722 resultados para biocompatibility
Resumo:
Los nanomateriales han adquirido recientemente un gran interés debido a la gran variedad de aplicaciones que pueden llegar a tener en el ámbito de la biomedicina. Este trabajo recoge las posibilidades tanto diagnósticas como terapéuticas que presentan dos modalidades de nanomateriales: nanopartículas de óxido de hierro y nanopartículas de oro. Para ello, en una primera aproximación se ha llevado a cabo la caracterización de las nanopartículas desde el punto de vista de la biocompatibilidad asociada a su tamaño y al tiempo de contacto o circulación en células y tejidos, ensayada tanto in vitro como in vivo así como la cinética de acumulación de dichas nanopartículas en el organismo vivo. Posteriormente se ha realizado la biofuncionalización de los dos tipos de nanopartículas para reconocer dianas moleculares específicas y poder ser utilizadas en el futuro en dos aplicaciones biomédicas diferentes: diagnóstico de enfermedad de Alzheimer mediante imagen de resonancia magnética y destrucción selectiva de células tumorales mediante hipertermia óptica. ABSTRACT Nanomaterials have recently gained a great interest due to the variety of applications that can have in the field of biomedicine. This work covers both diagnostic and therapeutic possibilities that present two types of nanomaterials: iron oxide nanoparticles and gold nanoparticles. Therefore, in a first approximation it has performed the characterizing of nanoparticles from the standpoint of biocompatibility associated with their size and time of contact or movement in cells and tissues, tested both in vitro and in vivo as well as the kinetics of accumulation of the nanoparticles into the living organism. Subsequently the biofunctionalization of two types of nanoparticles was made to recognize specific molecular targets and can be used in the future in two different biomedical applications: diagnosis of Alzheimer's disease by magnetic resonance imaging and selective destruction of tumor cells by optical hyperthermia.
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The possibility of designing and manufacturing biomedical microdevices with multiple length-scale geometries can help to promote special interactions both with their environment and with surrounding biological systems. These interactions aim to enhance biocompatibility and overall performance by using biomimetic approaches. In this paper, we present a design and manufacturing procedure for obtaining multi-scale biomedical microsystems based on the combination of two additive manufacturing processes: a conventional laser writer to manufacture the overall device structure, and a direct-laser writer based on two-photon polymerization to yield finer details. The process excels for its versatility, accuracy and manufacturing speed and allows for the manufacture of microsystems and implants with overall sizes up to several millimeters and with details down to sub-micrometric structures. As an application example we have focused on manufacturing a biomedical microsystem to analyze the impact of microtextured surfaces on cell motility. This process yielded a relevant increase in precision and manufacturing speed when compared with more conventional rapid prototyping procedures.
Resumo:
Implants that can be metabolized by the human body have appeared as one of the most attractive and promising solutions to overcome limitations and improve the features of current implantable devices. Biodegradable polymers and magnesium (Mg) alloys have played an important role writing the history of resorbable implants [1,2]. This paper presents the processing by extrusion/compression moulding, mechanical characterization, thermal characterization and in vitro biocompatibility of a novel generation of resorbable materials based on a polymeric matrix reinforced with metallic Mg particles.
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La preservación del patrimonio bibliográfico y documental en papel es uno de los mayores retos a los que se enfrentan bibliotecas y archivos de todo el mundo. La búsqueda de soluciones al problema del papel degradado ha sido abordada históricamente desde dos líneas de trabajo predominantes: la conservación de estos documentos mediante la neutralización de los ácidos presentes en ellos con agentes alcalinos, y su restauración mediante el método de laminación fundamentalmente con papel de origen vegetal. Sin embargo, no se ha explorado con éxito la posibilidad de reforzar la celulosa dañada, y el problema sigue sin encontrar una solución satisfactoria. Hasta el día de hoy, el desarrollo de tratamientos basados en biotecnología en la conservación del patrimonio documental ha sido muy escaso, aunque la capacidad de ciertas bacterias de producir celulosa lleva a plantear su uso en el campo de la conservación y restauración del papel. La celulosa bacteriana (CB) es químicamente idéntica a la celulosa vegetal, pero su organización macroscópica es diferente. Sus propiedades únicas (alto grado de cristalinidad, durabilidad, resistencia y biocompatibilidad) han hecho de este material un excelente recurso en diferentes campos. En el desarrollo de esta tesis se ha estudiado el uso de la celulosa bacteriana, de alta calidad, generada por Gluconacetobacter sucrofermentans CECT 7291, para restaurar documentos deteriorados y consolidar los que puedan estar en peligro de degradación, evitando así su destrucción y proporcionando al papel que se restaura unas buenas propiedades mecánicas, ópticas y estructurales. Se desarrollan asimismo protocolos de trabajo que permitan la aplicación de dicha celulosa. En primer lugar se seleccionó el medio de cultivo que proporcionó una celulosa adecuada para su uso en