905 resultados para enzyme functionalized nanoparticles


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Nano(bio)science and nano(bio)technology play a growing and tremendous interest both on academic and industrial aspects. They are undergoing rapid developments on many fronts such as genomics, proteomics, system biology, and medical applications. However, the lack of characterization tools for nano(bio)systems is currently considered as a major limiting factor to the final establishment of nano(bio)technologies. Flow Field-Flow Fractionation (FlFFF) is a separation technique that is definitely emerging in the bioanalytical field, and the number of applications on nano(bio)analytes such as high molar-mass proteins and protein complexes, sub-cellular units, viruses, and functionalized nanoparticles is constantly increasing. This can be ascribed to the intrinsic advantages of FlFFF for the separation of nano(bio)analytes. FlFFF is ideally suited to separate particles over a broad size range (1 nm-1 μm) according to their hydrodynamic radius (rh). The fractionation is carried out in an empty channel by a flow stream of a mobile phase of any composition. For these reasons, fractionation is developed without surface interaction of the analyte with packing or gel media, and there is no stationary phase able to induce mechanical or shear stress on nanosized analytes, which are for these reasons kept in their native state. Characterization of nano(bio)analytes is made possible after fractionation by interfacing the FlFFF system with detection techniques for morphological, optical or mass characterization. For instance, FlFFF coupling with multi-angle light scattering (MALS) detection allows for absolute molecular weight and size determination, and mass spectrometry has made FlFFF enter the field of proteomics. Potentialities of FlFFF couplings with multi-detection systems are discussed in the first section of this dissertation. The second and the third sections are dedicated to new methods that have been developed for the analysis and characterization of different samples of interest in the fields of diagnostics, pharmaceutics, and nanomedicine. The second section focuses on biological samples such as protein complexes and protein aggregates. In particular it focuses on FlFFF methods developed to give new insights into: a) chemical composition and morphological features of blood serum lipoprotein classes, b) time-dependent aggregation pattern of the amyloid protein Aβ1-42, and c) aggregation state of antibody therapeutics in their formulation buffers. The third section is dedicated to the analysis and characterization of structured nanoparticles designed for nanomedicine applications. The discussed results indicate that FlFFF with on-line MALS and fluorescence detection (FD) may become the unparallel methodology for the analysis and characterization of new, structured, fluorescent nanomaterials.

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Nanopartikuläre Wirkstofftransportsysteme besitzen ein großes Potential für therapeutische Anwendungen. In der vorliegenden Arbeit wurden verschiedene grundlegende Aspekte, die für das erweiterte biologische Verständnis und die Entwicklung weiterer zielgerichteter Strategien zur Pharmakotherapie mit Nanopartikeln und –kapseln notwendig sind, näher untersucht. Experimente zur zellulären Aufnahmefähigkeit (in vitro und ex vivo) wurden mit verschiedenen Nanopartikeln und –kapseln aus diversen Monomeren und biokompatiblen Makromolekülen in immortalisierten Zellkulturlinien, humanen mesenchymalen Stammzellen und Leukozyten durchgeführt und durchflusszytometrisch sowie mittels konfokaler Laser-Raster-Mikroskopie analysiert. Die Einflüsse der Oberflächenfunktionalisierungen der nanopartikulären Systeme, deren toxikologische Effekte sowie der Einfluss von adsorbiertem bovinem Serumalbumin auf funktionalisierten Polystyrol-Nanopartikeln wurden in Bezug auf die zelluläre Aufnahme untersucht.Um die multiplen Wechselwirkungen der Nanopartikel mit Bestandteilen des humanen peripheren Vollblutes zu untersuchen, wurde erfolgreich ein durchflusszytometrisches Analyseverfahren in antikoaguliertem peripherem Vollblut (ex vivo) entwickelt. Es konnte nachgewiesen werden, dass der Einfluss von Calcium-komplexierenden Antikoagulanzien zu einer Verringerung und nicht Li-Heparin zu einer Verstärkung der zellulären Aufnahme von funktionalisierten Polystyrol-Nanopartikeln in diversen Leukozyten führt.Für Folsäure-gekoppelte Hydroxyethylstärke-Nanokapseln (Synthese Frau Dr. Grit Baier) konnte ein größenabhängiger selektiver, Folatrezeptor α vermittelter, zellulärer Aufnahmeweg in HeLa-Zellen nachgewiesen werden.Hydrolysierbare, nicht zytotoxische Polyester-Nanopartikel aus Poly(5,6-Benzo-2-methylen-1,3-dioxepan) (Synthese Herr Dr. Jörg Max Siebert) mit eingebettetem Paclitaxel zeigten in HeLa-Zellen eine vergleichbare pharmakologische Wirkung wie kommerziell erhältliche Paclitaxel-Formulierungen.Die in dieser Arbeit eingesetzten Nanopartikel und Nanokapseln besitzen ein vielfältiges Potential als Wirkstofftransportsysteme. Es zeigte sich, dass Unterschiede bei der Größe, der Größenverteilung, des Polymers sowie der Oberflächenfunktionalisierung der Nanopartikel bedeutende Unterschiede der Zellaufnahme in diversen Zellkulturlinien (in vitro) und Leukozyten in peripherem Vollblut (ex vivo) zur Folge haben.

