951 resultados para targeted drug
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Nanoparticles are often considered as efficient drug delivery vehicles for precisely dispensing the therapeutic payloads specifically to the diseased sites in the patient’s body, thereby minimizing the toxic side effects of the payloads on the healthy tissue. However, the fundamental physics that underlies the nanoparticles’ intrinsic interaction with the surrounding cells is inadequately elucidated. The ability of the nanoparticles to precisely control the release of its payloads externally (on-demand) without depending on the physiological conditions of the target sites has the potential to enable patient- and disease-specific nanomedicine, also known as Personalized NanoMedicine (PNM). In this dissertation, magneto-electric nanoparticles (MENs) were utilized for the first time to enable important functions, such as (i) field-controlled high-efficacy dissipation-free targeted drug delivery system and on-demand release at the sub-cellular level, (ii) non-invasive energy-efficient stimulation of deep brain tissue at body temperature, and (iii) a high-sensitivity contrasting agent to map the neuronal activity in the brain non-invasively. First, this dissertation specifically focuses on using MENs as energy-efficient and dissipation-free field-controlled nano-vehicle for targeted delivery and on-demand release of a anti-cancer Paclitaxel (Taxol) drug and a anti-HIV AZT 5’-triphosphate (AZTTP) drug from 30-nm MENs (CoFe2O4-BaTiO3) by applying low-energy DC and low-frequency (below 1000 Hz) AC fields to separate the functions of delivery and release, respectively. Second, this dissertation focuses on the use of MENs to non-invasively stimulate the deep brain neuronal activity via application of a low energy and low frequency external magnetic field to activate intrinsic electric dipoles at the cellular level through numerical simulations. Third, this dissertation describes the use of MENs to track the neuronal activities in the brain (non-invasively) using a magnetic resonance and a magnetic nanoparticle imaging by monitoring the changes in the magnetization of the MENs surrounding the neuronal tissue under different states. The potential therapeutic and diagnostic impact of this innovative and novel study is highly significant not only in HIV-AIDS, Cancer, Parkinson’s and Alzheimer’s disease but also in many CNS and other diseases, where the ability to remotely control targeted drug delivery/release, and diagnostics is the key.
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Dissertação apresentada na Faculdade de Ciências e Tecnologia da Universidade Nova de Lisboa para obtenção do grau de Mestre em Biotecnologia
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Polymeric nanoparticles (PNPs) have attracted considerable interest over the last few years due to their unique properties and behaviors provided by their small size. Such materials could be used in a wide range of applications such as diagnostics and drug delivery. Advantages of PNPs include controlled release, protection of drug molecules and its specific targeting, with concomitant increasing of the therapeutic index. In this work, novel sucrose and cholic acid based PNPs were prepared from different polymers, namely polyethylene glycol (PEG), poly(D,L-lactic-co-glycolic acid) (PLGA) and PLGA-co-PEG copolymer. In these PNP carriers, cholic acid will act as a drug incorporation site and the carbohydrate as targeting moiety. The uptake of nanoparticles into cells usually involves endocytotic processes, which depend primarily on their size and surface characteristics. These properties can be tuned by the nanoparticle preparation method. Therefore, the nanoprecipitation and the emulsion-solvent evaporation method were applied to prepare the PNPs. The influence of various parameters, such as concentration of the starting solution, evaporation method and solvent properties on the nanoparticle size, size distribution and morphology were studied. The PNPs were characterized by using atomic force microscopy (AFM), scanning electron microscopy (SEM) and dynamic light scattering (DLS) to assess their size distribution and morphology. The PNPs obtained by nanoprecipitation ranged in size between 90 nm and 130 nm with a very low polydispersity index (PDI < 0.3). On the other hand, the PNPs produced by the emulsion-solvent evaporation method revealed particle sizes around 300 nm with a high PDI value. More detailed information was found in AFM and SEM images, which demonstrated that all these PNPs were regularly spherical. ζ-potential measurements were satisfactory and evidenced the importance of sucrose moiety on the polymeric system, which was responsible for the obtained negative surface charge, providing colloidal stability. The results of this study show that sucrose and cholic acid based polymeric conjugates can be successfully used to prepare PNPs with tunable physicochemical characteristics. In addition, it provides novel information about the materials used and the methods applied. It is hoped that this work will be useful for the development of novel carbohydrate based nanoparticles for biomedical applications, specifically for targeted drug delivery.
