163 resultados para Dendrimer, Polyphenylen, monodispers, polymeranalog, Verkapselung, Elektronentransfer, Abschirmung
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The main goals of this work were the design, synthesis, and characterization of new functional polyphenylene dendrimers. Polyphenylene dendrimers are highly branched, monodisperse macromolecules consisting exclusively of benzene rings. They can be obtained in high yield by a repetitive Diels-Alder cycloaddition - deprotection protocol. Their shape-persistent dendritic scaffold allows to obtain nanoparticles with functional groups in defined relative orientation. In the first chapter polyphenylene dendrimers with a pyrene core are presented. The focus of the investigations was upon the shielding efficiency of dendritic shells of different generations upon the pyrene-functionality in the core. The herein presented materials combine high quantum efficiency, good solubility and improved film forming properties making them possible candidates for several applications in electronic devices. The defined functionalization of polyphenylene dendrimers often requires a great synthetic effort, since for every desired function the appropriate building block has to be synthesized. To overcome these disadvantages, a new functionalization concept based upon benzophenone precursors has been developed. This new concept has successfully been applied for the functionalization of the dendritic core, the dendrimer shell, and the dendrimer surface. To investigate the accessibility and reactivity of the embedded groups, many functions of different size and nature were introduced. Moreover, suitable precursors for the synthesis of dendrimer entrapped species, trityl cations, trityl radicals, and ketyl radical anions, were obtained. The combination of the synthetic protocols of core- and surface-functionalization resulted in a new type of functional molecules, highly interesting from the point of electron transfer processes. A polyphenylene dendron was used to arrange a triphenylamine donor and a perylene acceptor moiety in a defined spatial distance and orientation. The in-depth photophysical investigation of a first model compound is reported. The herein presented functionalized dendrimers are highly interesting as well from the point of view of fundamental research (looking into the optic and electronic properties of such unique shape persistent structures) as from the point of view of their potential application as tailor-made nanomaterials in the field of optoelectronics.
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Polyphenylen-Dendrimere Alexander Josef Berresheim Zusammenfassung der Dissertation Die vorliegende Arbeit mit dem Thema 'Polyphenylen-Dendrimere' ist synthetisch orientiert und behandelt im Wesentlichen den Aufbau neuer Polyphenylen-Dendrimere durch die Anwendung wiederholter Diels-Alder- und Desilylierungs-Reaktionen. Diskutiert wird die Synthese der einzelnen Bausteine, die Synthese der verschiedenen Dendrimere sowie deren Charakterisierung. Außerdem wird die oxidative Cyclodehydrierung geeigneter Dendrimere zu polycyclischen aromatischen Kohlenwasserstoffen beschrieben. Die Synthese der Dendrimere beruht auf einer wiederholten Diels-Alder-Reaktion eines Tetraphenylcyclopentadienons mit einem aromatischen Acetylen. Durch die Variation des Kerns und des Verzweigungsbausteins werden die Wachstumsgrenzen, denen dieser Dendrimer-Typ unterliegt, demonstriert. Es wird gezeigt, dass ein Dendrimer, bei dessen Synthese 3,4-Di-[4-(tri-iso-propylsilylethinyl)phenyl]-2,5-diphenylcyclopentadienon als Verzweigungsbaustein verwendet wird, bis zur vierten Generation wachsen kann. Wird bei der Synthese 3,3',5,5'-Tetraethinylbiphenyl als Kern verwendet, entsteht ein Oligophenylen, das aus 302 Benzolringen besteht.Bei Dendrimeren, deren Synthese auf dem A4B-Baustein 2,3,4,5-Tetrakis-[4-(tri-iso-propylsilylethinyl)phenyl]cyclopentadienon beruht, hängt die höchste Generation, die monodispers hergestellt werden kann, von der Art des Kerns ab. Wird 1,4-Diethinylbenzol verwendet, lassen sich die ersten drei Generationen synthetisieren. Hat der Kern jedoch die Multiplizität 'vier' oder 'sechs' ist bereits bei der zweiten Generation das Ende des monodispersen Wachstums erreicht.Die Charakterisierung der Dendrimere zeigt, dass es sich um Nanopartikel mit einer stabilen Form handelt. Der Durchmesser wächst linear mit der Generation. In einem Fall war es möglich einen Einkristall zu erhalten, dessen Kristallstruktur ermittelt werden konnte. Hierbei zeigt sich, dass es zu einer hohen Einlagerung von Lösungsmitteln in der Festphase kommen kann. Dieses Ergebnis wurde auch durch gezielte Versuche zum Einlagerungsverhalten von Lösungsmitteln in der Festphase bestätigt.Der letzte Teil dieser Arbeit widmet sich der Möglichkeit, die Polyphenylen-Dendrimere zu großen zweidimensionalen Graphitausschnitten zu cyclodehydrieren. Es war generell möglich, polycyclische aromatische Kohlenwasserstoffe mit bis zu 306 Kohlenstoffatomen herzustellen. Es zeigt sich aber auch, dass mit zunehmender Größe des Aromaten, die Intensität der Nebenreaktionen zunimmt.