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In dieser Arbeit wurde zunächst ein humanisiertes Mausmodell entwickelt für die Analyse von humanen DCs in vivo. Darüber hinaus wurden erste Versuche mit Nanopartikelbeladenen DCs durchgeführt, mit der Intention, durch diese Kombination humane DCs zu untersuchen. Es wurden immunsupprimierte NOD/LtSz-scid IL2R (NSG) Mäuse verwendet und mit humanen CD34+ PBSCs transplantiert. Es wurden insgesamt 14 Modelle getestet, mit einer durchschnittlichen Humanisierungsrate von 76 %. In allen Modellen konnten ab Woche sechs nach Transplantation humane CD45+ Zellen sowie humane Bund NK-Zellen und CD14+ Monozyten gefunden werden. Darüber hinaus waren myeloide DC-Vorläuferzellen, konventionelle HLA DR CD11c DCs (cDCs) und plasmazytoide DCs (pDCs) vorhanden. Humane T-Zellen konnten nicht vor Woche 18 nach Transplantation beobachtet werden. Neben der Rekonstitution humaner DCs in peripheren Organen, wurde ebenfalls nach gewebsständigen DCs, insbesondere den Langerhans Zellen (LCs) der Epidermis geschaut. Waren humane LC vorhanden, konnten diese ab Woche zwölf nach Transplantation in der murinen Epidermis detektiert werden. Diese waren konstant bis in Woche 30 nach Transplantation nachweisbar. In Hinblick auf die Etablierung der DCs in diesem humanisierten Mausmodells wurden verschiedene Einflussgrößen getestet. IL-7 führte zu keiner veränderten Hämatopoese, wohingegen Flt3L zu einer Zunahme von CD14+ Monozyten und cDCs führte. Darüber hinaus konnte eine drastische Abnahmernhumaner B-Zellen beobachtet werden. Es zeigte sich, dass der Zeitpunkt der Flt3LrnApplikation einen entscheidenen Faktor für den Effekt von Flt3L auf die Rekonstitution humaner Zellen darstellt. Für die in dieser Arbeit durchgeführten funktionellen in vivo Studien, wurden humanisierten Mäusen alloreaktive CD8+ T-Zellen appliziert. Somit sollte die Funktionalität der rekonstituierten humanen APCs getestet werden. Es wurde deutlich, dass Monozyten und DCs ihre Funktionalität erst ab Woche 14 nach Transplantation zu entwickeln schienen,rnwohingegen B-Zellen bereits zu früheren Zeitpunkten als Zielzellen für die alloreaktiven T-Zellen dienten. Dies wurde durch den Rückgang der jeweiligen Zellen nach Applikation der T-Zellen sichtbar. Zu erwähnen ist, dass das Anwachsen einer humanen Hämatopoese stark spenderabhängig ist und somit keine allgemeingültigen Aussagen hinsichtlich der in vivo Funktion getroffen werden können. Um im Gewebe verbliebende APCs zu manipulieren gibt es verschiedene Möglichkeiten. Im Rahmen dieser Arbeit wurden auf Polystyren-basierende Nanopartikel getestet. Die verwendeten Partikel hatten eine Größe von 80 bis 160 nm und waren unfunktionalisiert oder mit Amino- bzw. Carboxy-Gruppen versehen. Zusätzlich wurden die Partikel mit BODIPY (Durchflusszytometrie und kLSM-Messungen), einem Infrarotnahem Farbstoff IR 780 (BFI-Messungen) und Platin (in vivo Messungen) beladen. Der Carboxy-funktionalisierte Partikel zeigte den geringsten Einfluss auf die Vitalität von humanen DCs, wohingegen der Amino-funktionalisierte Partikel bei steigender Konzentration toxisch wirkte. Bei unfunktionalisierten Partikeln stieg die Toxizität bei zunehmender Konzentration. Hinsichtlich der Expression diverser DC spezifischer Oberflächenmoleküle nach Beladung mit Nanopartikeln zeigte sich, dass allein der unfunktionalisierte, mit Lutensol AT50 hergestellte Partikel zu einer leichten Hochregulation von MHC-Klasse-II Molekülen führte. Die Expression von CD86 wurde im Gegenzug nur durch die Beladung mit den Amino-, bzw. Carboxy funktionalisierten Partikeln und dem unfunktionalisierten, mit SDS hergestellten Partikel leicht gesteigert. Trotz der teilweise leicht veränderten Expression von Oberflächenmarkern, konnte mit Hilfe von IFN-g ELISpots keine Beeinflussungrnder Funktion als APCs von Nanopartikel-beladenen DCs beobachtet werden. In den in vivo Untersuchungen zeigten alle vier Partikel eine konstante Zirkulation imrnOrganismus und konnten bis 96 h nach Applikation nachgewiesen werden. Alle Partikel konnten primär in der Leber detektiert werden, wobei der unfunktionalisierte, mit Lutensol AT50 hergestelle Partikel das weiteste Verbreitungsmuster zeigte. Erste Versuche im humanisierten Mausmodell zeigten keine Beeinflussung der Verteilung und Kinetik von Nanopartikeln durch die humane Hämatopoese. Mit dem in dieser Arbeit etablierten humanisierten Mausmodell ist es möglich, die Entwicklung, Differenzierung, Aktivierung und Funktionalität humaner DCs in vivo zu untersuchen. Darüber hinaus kann das gezielte Adressieren von DCs in vivo analysiert werden, was sowohl die Möglichkeit der Manipulation von DCs zur Vermeidung einer akuten GvHD bietet als auch Verwendung in anderen DC-vermittelten Therapien (z.B.Vakzinationsstudien) findet.