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Nitric oxide (NO) plays a relevant role during cell death regulation in tumor cells. The overexpression of nitric oxide synthase type III (NOS-3) induces oxidative and nitrosative stress, p53 and cell death receptor expression and apoptosis in hepatoblastoma cells. S-nitrosylation of cell death receptor modulates apoptosis. Sorafenib is the unique recommended molecular-targeted drug for the treatment of patients with advanced hepatocellular carcinoma. The present study was addressed to elucidate the potential role of NO during Sorafenib-induced cell death in HepG2 cells. We determined the intra- and extracellular NO concentration, cell death receptor expression and their S-nitrosylation modifications, and apoptotic signaling in Sorafenib-treated HepG2 cells. The effect of NO donors on above parameters has also been determined. Sorafenib induced apoptosis in HepG2 cells. However, low concentration of the drug (10nM) increased cell death receptor expression, as well as caspase-8 and -9 activation, but without activation of downstream apoptotic markers. In contrast, Sorafenib (10µM) reduced upstream apoptotic parameters but increased caspase-3 activation and DNA fragmentation in HepG2 cells. The shift of cell death signaling pathway was associated with a reduction of S-nitrosylation of cell death receptors in Sorafenib-treated cells. The administration of NO donors increased S-nitrosylation of cell death receptors and overall induction of cell death markers in control and Sorafenib-treated cells. In conclusion, Sorafenib induced alteration of cell death receptor S-nitrosylation status which may have a relevant repercussion on cell death signaling in hepatoblastoma cells.
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BACKGROUND AND OBJECTIVE: Photodynamic therapy (PDT) affects vascular barrier function and thus increases vessel permeability. This phenomenon may be exploited to facilitate targeted drug delivery and may lead to a new clinical application of photodynamic therapy. Here, we investigate the role of leukocyte recruitment for PDT-induced vascular permeabilization. STUDY DESIGN/MATERIAL AND METHODS: Fluorescein isothiocyanate dextran (FITC-D, 2,000 kDa) was injected intravenously 120 minutes after focal PDT on striated muscle in nude mice bearing dorsal skinfold chambers (Visudyne® 800 µg/kg, fluence rate 300 mW/cm2 , light dose of 200 J/cm2). Leukocyte interaction with endothelial cells was inhibited by antibodies functionally blocking adhesion molecules ("MABS-PDT" group, n = 5); control animals had PDT but no antibody injection (group "PDT", n = 7). By intravital microscopy, we monitored leukocyte rolling and sticking in real-time before, 90 and 180 minutes after PDT. The extravasation of FITC-D from striated muscle vessels into the interstitial space was determined in vivo during 45 minutes to assess treatment-induced alterations of vascular permeability. RESULTS: PDT significantly increased the recruitment of leukocytes and enhanced the leakage of FITC-D. Neutralization of adhesion molecules before PDT suppressed the rolling of leukocytes along the venular endothelium and significantly reduced the extravasation of FITC-D as compared to control animals (156 ± 27 vs. 11 ± 2 (mean ± SEM, number of WBC/30 seconds mm vessel circumference; P < 0.05) at 90 minutes after PDT and 194 ± 21 vs. 14 ± 4 at 180 minutes after PDT). In contrast, leukocyte sticking was not downregulated by the antibody treatment. CONCLUSION: Leukocyte recruitment plays an essential role in the permeability-enhancing effect of PDT.
