FRET system, is faster for the suspensions introduced in the hepsin expressing cell cultures.rnIn summary, this work tackles the domain of responsive nanomaterials for drug delivery from a new perspective. It presents the adaptation of the miniemulsion process for hybrid peptide-based materials, and their successful use in preparing specific enzyme-responsive nanoparticles, with hydrophilic payload release properties.rn

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Die vorliegende Dissertation untersucht Nanopartikel und Nanokapseln aus verschiedenen Materialien mit verschiedenen Modifikationen für einen zielgerichteten Medikamententransport (Drug Targeting). Obwohl bisher zahlreiche Nanopartikel und -kapseln synthetisiert wurden, besteht nach wie vor hinsichtlich der zellulären Verträglichkeit, Biokompatibilität und Aufnahme kein allumfassendes Verständnis. Mit Hilfe der in dieser Arbeit vorgestellten Untersuchungen und Ergebnissen soll ein Beitrag zur Schließung dieser Lücke geleistet werden.rnIm Rahmen der vorliegenden Dissertation wurde der Einfluss der Herstellungsmaterialien PS, PLLA, PMMA, Biomakromoleküle (BSA, DNA), ggf. stabilisiert durch HPMA-LMA-Copolymere und neu-synthetisierte Surfmere, der Formmodifikationen Streckung und Kristallisierung, der Oberflächenmodifikationen mittels verschiedener Tenside und PEG auf die zelluläre Aufnahme und Verträglichkeit hin untersucht.rnZusammenfassend lässt sich die Aussage treffen, dass zahlreiche Materialien zur Herstellung von Trägersystemen geeignet sind und sich als biokompatibel und nicht-zytotoxisch erwiesen haben, sich jedoch stark hinsichtlich der Aufnahmeeffizienz in verschiedene Zelllinien unterscheiden. rnIm ersten Abschnitt (Kapitel 5.1) wurden in der ersten und zweiten Untersuchung auf allgemeine Parameter, die die Aufnahme von Nanopartikeln beeinflussen, eingegangen. Hier wurde der Einfluss des Alters von PLLA-Partikeln auf die zelluläre Aufnahme und Toxizität untersucht. Es konnte gezeigt werden, dass mit zunehmender Materialalterung die zelluläre Aufnahme abnimmt. Eine Zytotoxizität konnte nicht gezeigt werden.rnWeiterhin wurde der Einfluss des FCS-Gehalts des Zell-Mediums auf die zelluläre Aufnahme von PMMA-Partikeln untersucht. Es konnte gezeigt werden, dass mit einer steigenden FCS-Konzentration eine Abnahme der zellulären Aufnahme von PMMA-Partikeln einhergeht. Die höchste zelluläre Aufnahme konnte bei einem FCS-Gehalt des Zellmediums von 0,05% verzeichnet werden. rnIm zweiten Abschnitt (Kapitel 5.2) wurde die Stabilisierung von Nanopartikeln mittels neusynthetisierter Tenside und deren Einfluss auf die Zelle-Nanopartikel-Interaktionen untersucht. Dazu wurde zum einen die Oberflächenfunktionalisierung von Nanopartikeln mit Hilfe neu-synthetisierter „Surfmere“ und deren Einfluss auf die zelluläre Aufnahme und Toxizität untersucht. Die hergestellten Surfmere bewirken gleichzeitig eine Stabilisierung und Funktionalisierung der Nanopartikeloberfläche mit Phosphonatgruppen. Hier wurden kovalente „Surfmer“ stabilisierte Nanopartikel mit Tensid- (SDP) stabilisierten Nanopartikeln verglichen. Zudem wurden dialysierte Nanopartikel mit nicht-dialysierten verglichen. Bezüglich der zellulären Aufnahme konnte für die mittels Dialyse gereinigten Nanopartikel eine gute Aufnahme ohne Unterschiede zwischen den kovalent und nicht-kovalent Phosphonat-funktionalisierten Partikeln beobachtet werden. Die ungereinigten, SDP-stabilisierte, nicht-kovalent gebundene Nanopartikel zeigten hingegen eine bis zu 30% stärkere Aufnahme in die HeLa-Zellen