restauración. Para ello se evaluó el efecto que tienen sobre la celulosa generada las fuentes de carbono y nitrógeno del medio de cultivo, manteniendo como parámetros fijos la temperatura y el pH inicial del medio, y efectuando los ensayos en condiciones estáticas. Se evaluó, también, el efecto que tiene en la CB la adición de un 1% de etanol al medio de cultivo. Las capas de celulosa se recolectaron a cuatro tiempos distintos, caracterizando en cada uno de ellos el medio de cultivo (pH y consumo de fuente de carbono), y las capas de CB (pH, peso seco y propiedades ópticas y mecánicas). La mejor combinación de fuentes de carbono y nitrógeno resultó ser fructosa más extracto de levadura y extracto de maíz, con o sin etanol, que proporcionaban una buena relación entre la producción de celulosa y el consumo de fuente de carbono, y que generaban una capa de celulosa resistente y homogénea. La adición de etanol al medio de cultivo, si bien aumentaba la productividad, causaba un descenso apreciable de pH. Las capas de CB obtenidas con los medios de cultivo optimizados se caracterizaron en términos de sus índices de desgarro y estallido, propiedades ópticas, microscopía electrónica de barrido (SEM), difracción de rayos-X, espectroscopía infrarroja con transformada de Fourier (FTIR), grado de polimerización, ángulos de contacto estáticos y dinámicos, y porosimetría de intrusión de mercurio. Por otro lado hay que tener en cuenta que el material restaurado debe ser estable con el tiempo. Por ello esta misma caracterización se efectuó tras someter a las capas de CB a un proceso de envejecimiento acelerado. Los resultados mostraron que la CB resultante tiene un elevado índice de cristalinidad, baja porosidad interna, buenas propiedades mecánicas, y alta estabilidad en el tiempo. Para desarrollar los protocolos de trabajo que permitan la restauración con esta celulosa optimizada, se comienzó con un proceso de selección de los papeles que van a ser restaurados. Se eligieron tres tipos de papeles modelo, hechos con pasta mecánica, química y filtro (antes y después de ser sometidos a un proceso de envejecimiento acelerado), y tres libros viejos adquiridos en el mercado de segunda mano. Estos ejemplares a restaurar se caracterizaron también en términos de sus propiedades mecánicas y fisicoquímicas. El primer protocolo de restauración con CB que se evaluó fue el denominado laminación. Consiste en aplicar un material de refuerzo al documento mediante el uso de un adhesivo. Se seleccionó para ello la CB producida en el medio de cultivo optimizado con un 1% de etanol. Se aplicó un método de purificación alcalino (1 hora a 90 °C en NaOH al 1%) y como adhesivo se seleccionó almidón de trigo. El proceso de laminación se efectuó también con papel japonés (PJ), un material habitualmente utilizado en conservación, para comparar ambos materiales. Se concluyó que no hay diferencias significativas en las características estudiadas entre los dos tipos de materiales de refuerzo. Se caracterizó el material reforzado y, también, después de sufrir un proceso de envejecimiento acelerado. Los papeles laminados con CB mostraban diferencias más marcadas en las propiedades ópticas que los restaurados con PJ, con respecto a los originales. Sin embargo, el texto era más legible cuando el material de restauración era la CB. La mojabilidad disminuía con ambos tipos de refuerzo, aunque en los papeles laminados con CB de manera más marcada e independiente del material a restaurar. Esto se debe a la estructura cerrada de la CB, que también conduce a una disminución en la permeabilidad al aire. Este estudio sugiere que la CB mejora la calidad del papel deteriorado, sin alterar la información que contiene, y que esta mejora se mantiene a lo largo del tiempo. Por tanto, la CB puede ser utilizada como material de refuerzo para laminar, pudiendo ser más adecuada que el PJ para ciertos tipos de papeles. El otro método de restauración que se estudió fue la generación in situ de la CB sobre el papel a restaurar. Para ello se seleccionó el medio de cultivo sin etanol, ya que el descenso de pH que causaba su presencia podría dañar el documento a restaurar. El método de purificación elegido fue un tratamiento térmico (24 horas a 65 °C), menos agresivo para el material a restaurar que el tratamiento alcalino. Se seleccionó la aplicación del medio de cultivo con la bacteria mediante pincel sobre el material a restaurar. Una vez caracterizado el material restaurado, y éste mismo tras sufrir un proceso de envejecimiento acelerado, se concluyó que no hay modificación apreciable en ninguna característica, salvo en la permeabilidad al aire, que disminuye de manera muy evidente con la generación de CB, dando lugar a un material prácticamente impermeable al aire. En general se puede concluir que ha quedado demostrada la capacidad que tiene la celulosa generada por la bacteria Gluconacetobacter sucrofermentans CECT 7291 para ser utilizada como material de refuerzo en la restauración del patrimonio documental en papel. Asimismo se han desarrollado dos métodos de aplicación, uno ex situ y otro in situ, para efectuar esta tarea de restauración. ABSTRACT The preservation of bibliographic and documentary heritage is one of the biggest challenges that libraries and archives around the world have to face. The search for solutions to the problem of degraded paper has historically been focused from two predominants lines of work: the conservation of these documents by the neutralization of acids in them with alkaline agents, and their restoration by lining them with, basically, cellulose from vegetal sources. However, the possibility of strengthening the damaged cellulose has not been successfully explored, and the problem still