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Die vorliegende Arbeit befaßt sich mit der Synthese und Charakterisierung von Polyphenylen-Dendrimeren mit dem Ziel, diese monodispersen, wohldefinierten Makromoleküle durch die gezielte, ortsdefinierte Einführung von Funktionen als aussagekräftige Modellverbindungen für komplexe Biomoleküle zu etablieren. Insbesondere werden vier aufeinander aufbauende Themenbereiche behandelt:Zu Beginn stellt sich die Frage nach schnellen Synthesewegen zur Darstellung von Polyphenylen-Dendrimeren mit einem möglichst breiten Spektrum an unterschiedlichen funktionellen Gruppen. Weiterhin wird die Eignung von Polyphenylen-Dendrimeren sowohl als starre Nanoträger als auch im Hinblick auf die Effizienz einer räumlichen Abschirmung funktioneller Gruppen im Inneren des Dendrimers beleuchtet. Im Anschluß daran werden neue Polyphenylen-Dendrimere als synthetische Analoga für biologische Antennensysteme dargestellt. Hierbei liegt ein Hauptaugenmerk auf der Untersuchung von Energietransferprozessen in komplexen Multichromophorsystemen, wofür eine Serie von strukturell ähnlichen Dendrimeren unter systematischer Variation der Anzahl, der Ausrichtung und des Abstands der Chromophore sowie unterschiedlicher Chromophorsubstituenten synthetisiert und ihre photophysikalischen Eigenschaften unter Verwendung optischer Methoden als auch am Einzelmolekül zu studiert werden konnten. Im letzten Abschnitt wird die Verwendung von Perylenchromophoren und fluoreszenten Polyphenylen-Dendrimeren als Fluoreszenzmarker in biologischen Systemen thematisiert. Hierbei konnten verschiedene wasserlösliche, fluoreszente Polyphenylen-Dendrimere und Perylenchromophore dargestellt und ihre Eignung sowohl für die Visualisierung von Zellmembranen als auch für biologische Assays demonstriert werden.
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In dieser Arbeit wurde die Frage untersucht, inwieweit die divergente Synthese von starren dendritischen Gerüsten genutzt werden kann, um die Eigenschaften von Salzen und Ionen zu verändern und gezielt zu steuern. Motiviert wurde diese Fragestellung durch das Ziel, größere und dadurch schwächer koordinierende Anionen als die bereits in der Literatur beschriebenen Anionen zu erzeugen. In der Tat konnten durch das divergente Wachstum starrer Polyphenylen-Dendronen sterisch sehr anspruchsvolle Borat-Anionen von bislang unerreichter Größe im Nanometerbereich erzeugt werden. Durch die Größe ihrer hydrophoben Hülle und die damit einhergehende sterische Abschirmung der zentralen Ladung weisen starr dendronisierte Ionen eine deutlich verminderte Koordination zu Gegenionen auf. Die Koordinationkraft ließ sich sowohl durch eine stärkere Verzweigung der dendritischen Hülle als auch durch die Perfluorierung der Ionenoberfläche weiter herabsetzen. Schließlich konnten durch den Einbau lichtschaltbarer Funktionen in das starre Dendrimergerüst sogar Anionen mit schaltbarer, veränderlicher Größe und Koordinationskraft hergestellt werden. Darüber hinaus wurde gezeigt, wie sich Gegenionen in Salzen dendronisierter Ionen austauschen lassen, und es wurde eine neue Klasse von Aryl-Triazol-Dendrimeren entwickelt.