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Colorectal cancer (CRC) is a major cause of cancer mortality. Whereas some patients respond well to therapy, others do not, and thus more precise, individualized treatment strategies are needed. To that end, we analyzed gene expression profiles from 1,290 CRC tumors using consensus-based unsupervised clustering. The resultant clusters were then associated with therapeutic response data to the epidermal growth factor receptor-targeted drug cetuximab in 80 patients. The results of these studies define six clinically relevant CRC subtypes. Each subtype shares similarities to distinct cell types within the normal colon crypt and shows differing degrees of 'stemness' and Wnt signaling. Subtype-specific gene signatures are proposed to identify these subtypes. Three subtypes have markedly better disease-free survival (DFS) after surgical resection, suggesting these patients might be spared from the adverse effects of chemotherapy when they have localized disease. One of these three subtypes, identified by filamin A expression, does not respond to cetuximab but may respond to cMET receptor tyrosine kinase inhibitors in the metastatic setting. Two other subtypes, with poor and intermediate DFS, associate with improved response to the chemotherapy regimen FOLFIRI in adjuvant or metastatic settings. Development of clinically deployable assays for these subtypes and of subtype-specific therapies may contribute to more effective management of this challenging disease.
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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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Biokuvainformatiikan kehittäminen – mikroskopiasta ohjelmistoratkaisuihin – sovellusesimerkkinä α2β1-integriini Kun ihmisen genomi saatiin sekvensoitua vuonna 2003, biotieteiden päätehtäväksi tuli selvittää eri geenien tehtävät, ja erilaisista biokuvantamistekniikoista tuli keskeisiä tutkimusmenetelmiä. Teknologiset kehitysaskeleet johtivat erityisesti fluoresenssipohjaisten valomikroskopiatekniikoiden suosion räjähdysmäiseen kasvuun, mutta mikroskopian tuli muuntua kvalitatiivisesta tieteestä kvantitatiiviseksi. Tämä muutos synnytti uuden tieteenalan, biokuvainformatiikan, jonka on sanottu mahdollisesti mullistavan biotieteet. Tämä väitöskirja esittelee laajan, poikkitieteellisen työkokonaisuuden biokuvainformatiikan alalta. Väitöskirjan ensimmäinen tavoite oli kehittää protokollia elävien solujen neliulotteiseen konfokaalimikroskopiaan, joka oli yksi nopeimmin kasvavista biokuvantamismenetelmistä. Ihmisen kollageenireseptori α2β1-integriini, joka on tärkeä molekyyli monissa fysiologisissa ja patologisissa prosesseissa, oli sovellusesimerkkinä. Työssä saavutettiin selkeitä visualisointeja integriinien liikkeistä, yhteenkeräytymisestä ja solun sisään siirtymisestä, mutta työkaluja kuvainformaation kvantitatiiviseen analysointiin ei ollut. Väitöskirjan toiseksi tavoitteeksi tulikin tällaiseen analysointiin soveltuvan tietokoneohjelmiston kehittäminen. Samaan aikaan syntyi biokuvainformatiikka, ja kipeimmin uudella alalla kaivattiin erikoistuneita tietokoneohjelmistoja. Tämän väitöskirjatyön tärkeimmäksi tulokseksi muodostui näin ollen BioImageXD, uudenlainen avoimen lähdekoodin ohjelmisto moniulotteisten biokuvien visualisointiin, prosessointiin ja analysointiin. BioImageXD kasvoi yhdeksi alansa suurimmista ja monipuolisimmista. Se julkaistiin Nature Methods -lehden biokuvainformatiikkaa käsittelevässä erikoisnumerossa, ja siitä tuli tunnettu ja laajalti käytetty. Väitöskirjan kolmas tavoite oli soveltaa kehitettyjä menetelmiä johonkin käytännönläheisempään. Tehtiin keinotekoisia piidioksidinanopartikkeleita, joissa oli "osoitelappuina" α2β1-integriinin tunnistavia vasta-aineita. BioImageXD:n avulla osoitettiin, että nanopartikkeleilla on potentiaalia lääkkeiden täsmäohjaussovelluksissa. Tämän väitöskirjatyön yksi perimmäinen tavoite oli edistää uutta ja tuntematonta biokuvainformatiikan tieteenalaa, ja tämä tavoite saavutettiin erityisesti BioImageXD:n ja sen lukuisten julkaistujen sovellusten kautta. Väitöskirjatyöllä on merkittävää potentiaalia tulevaisuudessa, mutta biokuvainformatiikalla on vakavia haasteita. Ala on liian monimutkainen keskimääräisen biolääketieteen tutkijan hallittavaksi, ja alan keskeisin elementti, avoimen lähdekoodin ohjelmistokehitystyö, on aliarvostettu. Näihin seikkoihin tarvitaan useita parannuksia,