persists. Until today, the development of biotechnology-based treatments in documentary heritage conservation has been scarce, although the ability of certain bacteria to produce cellulose takes to propose its use in the field of conservation and restoration of paper. The bacterial cellulose (BC) is chemically identical to the plant cellulose, but its macroscopic organization is different. Its unique properties (high degree of crystallinity, durability, strength and biocompatibility), makes it an excellent resource in different fields. The use of high-quality BC generated by Gluconacetobacter sucrofermentans CECT 7291 to restore damaged documents and to consolidate those that may be at risk of degradation, has been studied in this thesis, trying to prevent the document destruction, and to get reinforced papers with good mechanical, optical and structural properties. Protocols that allow the implementation of the BC as a reinforcing material were also developed. First of all, in order to select the culture medium that provides a cellulose suitable for its use in restoration, it has been evaluated the effect that the carbon and nitrogen sources from the culture medium have on the generated BC, keeping the temperature and the initial pH of the medium as fixed parameters, and performing the culture without shaking. The effect of the addition of 1% ethanol to the culture medium on BC properties was also evaluated. The cellulose layers were collected at four different times, characterizing in all of them the culture medium (pH and carbon source consumption), and the BC sheets (pH, dry weight and optical and mechanical properties). The best combination of carbon and nitrogen sources proved to be fructose plus yeast extract and corn steep liquor, with or without ethanol, which provided a good balance between the cellulose production and the consumption of carbon source, and generating BC sheets homogeneous and resistant. The addition of ethanol to the culture medium increased productivity but caused a noticeable decrement in pH. The BC layers generated with these optimized culture media, have been characterized in terms of tear and burst index, optical properties, scanning electron microscopy (SEM), X-ray diffraction, infrared Fourier transform spectroscopy (FTIR), polymerization degree, static and dynamic contact angles, and mercury intrusion porosimetry. Moreover it must be kept in mind that the restored materials should be stable over time. Therefore, the same characterization was performed after subjecting the layers of BC to an accelerated aging process. The results showed that the BC sheets obtained have a high crystallinity index, low internal porosity, good mechanical properties, and high stability over time. To develop working protocols to use this optimized BC in paper restoration, the first step was to select the samples to restore. Three types of model papers, made from mechanical pulp, chemical pulp and filter paper (before and after an accelerated aging process), and three old books purchased in the second hand market, were chosen. These specimens to be restored were also characterized in terms of its mechanical and physicochemical properties. The first protocol of restoration with BC to be evaluated is called linning. It consists on applying a reinforcing material to the document using an adhesive. The BC produced in the optimized culture medium with 1% ethanol was selected. An alkali purification method (1 hour at 90 °C in 1% NaOH) was applied, and wheat starch was selected as adhesive. The linning process was also carried out with Japanese paper (JP), a material commonly used in conservation, in order to compare both materials. It was concluded that there are no significant differences in the characteristics studied of the two types of reinforcing materials. The reinforced materials were characterized before and after undergoing to an accelerated aging. Papers lined with BC showed more marked differences in the optical properties that papers restored with JP. However, the text was more readable when BC was the reinforcing material. Wettability decreased with both types of reinforcement, although in the papers linned with BC it happened more marked and independently of the sample to restore. This is due to the closed structure of BC, which also leads to a decrement in air permeance. This study suggests that BC improves the deteriorated paper quality, without altering the information on it, and that this improvement is maintained over time. Therefore, the BC may be used as reinforcing material for linning, being more suitable than the JP to restore certain types of papers. The other restoration method to be evaluated was the in situ generation of BC over the paper to restore. For this purpose the culture medium without ethanol was selected, as the pH decrement caused by his presence would damage the document to restore. As purification method a heat treatment (24 hours at 65 °C) was chosen, less aggressive to the material to restore than the alkaline treatment. It was decided to apply the culture medium with the bacteria onto the material to restore with a brush. The reinforced material was characterized before and after an accelerated aging process. It was concluded that there was no substantial change in any characteristic, except for air permeance, which decreases very sharply after the generation of BC, getting a substantially air impermeable material. In general, it can be concluded that the ability of BC produced by Gluconacetobacter sucrofermentans CECT 7291 for its use as a reinforcing material in the restoration of paper documentary heritage, has been demonstrated. Also, two restoration methods, one ex situ and another in situ have been developed.