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Introduction: Gene therapy continues to grow as an important area of research, primarily because of its potential in the treatment of disease. One significant area where there is a need for better understanding is in improving the efficiency of oligonucleotide delivery to the cell and indeed, following delivery, the characterization of the effects on the cell. Methods: In this report, we compare different transfection reagents as delivery vehicles for gold nanoparticles functionalized with DNA oligonucleotides, and quantify their relative transfection efficiencies. The inhibitory properties of small interfering RNA (siRNA), single-stranded RNA (ssRNA) and single-stranded DNA (ssDNA) sequences targeted to human metallothionein hMT-IIa are also quantified in HeLa cells. Techniques used in this study include fluorescence and confocal microscopy, qPCR and Western analysis. Findings: We show that the use of transfection reagents does significantly increase nanoparticle transfection efficiencies. Furthermore, siRNA, ssRNA and ssDNA sequences all have comparable inhibitory properties to ssDNA sequences immobilized onto gold nanoparticles. We also show that functionalized gold nanoparticles can co-localize with autophagosomes and illustrate other factors that can affect data collection and interpretation when performing studies with functionalized nanoparticles. Conclusions: The desired outcome for biological knockdown studies is the efficient reduction of a specific target; which we demonstrate by using ssDNA inhibitory sequences targeted to human metallothionein IIa gene transcripts that result in the knockdown of both the mRNA transcript and the target protein. © 2014 Jiwaji et al.