und hMSCs.rnWeiterhin der Einsatz von mit HPMA-LMA-Copolymeren stabilisierte Polystyrol- und PLLA-Partikel, die den Einsatz von Tensiden während des Miniemulsionsprozesses überflüssig machen, untersucht. Auch hier konnte keine Zytotoxizität nachgewiesen werden. Die Aufnahme in HeLa-Zellen scheint mehr von der Größe der Nanopartikel als vom verwendeten Material und in hMSCs mehr von den Oberflächeneigenschaften der Nanopartikel abzuhängen.rnIm dritten Abschnitt (Kapitel 5.3) wird auf die Möglichkeit der Formmodifikation von Polystyrol-Partikeln und deren Einfluss auf die Nanopartikel-Zelle-Interaktionen eingegangen. Es geht dabei um die Aufnahme und Zytotoxizität von verstreckten (elongierten) Polystyrol-Partikeln im Vergleich zu sphärischen Nanopartikeln, sowie die Aufnahme und Zytotoxizität von kristallinen Polystyrol-Partikeln in verschiedene Zelllinien. Bei den verstreckten Partikeln nimmt die Aufnahme-Effizienz in HeLa-Zellen und hMSCs mit zunehmender Verstreckung ab. Eine Zytotoxizität konnte für keinen der erwähnten Nanopartikel nachgewiesen werden. Bei den Polystyrol-Partikeln unterschiedlicher Taktizität zeigen die kristallierten Polystyrol-Partikel eine geringfügig besser Aufnahme-Rate als die nicht-kristallierten Polystyrol-Partikel. Dabei zeigen die nach dem Herstellungsprozess mittels der Lösemittelverdampfungstechnik der wässrigen Phase entnommenen Partikel eine bessere Aufnahme als die nach der Verdampfung des Chloroforms verfügbaren Partikel. Insgesamt konnte jedoch für alle Polystyrol-Partikel trotz der unterschiedlichen Taktizitäten nach der Aufnahme in HeLa-Zellen und hMSCs mittels Durchflusszytometrie hohe Fluoreszenz-Intensitäten verzeichnet werden. Setzt man hohe Fluoreszenz-Intensitäten bei in Zellen aufgenommenen Partikeln mit guten Aufnahmeraten gleich, sind die hier dargestellten Aufnahmeraten als sehr gut zu bezeichnen. rnAuf Nanosysteme mit einer reduzierten zellulären Aufnahme wird im letzten Abschnitt (Kapitel 5.4) eingegangen. Dabei wird zum einen die unterschiedliche Oberflächenmodifikation von Polystyrol-Partikeln mit dem Co-Monomer PEG-MA und den Tensiden SDS und Lutensol AT50 untersucht. Von PEG-MA wurden zudem verschiedene Molekulargewichte (Mn=300 g•mol-1 und Mn=2080 g•mol-1) und verschiedene Konzentrationen (1,5%, 5%, 10%) eingesetzt. Ein Teil der Partikel wurde mit SDS und der andere Teil mit Lutensol AT50 hergestellt. In einem weiteren Schritt wurde das jeweilig gegenteilige Tensid (statt SDS Lutensol AT50 und umgekehrt) eingesetzt, um zu überprüfen, ob sich der zuvor beobachtete Effekt umkehren lässt. Anschließend wurde ein erst mit SDS stabilisierter Nanopartikel (BR01) mit verschiedenen Lutensol AT50-Anteilen (5%, 10%, 25%, 50%, 100%) redispergiert. Die effizienteste Aufnahme zeigte der unmodifizierte, mit SDS stabilisierte Nanopartikel BR01, die niedrigste der ebenfalls unmodifizierte, mit Lutensol AT50 stabilisierte Nanopartikel BR02. Eine steigende Konzentration des PEG-MA Mn=300 g•mol-1 hemmt die Aufnahme von mit SDS stabilisierten Partikeln konstant. Für PEG-MA Mn=2080 g•mol-1 konnte hingegen kein Einfluss nachgewiesen werden. Für die mit Lutensol AT50 stabilisierten Partikel konnte kein Einfluss von PEG-MA nachgewiesen werden. Daraus resultiert, dass der Einsatz von physikalisch adsorbiertem Lutensol AT50 die zelluläre Aufnahme effektiver hemmt als der Einsatz von kovalent gebundenem PEG-MA unterschiedlicher Kettenlänge.rnDer Einsatz von mit Biomakromolekülen hergestellten Nanokapseln, die mit zwei verschiedenen Tensiden (SDS und Lutensol