Resumo:
La perspectiva del arquitecto en calidad ambiental, y salud en un contexto sostenible, se amplía al considerar las radiaciones electromagnéticas no ionizantes en el diseño arquitectónico. En ese sentido, además del confort higrotérmico, acústico, lumínico y de la calidad del aire, se podría considerar el confort electromagnético de un lugar. Dado que existe gran controversia en cuales han de ser los límites de exposición a radiaciones electromagnéticas no ionizantes, establezco como punto de referencia los valores límite más restrictivos, que son los recomendados por la norma SBM-2008, desarrollada por el Institut für Baubiologie & Oekologie Neubeuern (IBN)1. Se plantean como hipótesis que podemos modificar el entorno electromagnético con materiales de construcción y geometría; y que determinados trazados geométricos tienen la capacidad de reducir el impacto de los campos electromagnéticos sobre los organismos vivos. El objetivo consiste en demostrar experimentalmente que podemos trabajar sobre la calidad ambiental electromagnética de un espacio, a través de la elección de materiales de construcción y trazados geométricos, intentando demostrar que existe una relación causa - efecto entre ambos. La metodología plantea tres aproximaciones experimentales, cada una con un tipo de radiación electromagnética, pues se pretende abarcar las situaciones que comúnmente se pueden presentar en un entorno habitado, ya sea urbano o rural. La primera aproximación trata sobre las alteraciones del campo geomagnético natural (nT / m) provocadas por los materiales de construcción. Utilizo el geomagnetómetro BPM 2010, para realizar un ensayo con cuatro tipos de materiales de distinta procedencia: origen vegetal muy poco procesado (corcho aglomerado negro) y más procesado (OSB), origen derivado del petróleo (tablero rígido de poliuretano) y de origen mineral metálico (chapa minionda). De la lectura de los datos se observa relación causa-efecto entre los materiales de construcción estudiados y las modificaciones que pueden ejercer sobre el campo magnético de un lugar. A continuación se estudia el entorno de radiación electromagnética artificial a baja frecuencia (3 Hz a 3 kHz) y a alta frecuencia, (800 MHz a 10 GHz) en vivienda y en oficina utilizando unas geometrías concretas: las tarjetas de corrección de radiaciones. Estas tarjetas se ubican en paramentos verticales y horizontales de un espacio sometido a radiación propia de un entorno urbano. Se concluye que en una habitación inciden múltiples variables simultáneas muy difíciles de trabajar por separado y que aparentemente no se pueden identificar cambios significativos en las mediciones con y sin las tarjetas de corrección de radiaciones. A continuación estudio el entorno de radiación electromagnética artificial a baja frecuencia asociada a la red de distribución eléctrica. Para poder ver cómo este entorno electromagnético lo podemos modificar, utilizo las tarjetas de corrección de radiaciones ubicadas en relación directa con organismos vivos, por un lado germinados de semillas de haba mungo sometidas a campos electromagnéticos complejos a alta y baja frecuencia, propios de una oficina; y por otro lado germinados de semillas de haba mungo, sometidas a campos electromagnéticos puros a 50 Hz, sin influencias de radiación a alta frecuencia. Se concluye que se observa relación causa - efecto entre los trazados geométricos estudiados y su capacidad para reducir el impacto de los campos electromagnéticos a altas y bajas frecuencias sobre las semillas de haba mungo. También utilizo las tarjetas de corrección de radiaciones en un ensayo normalizado en el laboratorio de bioelectromagnetismo del Hospital Universitario Ramón y Cajal, con células de neuroblastoma humano. Se concluye que se observa relación causa - efecto entre los trazados geométricos estudiados y su capacidad para reducir el impacto de los campos electromagnéticos de 50 Hz Y 100 μT sobre células de neuroblastoma humano y además disminuyen la velocidad de proliferación celular respecto del grupo de células de control. Finalmente se estudia el entorno de radiación electromagnética artificial a alta frecuencia, asociado a comunicaciones inalámbricas. Para ello realizo simulaciones con el software CST Studio, sobre las tarjetas de corrección de radiaciones a alta frecuencia. A la luz de los datos se observa relación causa - efecto entre el trazado geométrico estudiado y su capacidad para reducir radiaciones electromagnéticas de alta frecuencia. Se comprueba además que, las tarjetas de corrección de radiaciones disminuyen la intensidad de la radiación acercándose a los límites de exposición establecidos por el instituto de la biología de la construcción alemán, que podrían estar señalando los estándares de biocompatibilidad. ABSTRACT The perspective of the architect in environmental quality, and health in a sustainable context is extended to consider non-ionizing electromagnetic radiation in architectural design. In that sense, besides the hygrothermal, acoustic, lighting and air quality comfort, the electromagnetic comfort of an indoor space could be considered. There is still great controversy about which should be the limits of exposure to nonionizing electromagnetic radiation, as a benchmark, the more restrictive limits are considered, by the SBM- 2008 standard, developed by the Institut für Baubiologie & Oekologie Neubeuern (IBN). The hypotheses that arise are the following: the electromagnetic environment can be modified by using certain construction