Influence of surface functionalization on the behavior of silica nanoparticles in biological systems
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Personalized nanomedicine has been shown to provide advantages over traditional clinical imaging, diagnosis, and conventional medical treatment. Using nanoparticles can enhance and clarify the clinical targeting and imaging, and lead them exactly to the place in the body that is the goal of treatment. At the same time, one can reduce the side effects that usually occur in the parts of the body that are not targets for treatment. Nanoparticles are of a size that can penetrate into cells. Their surface functionalization offers a way to increase their sensitivity when detecting target molecules. In addition, it increases the potential for flexibility in particle design, their therapeutic function, and variation possibilities in diagnostics. Mesoporous nanoparticles of amorphous silica have attractive physical and chemical characteristics such as particle morphology, controllable pore size, and high surface area and pore volume. Additionally, the surface functionalization of silica nanoparticles is relatively straightforward, which enables optimization of the interaction between the particles and the biological system. The main goal of this study was to prepare traceable and targetable silica nanoparticles for medical applications with a special focus on particle dispersion stability, biocompatibility, and targeting capabilities. Nanoparticle properties are highly particle-size dependent and a good dispersion stability is a prerequisite for active therapeutic and diagnostic agents. In the study it was shown that traceable streptavidin-conjugated silica nanoparticles which exhibit a good dispersibility could be obtained by the suitable choice of a proper surface functionalization route. Theranostic nanoparticles should exhibit sufficient hydrolytic stability to effectively carry the medicine to the target cells after which they should disintegrate and dissolve. Furthermore, the surface groups should stay at the particle surface until the particle has been internalized by the cell in order to optimize cell specificity. Model particles with fluorescently-labeled regions were tested in vitro using light microscopy and image processing technology, which allowed a detailed study of the disintegration and dissolution process. The study showed that nanoparticles degrade more slowly outside, as compared to inside the cell. The main advantage of theranostic agents is their successful targeting in vitro and in vivo. Non-porous nanoparticles using monoclonal antibodies as guiding ligands were tested in vitro in order to follow their targeting ability and internalization. In addition to the targeting that was found successful, a specific internalization route for the particles could be detected. In the last part of the study, the objective was to clarify the feasibility of traceable mesoporous silica nanoparticles, loaded with a hydrophobic cancer drug, being applied for targeted drug delivery in vitro and in vivo. Particles were provided with a small molecular targeting ligand. In the study a significantly higher therapeutic effect could be achieved with nanoparticles compared to free drug. The nanoparticles were biocompatible and stayed in the tumor for a longer time than a free medicine did, before being eliminated by renal excretion. Overall, the results showed that mesoporous silica nanoparticles are biocompatible, biodegradable drug carriers and that cell specificity can be achieved both in vitro and in vivo.
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Recent work exploring the use of block copolymer vesicles and tubules is reviewed. The stability and toughness of block copolymer vesicles are enhanced compared to those formed by low molar mass amphiphiles. Functionality can also readily be introduced through the polymer chemistry or by incorporating additional components (for example pore-forming membrane proteins). This design flexibility leads to numerous potential applications in encapsulation, in targeted drug delivery, templating of inorganic materials and many others.