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Molecular modeling methodologies were applied to perform preliminary studies concerning the release of active agents from potentially antichagasic and antileishmanial dendrimer prodrugs. The dendrimer was designed having myo-inositol as a core, L-malic acid as a spacer group, and hydroxymethylnitrofurazone (NFOH), 3-hydroxyflavone or quercetin, as active compounds. Each dendrimer presented a particular behavior concerning to the following investigated properties: spatial hindrance, map of electrostatic potential (MEP), and the lowest unoccupied molecular orbital energy (E(LUMO)). Additionally, the findings suggested that the carbonyl group next to the active agent seems to be the most promising ester breaking point. (C) 2009 Elsevier B.V. All rights reserved.
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New organic/inorganic (O/I) hybrid assemblies based on Layered Double Hydroxide (LDH) with polyamide amine dendrimer (PAMAM, generation -0.5 and generation +0.5) were prepared by two different routes using either the direct coprecipitation at constant pH or the anion exchange procedure in double surfactant S(+)S(-) phases. The obtained materials were characterized by means of powder X-ray diffraction, thermal gravimetric analysis associated with mass spectrometry, and Fourier-transform infrared spectroscopy. X-ray powder diffraction pattern of the O/I LDH assembly exhibit characteristic profiles of LDH-based materials with basal spacing depending on the nature of the dendrimer. Indeed, for both synthetic procedures, interleaved PAMAM -0.5 gives rise to an interlayer space in agreement with a perpendicular molecular arrangement against the layer of the host structure. For PAMAM+0.5, considering its spherical dimension, a much smaller basal spacing was observed. This observation was interpreted as shrinkage of the molecule to accommodate the interlayer LDH gap, which was rendered possible by the bond angle twisting within PAMAM-0.5. FTIR spectra confirm the presence of both moieties inside both Zn(2)Al/PAMAM G-0.5 and Zn(2)Al/PAMAM G+0.5 assemblies. Finally, thermal analysis associated with mass spectrometry confirm this composition, and in situ temperature XRD data reveal that the highly constrained arrangement for the generation +0.5 is not accompanied by a gain in thermal structural stability; in fact, the assembly prepared from PAMAM -0.5 is more stable. Both O/I PAMAM LDH assemblies constitute well-defined materials which are candidate for catalytic applications.
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Ion imaging is a powerful methodology to assess fundamental biological processes in live cells. The limited efficiency of some ion-sensing probes and their fast leakage from cells are important restrictions to this approach. In this study, we present a novel strategy based on the use of dendrimer nanoparticles to obtain better intracellular retention of fluorescent probes and perform prolonged fluorescence imaging of intracellular ion dynamics. A new sodium-sensitive nanoprobe was generated by encapsulating a sodium dye in a PAMAM dendrimer nanocontainer. This nanoprobe is very stable and has high sodium sensitivity and selectivity. When loaded in neurons in live brain tissue, it homogenously fills the entire cell volume, including small processes, and stays for long durations, with no detectable alterations of cell functional properties. We demonstrate the suitability of this new sodium nanosensor for monitoring physiological sodium responses such as those occurring during neuronal activity.
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The design and synthesis of Lamellarin D conjugates with a nuclear localization signal peptide and a poly(ethylene glycol)-based dendrimer are described. Conjugates 1-4 were obtained in 8-84% overall yields from the corresponding protected Lamellarin D. Conjugates 1 and 4 are 1.4 to 3.3-fold more cytotoxic than the parent compound against three human tumor cell lines(MDA-MB-231 breast, A-549 lung, and HT-29 colon). Besides, conjugates 3, 4 showed a decrease in activity potency in BJ skin fibroblasts, a normal cell culture. Cellular internalization was analyzed and nuclear distribution pattern was observed for 4, which contains a nuclear localization signalling sequence.
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This work is devoted to the study of the dynamical and structural properties of dendrimers. Different approaches were used: analytical theory, computer simulation results and experimental NMR studies. The theory of the relaxation spectrum of dendrimer macromolecules was developed. Relaxation processes which are manifest in the local orientational mobility of dendrimer macromolecules were established and studied in detail. Theoretical results and conclusions were used for experimental studies of carbosilane dendimers.