materials and geometry; and certain geometric design have the ability to reduce the impact of electromagnetic fields on living organisms. The aim is to demonstrate experimentally that we can work on electromagnetic environmental quality of a indoor space, by using certain construction materials and geometric design, trying to demonstrate a cause - effect relationship between them. The methodology raises three experimental approaches, each with a type of radiation, it is intend to cover situations commonly may occur in an inhabited environment, whether urban or rural. The first approach discusses the alteration of the natural magnetic field (nT / m) caused by the building materials. Geomagnetometre BPM 2010 is used for conducting a test with four types of materials from different sources: vegetable origin less processing (black agglomerate cork) and vegetable origin more processed (OSB), petroleum origin (rigid polyurethane board) and metallic origin (miniwave plate). It is observed across the data information that exist cause-effect relationship between the construction materials studied and the modifications that they can exercise on the magnetic field of a place. Then I study the environment of artificial electromagnetic radiation at low frequency (3 Hz to 3 kHz) and high frequency (800 MHz to 10 GHz) in housing and office, using some specific geometries: correcting radiation cards. These cards are placed in vertical and horizontal surfaces of an indoor space concerned by radiation. I conclude that an indoor space is affected by multiple simultaneous variables difficult to work separately and apparently it is not possible identify significant changes in measurements with and without correcting radiation cards. Then the artificial electromagnetic environment of low-frequency radiation associated with the electricity distribution network is studied. To see how the electromagnetic environment can be changed, correcting radiation cards are placed directly related to living organisms. On one hand, mung bean seeds subject to complex electromagnetic fields at low and high frequency, typical of an office; and on the other hand mung bean seeds, subjected to pure electromagnetic fields at 50 Hz, no influenced by high frequency radiation. It is observed that exist cause-effect relationship between the geometric design and their ability to reduce the impact of electromagnetic fields at high and low frequencies that arrives on on mung bean seeds. The correcting radiation cards were also used in a standard test in the bioelectromagnetics laboratory of Ramón y Cajal University Hospital, on human neuroblastoma cells. It is observed that exist cause-effect relationship between the geometric design and their ability to reduce the impact of electromagnetic fields at 50 Hz and 100 μT on human neuroblastoma cells and also decrease the rate of cell proliferation compared to the group of cells control. Finally the artificial electromagnetic radiation environment at high frequency associated with wireless communications was studied. Simulations with CST Study software were made to determine the behavior of correcting radiation cards in high-frequency. It is observed across the data information that exist causeeffect relationship between the geometric design and the ability to reduce the levels of high-frequency electromagnetic radiation. It also checks that radiation correcting cards decrease the intensity of radiation approaching exposure limits established by Institut für Baubiologie & Oekologie Neubeuern (IBN), which could be signaling biocompatibility standards.
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Proteins play an important role in the biological mechanisms controlling hard tissue development, but the details of molecular recognition at inorganic crystal interfaces remain poorly characterized. We have applied a recently developed homonuclear dipolar recoupling solid-state NMR technique, dipolar recoupling with a windowless sequence (DRAWS), to directly probe the conformation of an acidic peptide adsorbed to hydroxyapatite (HAP) crystals. The phosphorylated hexapeptide, DpSpSEEK (N6, where pS denotes phosphorylated serine), was derived from the N terminus of the salivary protein statherin. Constant-composition kinetic characterization demonstrated that, like the native statherin, this peptide inhibits the growth of HAP seed crystals when preadsorbed to the crystal surface. The DRAWS technique was used to measure the internuclear distance between two 13C labels at the carbonyl positions of the adjacent phosphoserine residues. Dipolar dephasing measured at short mixing times yielded a mean separation distance of 3.2 ± 0.1 Å. Data obtained by using longer mixing times suggest a broad distribution of conformations about this average distance. Using a more complex model with discrete α-helical and extended conformations did not yield a better fit to the data and was not consistent with chemical shift analysis. These results suggest that the peptide is predominantly in an extended conformation rather than an α-helical state on the HAP surface. Solid-state NMR approaches can thus be used to determine directly the conformation of biologically relevant peptides on HAP surfaces. A better understanding of peptide and protein conformation on biomineral surfaces may provide design principles useful for the modification of orthopedic and dental implants with coatings and biological growth factors that are designed to enhance biocompatibility with surrounding tissue.