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Chitosan is a natural biodegradable polymer with great potential for pharmaceutical applications due to its biocompatibility, high charge density , nontoxicity and mucoadhesion. Gel formation can be obtained by the interactions of chitosans with low molecular counterions such as polyphosphates, sulphates and crosslinking with glutaraldehyde. This gelling property of chitosan allows a wide range of applications such as coating of pharmaceuticals and food products, gel entrapment of biochemicals, whole cells, microorganisms and algae. One of its main applications is the synthesis of microspheres for coating of pharmaceuticals , magnetic particles an other substances. In such a way, we can build targeted drug delivery systems. In the present work, we applied the method of spraying and coagulation. The resulting microspheres, then, were characterized by optical microscopy
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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The physicochemical properties of nanoparticles make them suitable for biomedical applications. Due to their ‘straight-forward’ synthesis, their known biocompatibility, their strong optical properties, their ability for targeted drug delivery and their uptake potential into cells gold nanoparticles are highly interesting for biomedical applications. In particular, the therapy of brain diseases (neurodegenerative diseases, ischemic stroke) is a challenge for contemporary medicine and gold nanoparticles are currently being studied in the hope of improving drug delivery to the brain.rnIn this thesis three major conclusions from the generated data are emphasized.rn1. After improvement of the isolation protocol and culture conditions, the formation of a monolayer of porcine brain endothelial cells on transwell filters lead to a reproducible and tight in vitro monoculture which exhibited in vivo blood brain barrier (BBB) characteristics. The transport of nanoparticles across the barrier was studied using this model.rn2. Although gold nanoparticles are known to be relatively bioinert, contaminants of the nanoparticle synthesis (i.e. CTAB or sodium citrate) increased the cytotoxicity of gold nanoparticles, as shown by various publications. The results presented in this thesis demonstrate that contaminants of the nanoparticle synthesis such as sodium citrate increased the cytotoxicity of the gold nanoparticles in endothelial cells but in a more dramatic manner in epithelial cells. Considering the increased uptake of these particles by epithelial cells compared to endothelial cells it was demonstrated that the observed decrease of cell viability appeared to be related to the amount of internalized gold nanoparticles in combination with the presence of the contaminant.rn3. Systematically synthesized gold nanoparticles of different sizes with a variety of surface modifications (different chemical groups and net charges) were investigated for their uptake behaviour and functional impairment of endothelial cells, one of the major cell types making up the BBB. The targeting of these different nanoparticles to endothelial cells from different parts of the body was investigated in a comparative study of human microvascular dermal and cerebral endothelial cells. In these experiments it was demonstrated that different properties of the nanoparticles resulted in a variety of uptake patterns into cells. Positively charged gold nanoparticles were internalized in high amounts, while PEGylated nanoparticles were not taken up by both cell types. Differences in the uptake behavior were also demonstrated for neutrally charged particles of different sizes, coated with hydroxypropylamine or glucosamine. Endothelial cells of the brain specifically internalized 35nm neutrally charged hydroxypropylamine-coated gold nanoparticles in larger amounts compared to dermal microvascular endothelial cells, indicating a "targeting" for brain endothelial cells. Co-localization studies with flotillin-1 and flotillin-2 showed that the gold nanoparticles were internalized by endocytotic pathways. Furthermore, these nanoparticles exhibited transcytosis across the endothelial cell barrier in an in vitro BBB model generated with primary porcine brain endothelial cells (1.). In conclusion, gold nanoparticles with different sizes and surface characteristics showed different uptake patterns in dermal and cerebral endothelial cells. In addition, gold nanoparticles with a specific size and defined surface modification were able to cross the blood-brain barrier in a porcine in vitro model and may thus be useful for controlled delivery of drugs to the brain.
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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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Microparticles containing large payloads of two anti-tuberculosis (TB) drugs were prepared and evaluated for suitability as a dry powder inhalation targeting alveolar macrophages. A solution containing one part each of isoniazid and rifabutin, plus two parts poly(lactic acid) (L-PLA) was spraydried. Drug content and in vitro release were assayed by HPLC, and DSC was used to elucidate release behaviour. Particle size was measured by laser scattering and aerosol characteristics by cascade impaction using a Lovelace impactor. Microparticles were administered to mice using an inhouse inhalation apparatus or by intra-tracheal instillation. Drugs in solution were administered orally and by intra-cardiac injection. Flow cytometry and HPLC were used to investigate the specificity and magnitude of targeting macrophages. Microparticles having drug content -50% (w/w), particle size -5 m and satisfactory aerosol characteristics (median mass aerodynamic diameter, MMAD = 3.57 m; geometric standard deviation, GSD = 1.41m; fine particle fraction, FPF <4.6"", = 78.91:1: 8.4%) were obtained in yields of >60%. About 70% of the payload was released in vitro in 10 days. Microparticles targeted macrophages and not epithelial cells on inhalation. Drug concentrations in macrophages were -20 times higher when microparticles were inhaled rather than drug solutions administered. Microparticles were thus deemed suitable for enhanced targeted drug delivery to lung macrophages.