AT50) stabilisiert wurden, wurde im Weiteren näher untersucht. Bei den mit SDS stabilisierten Kapseln erwiesen sich die mit ssDNA hergestellten Kapseln BN-54 und BN-55 als leicht toxisch für die HeLa-Zellen. Dagegen sind alle eingesetzten, mit Lutensol AT50 redispergierten Nanokapseln sowohl für HeLa-Zellen als auch für hMSCs zytotoxisch. Hier ist die toxische Wirkung auf das nicht-ionische Tensid Lutensol AT50 zurückzuführen. Eine zelluläre Aufnahme konnte für keine mit Biomakromolekülen hergestellten Nanokapsel nachgewiesen werden.rnDen Abschluss der Untersuchungen bildet die vergleichende Analyse der in dieser Arbeit mit dem Fluoreszenzfarbstoff PMI versehenen Partikeln hinsichtlich deren Aufnahme in HeLa-Zellen und hMSCs und deren zytotoxische Auswirkungen. In der vergleichenden Analyse werden die zuvor vorgestellten Ergebnisse für PMI-Partikeln nochmal im Kontext betrachtet. Dabei erwies sich sowohl für die HeLa-Zellen als auch für die hMSCs, dass die meisten Partikel eine geringe bis keine zelluläre Aufnahme zeigen. Eine gute Aufnahme konnte nur für wenige Nanopartikel (vor allem für die kristallinen Nanopartikel) verzeichnet werden. Eine Korrelation zwischen der Aufnahmeeffizienz und der Zytotoxizität konnte nicht nachgewiesen werden. rn

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Biological systems are complex and highly organized architectures governed by noncovalent interactions, which are responsible for molecular recognition, self-assembly, self-organization, adaptation and evolution processes. These systems provided the inspiration for the development of supramolecular chemistry, that aimed at the design of artificial multicomponent molecular assemblies, namely supramolecular systems, properly designed to perform different operations: each constituting unit performs a single act, whereas the entire supramolecular system is able to execute a more complex function, resulting from the cooperation of the constituting components. Supramolecular chemistry deals with the development of molecular systems able to mimic naturally occurring events, for example complexation and self-assembly through the establishment of noncovalent interactions. Moreover, the application of external stimuli, such as light, allows to perform these operations in a time- and space-controlled manner. These systems can interact with biological systems and, thus, can be applied for bioimaging, therapeutic and drug delivery purposes. In this work the study of biocompatible supramolecular species able to interact with light is presented. The first part deals with the photophysical, photochemical and electrochemical characterization of water-soluble blue emitting triazoloquinolinium and triazolopyridinium salts. Moreover, their interaction with DNA has been explored, in the perspective of developing water-soluble systems for bioimaging applications. In the second part, the effect exerted by the presence of azobenzene-bearing supramolecular species in liposomes, inserted both in the phospholipid bilayer and in the in the aqueous core of vesicles has been studied, in order to develop systems able to deliver small molecules and ions in a photocontrolled manner. Moreover, the versatility of azobenzene and its broad range of applications have been highlighted, since conjugated oligoazobenzene derivatives proved not to be adequate to be inserted in the phospholipid bilayer of liposomes, but their electrochemical properties made them interesting candidates as electron acceptor materials for photovoltaic applications.