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Betidamino acids (a contraction of "beta" position and "amide") are N'-monoacylated (optionally, N'-monoacylated and N-mono- or N,N'-dialkylated) aminoglycine derivatives in which each N'acyl/alkyl group may mimic naturally occurring amino acid side chains or introduce novel functionalities. Betidamino acids are most conveniently generated on solid supports used for the synthesis of peptides by selective acylation of one of the two amino functions of orthogonally protected aminoglycine(s) to generate the side chain either prior to or after the elongation of the main chain. We have used unresolved Nalpha-tert-butyloxycarbonyl-N'alpha-fluorenylmethoxycarbonyl++ + aminoglycine, and Nalpha-(Nalpha-methyl)-tert-butyloxycarbonyl-N'alpha-fluo renylmethoxycarbonyl aminoglycine as the templates for the introduction of betidamino acids in Acyline [Ac-D2Nal-D4Cpa-D3Pal-Ser-4Aph(Ac)-D4Aph(A c)-Leu-Ilys-Pro-DAla-NH2, where 2Nal is 2-naphthylalanine, 4Cpa is 4-chlorophenylalanine, 3Pal is 3-pyridylalanine, Aph is 4-aminophenylalanine, and Ilys is Nepsilon-isopropyllysine], a potent gonadotropin-releasing hormone antagonist, in order to test biocompatibility of these derivatives. Diasteremneric peptides could be separated in most cases by reverse-phase HPLC. Biological results indicated small differences in relative potencies (<5-fold) between the D and L nonalkylated betidamino acid-containing Acyline derivatives. Importantly, most betide diastereomers were equipotent with Acyline. In an attempt to correlate structure and observed potency, Ramachandran-type plots were calculated for a series of betidamino acids and their methylated homologs. According to these calculations, betidamino acids have access to a more limited and distinct number of conformational states (including those associated with alpha-helices, beta-sheets, or turn structures), with deeper minima than those observed for natural amino acids.
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Hyaluronan (HA) plays an important role in lung pathophysiology. For this reason it has attracted great attention both as active ingredient and as excipient in treating lung diseases by direct pulmonary HA administration. The aim was the production of highly respirable and flowable HA powders either as a potential carrier for drug delivery or for being delivered directly by inhalation. Engineered sodium hyaluronate powders were produced by spray-drying technique. All the spray-dried powders were characterised in terms of particle size distribution, drug content, morphology and in vitro respirability. HA was successfully formulated with salbutamol sulphate in combination with leucine and highlighted remarkable aerodynamic performance (emitted dose equal to 83 % and FPF % equal to 97.1%). Moreover, HA colloidal solutions were designed and they were spray-dried. In order to improve particle aerodynamic characteristics, different types of excipients were investigated. In particular, stearylamine (5% w/w) allowed to obtain the best performance throughout the experimental set. Finally, in vitro biocompatibility was carried out by MTT assay and High Content Analysis for selected dry powder formulations and starting materials. The assays demonstrated the same outcome by confirming the HA biocompatibility and by producing the same rank of toxicity for the surfactants. The general conclusion of the project is that formulation containing HA and stearyl alcohol represents the best performing formulation.