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Knowledge of cell electronics has led to their integration to medicine either by physically interfacing electronic devices with biological systems or by using electronics for both detection and characterization of biological materials. In this dissertation, an electrical impedance sensor (EIS) was used to measure the electrode surface impedance changes from cell samples of human and environmental toxicity of nanoscale materials in 2D and 3D cell culture models. The impedimetric response of human lung fibroblasts and rainbow trout gill epithelial cells when exposed to various nanomaterials was tested to determine their kinetic effects towards the cells and to demonstrate the biosensor's ability to monitor nanotoxicity in real-time. Further, the EIS allowed rapid, real-time and multi-sample analysis creating a versatile, noninvasive tool that is able to provide quantitative information with respect to alteration in cellular function. We then extended the application of the unique capabilities of the EIS to do real-time analysis of cancer cell response to externally applied alternating electric fields at different intermediate frequencies and low-intensity. Decreases in the growth profiles of the ovarian and breast cancer cells were observed with the application of 200 and 100 kHz, respectively, indicating specific inhibitory effects on dividing cells in culture in contrast to the non-cancerous HUVECs and mammary epithelial cells. We then sought to enhance the effects of the electric field by altering the cancer cell's electronegative membrane properties with HER2 antibody functionalized nanoparticles. An Annexin V/EthD-III assay and zeta potential were performed to determine the cell death mechanism indicating apoptosis and a decrease in zeta potential with the incorporation of the nanoparticles. With more negatively charged HER2-AuNPs attached to the cancer cell membrane, the decrease in membrane potential would thus leave the cells more vulnerable to the detrimental effects of the applied electric field due to the decrease in surface charge. Therefore, by altering the cell membrane potential, one could possibly control the fate of the cell. This whole cell-based biosensor will enhance our understanding of the responsiveness of cancer cells to electric field therapy and demonstrate potential therapeutic opportunities for electric field therapy in the treatment of cancer.

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Knowledge of cell electronics has led to their integration to medicine either by physically interfacing electronic devices with biological systems or by using electronics for both detection and characterization of biological materials. In this dissertation, an electrical impedance sensor (EIS) was used to measure the electrode surface impedance changes from cell samples of human and environmental toxicity of nanoscale materials in 2D and 3D cell culture models. The impedimetric response of human lung fibroblasts and rainbow trout gill epithelial cells when exposed to various nanomaterials was tested to determine their kinetic effects towards the cells and to demonstrate the biosensor’s ability to monitor nanotoxicity in real-time. Further, the EIS allowed rapid, real-time and multi-sample analysis creating a versatile, noninvasive tool that is able to provide quantitative information with respect to alteration in cellular function. We then extended the application of the unique capabilities of the EIS to do real-time analysis of cancer cell response to externally applied alternating electric fields at different intermediate frequencies and low-intensity. Decreases in the growth profiles of the ovarian and breast cancer cells were observed with the application of 200 and 100 kHz, respectively, indicating specific inhibitory effects on dividing cells in culture in contrast to the non-cancerous HUVECs and mammary epithelial cells. We then sought to enhance the effects of the electric field by altering the cancer cell’s electronegative membrane properties with HER2 antibody functionalized nanoparticles. An Annexin V/EthD-III assay and zeta potential were performed to determine the cell death mechanism indicating apoptosis and a decrease in zeta potential with the incorporation of the nanoparticles. With more negatively charged HER2-AuNPs attached to the cancer cell membrane, the decrease in membrane potential would thus leave the cells more vulnerable to the detrimental effects of the applied electric field due to the decrease in surface charge. Therefore, by altering the cell membrane potential, one could possibly control the fate of the cell. This whole cell-based biosensor will enhance our understanding of the responsiveness of cancer cells to electric field therapy and demonstrate potential therapeutic opportunities for electric field therapy in the treatment of cancer.