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Poly(amidoamine) dendrimers were synthesized on cross-linked aminomethyl polystyrene. Palladium complexes of supported dendrimers prepared by ligand exchange method were reduced to dendrimernanoparticle conjugates supported on polystyrene resin. The supported nanoparticles were used as heterogeneous catalysts for the Suzuki coupling between aryl boronic acids and aryl halides. Various factors affecting the catalysts performance were studied. Higher generation dendrimers gave well-defined nanoparticles without agglomeration and these particles showed good catalytic performance
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The selective determination of alcohol molecules either in aqueous solutions or in vapor phase is of great importance for several technological areas. In the last years, a number of researchers have reported the fabrication of highly sensitive sensors for ethanol detection, based upon specific enzymatic reactions occurring at the surface of enzyme-containing electrodes. In this study, the enzyme alcohol dehydrogenase (ADH) was immobilized in a layer-by-layer fashion onto Au-interdigitated electrodes (IDEs), in conjunction with layers of PAMAM dendrimers. The immobilization process was followed in Teal time using quartz crystal microbalance (QCM), indicating that an average mass of 52.1 ng of ADH was adsorbed at each deposition step. Detection was carried out using a novel strategy entirely based upon electrical capacitance measurements, through which ethanol could be detected at concentrations of 1 part per million by volume (ppmv). (C) 2007 Elsevier B.V. All rights reserved.
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Low-frequency noise in an electrolyte-insulator- semiconductor (EIS) structure functionalized with multilayers of polyamidoamine (PAMAM) dendrimer and single-walled carbon nanotubes (SWNT) is studied. The noise spectral density exhibits 1/f(gamma) dependence with the power factor of gamma approximate to 0.8 and gamma = 0.8-1.8 for the bare and functionalized EIS sensor, respectively. The gate-voltage noise spectral density is practically independent of the pH value of the solution and increases with increasing gate voltage or gate-leakage current. It has been revealed that functionalization of an EIS structure with a PAMAM/SWNTs multilayer leads to an essential reduction of the 1/f noise. To interpret the noise behavior in bare and functionalized EIS devices, a gate-current noise model for capacitive EIS structures based on an equivalent flatband-voltage fluctuation concept has been developed.
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We describe the assembly of layer-by-layer films based on the poly(propylene imine) dendrimer (PPID) generation 3 and nickel tetrasulfonated phthalocyanine (NiTsPc) for application as chemically sensitive membranes in sepal alive extended-gate field effect transistor (SEGFET) pH sensors PPID/NiTsPc films wet e adsorbed on quartz, glass. indium tin oxide. or gold (Au)-covered glass substrates Multilayer formation was monitored via UV-vis absorption upon following the increment in the Q-band intensity (615 nm) of NiTsPc The nanostructured membranes were very stable in a pH range of 4-10 and displayed a good sensitivity toward H(+), ca 30 mV/pH for PPID/N(1)TsPc films deposited on Au-covered substrates For films deposited on ITO, the sensitivity was ca 52 4 mV/pH. close to the expected theoretical value for ton-sensitive membranes. The use of chemically stable PPID/NiTsPc films as gate membranes in SEGFETs, as introduced here, may represent an alternative for the fabrication of nanostructured, porous platforms for enzyme immobilization to be used in enzymatic biosensors.
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Tissue engineering is an important branch of regenerative medicine that uses cells, materials (scaffolds), and suitable biochemical and physicochemical factors to improve or replace specific biological functions. In particular, the control of cell behavior (namely, of cell adhesion, proliferation and differentiation) is a key aspect for the design of successful therapeutical approaches. In this study, poly(lactic-co-glycolic acid) (PLGA) fiber mats were prepared using the electrospinning technology (the fiber diameters were in the micrometer range). Furthermore, the electrospun fiber mats thus formed were functionalized using the layer-by- layer (LbL) technique with chitosan and alginate (natural and biodegradable polyelectrolytes having opposite charges) as a mean for the immobilization of pDNA/dendrimer complexes. The polyelectrolyte multilayer deposition was confirmed by fluorescence spectroscopy using fluorescent-labeled polyelectrolytes. The electrospun fiber mats coated with chitosan and alginate were successfully loaded with complexes of pDNA and poly(amidoamine) (PAMAM) dendrimers (generation 5) and were able of releasing them in a controlled manner along time. In addition, these mats supported the adhesion and proliferation of NIH 3T3 cells and of human mesenchymal stem cells (hMSCs) in their surface. Transfection experiments using a pDNA encoding for luciferase showed the ability of the electrospun fiber mats to efficiently serve as gene delivery systems. When a pDNA encoding for bone morphogenetic protein-2 (BMP-2) was used, the osteoblastic differentiation of hMSCs cultured on the surface of the mats was promoted. Taken together, the results revealed that merging the electrospinning technique with the LbL technique, can be a suitable methodology for the creation of biological active matrices for bone tissue engineering.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)