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Nanomedicine is a new branch of medicine, based on the potentiality and intrinsic properties of nanomaterials. Indeed, the nanomaterials ( i.e. the materials with nano and under micron size) can be suitable to different applications in biomedicine. The nanostructures can be used by taking advantage of their properties (for example superparamagnetic nanoparticles) or functionalized to deliver the drug in a specific target, thanks the ability to cross biological barriers. The size and the shape of 1D-nanostructures (nanotubes and nanowires) have an important role on the cell fate: their morphology plays a key role on the interaction between nanostructure and the biological system. For this reason the 1D nanostructure are interesting for their ability to mime the biological system. An implantable material or device must therefore integrate with the surrounding extracellular matrix (ECM), a complex network of proteins with structural and signaling properties. Innovative techniques allow the generation of complex surface patterns that can resemble the structure of the ECM, such as 1D nanostructures. NWs based on cubic silicon carbide (3C-SiC), either bare (3C-SiC NWs) or surrounded by an amorphous shell (3C-SiC/SiO2 core/shell NWs), and silicon oxycarbide nanowires (SiOxCy NWs) can meet the chemical, mechanical and electrical requirements for tissue engineering and have a strong potential to pave the way for the development of a novel generation of implantable nano-devices. Silicon oxycarbide shows promising physical and chemical properties as elastic modulus, bending strength and hardness, chemical durability superior to conventional silicate glasses in aggressive environments and high temperature stability up to 1300 °C. Moreover, it can easily be engineered through functionalization and decoration with macro-molecules and nanoparticles. Silicon carbide has been extensively studied for applications in harsh conditions, as chemical environment, high electric field and high and low temperature, owing to its high hardness, high thermal conductivity, chemical inertness and high electron mobility. Also, its cubic polytype (3C) is highly biocompatible and hemocompatible, and some prototypes of biomedical applications and biomedical devices have been already realized starting from 3C-SiC thin films. Cubic SiC-based NWs can be used as a biomimetic biomaterial, providing a robust and novel biocompatible biological interface . We cultured in vitro A549 human lung adenocarcinoma epithelial cells and L929 murine fibroblast cells over core/shell SiC/SiO2, SiOxCy and bare 3C-SiC nanowire platforms, and analysed the cytotoxicity, by indirect and direct contact tests, the cell adhesion, and the cell proliferation. These studies showed that all the nanowires are biocompatible according to ISO 10993 standards. We evaluated the blood compatibility through the interaction of the nanowires with platelet rich plasma. The adhesion and activation of platelets on the nanowire bundles, assessed via SEM imaging and soluble P-selectin quantification, indicated that a higher platelet activation is induced by the core/shell structures compared to the bare ones. Further, platelet activation is higher with 3C-SiC/SiO2 NWs and SiOxCyNWs, which therefore appear suitable in view of possible tissue regeneration. On the contrary, bare 3C-SiC NWs show a lower platelet activation and are therefore promising in view of implantable bioelectronics devices, as cardiovascular implantable devices. The NWs properties are suitable to allow the design of a novel subretinal Micro Device (MD). This devices is based on Si NWs and PEDOT:PSS, though the well know principle of the hybrid ordered bulk heterojunction (OBHJ). The aim is to develop a device based on a well-established photovoltaic technology and to adapt this know-how to the prosthetic field. The hybrid OBHJ allows to form a radial p–n junction on a nanowire/organic structure. In addition, the nanowires increase the light absorption by means of light scattering effects: a nanowires based p-n junction increases the light absorption up to the 80%, as previously demonstrated, overcoming the Shockley-Queisser limit of 30 % of a bulk p-n junction. Another interesting employment of these NWs is to design of a SiC based epicardial-interacting patch based on teflon that include SiC nanowires. . Such contact patch can bridge the electric conduction across the cardiac infarct as nanowires can ‘sense’ the direction of the wavefront propagation on the survival cardiac tissue and transmit it to the downstream surivived regions without discontinuity. The SiC NWs are tested in terms of toxicology, biocompatibility and conductance among cardiomyocytes and myofibroblasts.
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In the last decades, an increasing interest in the research field of wide bandgap semiconductors was observed, mostly due to the progressive approaching of silicon-based devices to their theoretical limits. 4H-SiC is an example among these, and is a mature compound for applications. The main advantages offered 4H-SiC in comparison with silicon are an higher breakdown field, an higher thermal conductivity, a higher operating temperature, very high hardness and melting point, biocompatibility, but also low switching losses in high frequencies applications and lower on-resistances in unipolar devices. Then, 4H-SiC power devices offer great performance improvement; moreover, they can work in hostile environments where silicon power devices cannot function. Ion implantation technology is a key process in the fabrication of almost all kinds of SiC devices, owing to the advantage of a spatially selective doping. This work is dedicated to the electrical investigation of several differently-processed 4H-SiC ion- implanted samples, mainly through Hall effect and space charge spectroscopy experiments. It was also developed the automatic control (Labview) of several experiments. In the work, the effectiveness of high temperature post-implant thermal treatments (up to 2000°C) were studied and compared considering: (i) different methods, (ii) different temperatures and (iii) different duration of the annealing process. Preliminary p + /n and Schottky junctions were also investigated as simple test devices. 