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Sensitive detection of pathogens is critical to ensure the safety of food supplies and to prevent bacterial disease infection and outbreak at the first onset. While conventional techniques such as cell culture, ELISA, PCR, etc. have been used as the predominant detection workhorses, they are however limited by either time-consuming procedure, complicated sample pre-treatment, expensive analysis and operation, or inability to be implemented at point-of-care testing. Here, we present our recently developed assay exploiting enzyme-induced aggregation of plasmonic gold nanoparticles (AuNPs) for label-free and ultrasensitive detection of bacterial DNA. In the experiments, AuNPs are first functionalized with specific, single-stranded RNA probes so that they exhibit high stability in solution even under high electrolytic condition thus exhibiting red color. When bacterial DNA is present in a sample, a DNA-RNA heteroduplex will be formed and subsequently prone to the RNase H cleavage on the RNA probe, allowing the DNA to liberate and hybridize with another RNA strand. This continuously happens until all of the RNA strands are cleaved, leaving the nanoparticles ‘unprotected’. The addition of NaCl will cause the ‘unprotected’ nanoparticles to aggregate, initiating a colour change from red to blue. The reaction is performed in a multi-well plate format, and the distinct colour signal can be discriminated by naked eye or simple optical spectroscopy. As a result, bacterial DNA as low as pM could be unambiguously detected, suggesting that the enzyme-induced aggregation of AuNPs assay is very easy to perform and sensitive, it will significantly benefit to development of fast and ultrasensitive methods that can be used for disease detection and diagnosis.

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Thesis for the master degree in Structural and Functional Biochemistry

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Water-dispersible gold nanoparticles functionalized with paramagnetic gadolinium have been fully characterized, and the NMRD profiles show very high relaxivities up to 1.5 T. Characterization using TEM images and dynamic light scattering indicate a particle size distribution from 2 to 15 nm. The gold cores of the nanoparticles do not contribute significantly to the overall magnetic moment.

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Superparamagnetic iron oxide nanoparticles (SPIONs) are in clinical use for disease detection by MRI. A major advancement would be to link therapeutic drugs to SPIONs in order to achieve targeted drug delivery combined with detection. In the present work, we studied the possibility of developing a versatile synthesis protocol to hierarchically construct drug-functionalized-SPIONs as potential anti-cancer agents. Our model biocompatible SPIONs consisted of an iron oxide core (9-10 nm diameter) coated with polyvinylalcohols (PVA/aminoPVA), which can be internalized by cancer cells, depending on the positive charges at their surface. To develop drug-functionalized-aminoPVA-SPIONs as vectors for drug delivery, we first designed and synthesized bifunctional linkers of varied length and chemical composition to which the anti-cancer drugs 5-fluorouridine or doxorubicin were attached as biologically labile esters or peptides, respectively. These functionalized linkers were in turn coupled to aminoPVA by amide linkages before preparing the drug-functionalized-SPIONs that were characterized and evaluated as anti-cancer agents using human melanoma cells in culture. The 5-fluorouridine-SPIONs with an optimized ester linker were taken up by cells and proved to be efficient anti-tumor agents. While the doxorubicin-SPIONs linked with a Gly-Phe-Leu-Gly tetrapeptide were cleaved by lysosomal enzymes, they exhibited poor uptake by human melanoma cells in culture.

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Drug-nanoparticle conjugates: The anticancer drug camptothecin (CPT) was covalently linked at the surface of ultrasmall superparamagnetic iron oxide nanoparticles (USPIOs) via a linker, allowing drug release by cellular esterases. Nanoparticles were hierarchically built to achieve magnetically-enhanced drug delivery to human cancer cells and antiproliferative activity.The linking of therapeutic drugs to ultrasmall superparamagnetic iron oxide nanoparticles (USPIOs) allowing intracellular release of the active drug via cell-specific mechanisms would achieve tumor-selective magnetically-enhanced drug delivery. To validate this concept, we covalently attached the anticancer drug camptothecin (CPT) to biocompatible USPIOs (iron oxide core, 9-10 nm; hydrodynamic diameter, 52 nm) coated with polyvinylalcohol/polyvinylamine (PVA/aminoPVA). A bifunctional, end-differentiated dicarboxylic acid linker allowed the attachment of CPT to the aminoPVA as a biologically labile ester substrate for cellular esterases at one end, and as an amide at the other end. These CPT-USPIO conjugates exhibited antiproliferative activity in vitro against human melanoma cells. The intracellular localization of CPT-USPIOs was confirmed by transmission electron microscopy (iron oxide core), suggesting localization in lipid vesicles, and by fluorescence microscopy (CPT). An external static magnetic field applied during exposure increased melanoma cell uptake of the CPT-USPIOs.

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The present study investigated the carboxylation of silver nanoparticles (AgNPs) by 1:3 nitric acid-sulfuric acid mixtures for immobilizing Aspergillus oryzae β-galactosidase. Carboxylated AgNPs retained 93% enzyme upon immobilization and the enzyme did not leach out appreciably from the modified nanosupport in the presence of 100 mmol L-1 NaCl. Atomic force micrograph revealed the binding of β-galactosidase on the modified AgNPs. The optimal pH for soluble and carboxylated AgNPs adsorbed β-galactosidase (IβG) was observed at pH 4.5 while the optimal operating temperature was broadened from 50 ºC to 60 ºC for IβG. Michaelis constant, Km was increased two and a half fold for IβG while Vmax decreases slightly as compared to soluble enzyme. β-galactosidase immobilized on surface functionalized AgNPs retained 70% biocatalytic activity even at 4% galactose concentration as compared to enzyme in solution. Our study showed that IβG produces greater amount of galacto-oligosaccharides at higher temperatures (50 ºC and 60 ºC) from 0.1 mol L-1 lactose solution at pH 4.5 as compared to previous reports.

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Les nanoparticules polymériques biodégradable (NPs) sont apparues ces dernières années comme des systèmes prometteurs pour le ciblage et la libération contrôlée de médicaments. La première partie de cette étude visait à développer des NPs biodégradables préparées à partir de copolymères fonctionnalisés de l’acide lactique (poly (D,L)lactide ou PLA). Les polymères ont été étudiés comme systèmes de libération de médicaments dans le but d'améliorer les performances des NPs de PLA conventionnelles. L'effet de la fonctionnalisation du PLA par insertion de groupements chimiques dans la chaîne du polymère sur les propriétés physico-chimiques des NPs a été étudié. En outre, l'effet de l'architecture du polymère (mode d'organisation des chaînes de polymère dans le copolymère obtenu) sur divers aspects de l’administration de médicament a également été étudié. Pour atteindre ces objectifs, divers copolymères à base de PLA ont été synthétisés. Plus précisément il s’agit de 1) copolymères du poly (éthylène glycol) (PEG) greffées sur la chaîne de PLA à 2.5% et 7% mol. / mol. de monomères d'acide lactique (PEG2.5%-g-PLA et PEG7%-g-PLA, respectivement), 2) des groupements d’acide palmitique greffés sur le squelette de PLA à une densité de greffage de 2,5% (palmitique acid2.5%-g-PLA), 3) de copolymère « multibloc » de PLA et de PEG, (PLA-PEG-PLA)n. Dans la deuxième partie, l'effet des différentes densités de greffage sur les propriétés des NPs de PEG-g-PLA (propriétés physico-chimiques et biologiques) a été étudié pour déterminer la densité optimale de greffage PEG nécessaire pour développer la furtivité (« long circulating NPs »). Enfin, les copolymères de PLA fonctionnalisé avec du PEG ayant montré les résultats les plus satisfaisants en regard des divers aspects d’administration de médicaments, (tels que taille et de distribution de taille, charge de surface, chargement de drogue, libération contrôlée de médicaments) ont été sélectionnés pour l'encapsulation de l'itraconazole (ITZ). Le but est dans ce cas d’améliorer sa solubilité dans l'eau, sa biodisponibilité et donc son activité antifongique. Les NPs ont d'abord été préparées à partir de copolymères fonctionnalisés de PLA, puis ensuite analysés pour leurs paramètres physico-chimiques majeurs tels que l'efficacité d'encapsulation, la taille et distribution de taille, la charge de surface, les propriétés thermiques, la chimie de surface, le pourcentage de poly (alcool vinylique) (PVA) adsorbé à la surface, et le profil de libération de médicament. L'analyse de la chimie de surface par la spectroscopie de photoélectrons rayon X (XPS) et la microscopie à force atomique (AFM) ont été utilisés pour étudier l'organisation des chaînes de copolymère dans la formulation des NPs. De manière générale, les copolymères de PLA fonctionnalisés avec le PEG ont montré une amélioration du comportement de libération de médicaments en termes de taille et distribution de taille étroite, d’amélioration de l'efficacité de chargement, de diminution de l'adsorption des protéines plasmatiques sur leurs surfaces, de diminution de l’internalisation par les cellules de type macrophages, et enfin une meilleure activité antifongique des NPs chargées avec ITZ. En ce qui concerne l'analyse de la chimie de surface, l'imagerie de phase en AFM et les résultats de l’XPS ont montré la possibilité de la présence de davantage de chaînes de PEG à la surface des NPs faites de PEG-g-PLA que de NPS faites à partie de (PLA-PEG-PLA)n. Nos résultats démontrent que les propriétés des NPs peuvent être modifiées à la fois par le choix approprié de la composition en polymère mais aussi par l'architecture de ceux-ci. Les résultats suggèrent également que les copolymères de PEG-g-PLA pourraient être utilisés efficacement pour préparer des transporteurs nanométriques améliorant les propriétés de certains médicaments,notamment la solubilité, la stabilité et la biodisponibilité.

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A new, healable, supramolecular nanocomposite material has been developed and evaluated. The material comprises a blend of three components: a pyrene-functionalized polyamide, a polydiimide and pyrenefunctionalized gold nanoparticles (P-AuNPs). The polymeric components interact by forming well-defined p–p stacked complexes between p-electron rich pyrenyl residues and p-electron deficient polydiimide residues. Solution studies in the mixed solvent chloroform–hexafluoroisopropanol (6 : 1, v/v) show that mixing the three components (each of which is soluble in isolation), results in the precipitation of a supramolecular, polymer nanocomposite network. The precipitate thus formed can be re-dissolved on heating, with the thermoreversible dissolution/precipitation procedure repeatable over at least 5 cycles. Robust, self-supporting composite films containing up to 15 wt% P-AuNPs could be cast from 2,2,2- trichloroethanol. Addition of as little as 1.25 wt% P-AuNPs resulted in significantly enhanced mechanical properties compared to the supramolecular blend without nanoparticles. The nanocomposites showed a linear increase in both tensile moduli and ultimate tensile strength with increasing P-AuNP content. All compositions up to 10 wt% P-AuNPs exhibited essentially quantitative healing efficiencies. Control experiments on an analogous nanocomposite material containing dodecylamine-functionalized AuNPs (5 wt%) exhibited a tensile modulus approximately half that of the corresponding nanocomposite that incorporated 5 wt% pyrene functionalized-AuNPs, clearly demonstrating the importance of the designed interactions between the gold filler and the supramolecular polymer matrix.

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Neocuproine has been covalently bound to silica-coated maghemite(c-Fe2O3) magnetic nanoparticles (MNPs) by a phenyl ether linkage. The resulting MNPs are able to remove Cu(II) from 12 ppm aqueous solution with an extraction efficiency of up to 99% at pH 2.