1) Heavy doping by ion implantation of single off-axis 4H-SiC layers The electrical investigation is one of the most important characterization of ion-implanted samples, which must be submitted to mandatory post-implant thermal treatment in order to both (i) recover the lattice after ion bombardment, and (ii) address the implanted impurities into lattice sites so that they can effectively act as dopants. Electrical investigation can give fundamental information on the efficiency of the electrical impurity activation. To understand the results of the research it should be noted that: (a) To realize good ohmic contacts it is necessary to obtain spatially defined highly doped regions, which must have conductivity as low as possible. (b) It has been shown that the electrical activation efficiency and the electrical conductivity increase with the annealing temperature increasing. (c) To maximize the layer conductivity, temperatures around 1700°C are generally used and implantation density high till to 10 21 cm -3 . In this work, an original approach, different from (c), is explored by the using very high annealing temperature, around 2000°C, on samples of Al + -implant concentration of the order of 10 20 cm -3 . Several Al + -implanted 4H-SiC samples, resulting of p-type conductivity, were investigated, with a nominal density varying in the range of about 1-5∙10 20 cm -3 and subjected to two different high temperature thermal treatments. One annealing method uses a radiofrequency heated furnace till to 1950°C (Conventional Annealing, CA), the other exploits a microwave field, providing a fast heating rate up to 2000°C (Micro-Wave Annealing, MWA). In this contest, mainly ion implanted p-type samples were investigated, both off-axis and on-axis <0001> semi-insulating 4H-SiC. Concerning p-type off-axis samples, a high electrical activation of implanted Al (50-70%) and a compensation ratio below 10% were estimated. In the work, the main sample processing parameters have been varied, as the implant temperature, CA annealing duration, and heating/cooling rates, and the best values assessed. MWA method leads to higher hole density and lower mobility than CA in equivalent ion implanted layers, resulting in lower resistivity, probably related to the 50°C higher annealing temperature. An optimal duration of the CA treatment was estimated in about 12-13 minutes. A RT resistivity on the lowest reported in literature for this kind of samples, has been obtained. 2) Low resistivity data: variable range hopping Notwithstanding the heavy p-type doping levels, the carrier density remained less than the critical one required for a semiconductor to metal transition. However, the high carrier densities obtained was enough to trigger a low temperature impurity band (IB) conduction. In the heaviest doped samples, such a conduction mechanism persists till to RT, without significantly prejudice the mobility values. This feature can have an interesting technological fall, because it guarantee a nearly temperature- independent carrier density, it being not affected by freeze-out effects. The usual transport mechanism occurring in the IB conduction is the nearest neighbor hopping: such a regime is effectively consistent with the resistivity temperature behavior of the lowest doped samples. In the heavier doped samples, however, a trend of the resistivity data compatible with a variable range hopping (VRH) conduction has been pointed out, here highlighted for the first time in p-type 4H-SiC. Even more: in the heaviest doped samples, and in particular, in those annealed by MWA, the temperature dependence of the resistivity data is consistent with a reduced dimensionality (2D) of the VRH conduction. In these samples, TEM investigation pointed out faulted dislocation loops in the basal plane, whose average spacing along the c-axis is comparable with the optimal length of the hops in the VRH transport. This result suggested the assignment of such a peculiar behavior to a kind of spatial confinement into a plane of the carrier hops. 3) Test device the p + -n junction In the last part of the work, the electrical properties of 4H-SiC diodes were also studied. In this case, a heavy Al + ion implantation was realized on n-type epilayers, according to the technological process applied for final devices. Good rectification properties was shown from these preliminary devices in their current-voltage characteristics. Admittance spectroscopy and deep level transient spectroscopy measurements showed the presence of electrically active defects other than the dopants ones, induced in the active region of the diodes by ion implantation. A critical comparison with the literature of these defects was performed. Preliminary to such an investigation, it was assessed the experimental set up for the admittance spectroscopy and current-voltage investigation and the automatic control of these measurements.
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O trabalho apresentado foi realizado em duas etapas independentes e baseou-se no estudo de diferentes sistemas nanométricos para viabilizar a aplicação da ftalocianina de cloro alumínio (ClAlPc) na terapia fotodinâmica (TFD) para o tratamento do câncer de pele do tipo melanoma. O fármaco fotossensibilizante (FS) utilizado apresenta propriedades físico-químicas que lhe permitem exercer sua atividade fotodinâmica com excelência, sem a interferência do cromóforo endógeno melanina existente nas células melanocíticas. Para driblar sua elevada hidrofobicidade, ClAlPc foi encapsulada em sistemas nanométricos para administração em meio fisiológico. Inicialmente nanopartículas lipídicas sólidas (NLS) foram desenvolvidas por emulsificação direta, após um estudo de elaboração do diagrama de fases. O compritol foi o lipídio sólido escolhido para compor as NLS, com diferentes concentrações de ClAlPc. Todas as formulações desenvolvidas foram devidamente caracterizadas, com tamanho médio entre 100 e 200 nm, baixa polidispersão, potencial zeta adequadamente negativo (~|30| mV), drug loading de ClAlPc entre 76-94% (com pequena redução após 24 meses) e alta eficiência de encapsulação (E.E.). A morfologia arredondada das nanopartículas foi confirmada por microscopia eletrônica de transmissão e de força atômica. A estabilidade das NLS foi de 24 meses. A avaliação da cristalinidade do lipídio revelou a integração da ClAlPc à matriz lipídica da NLS, presença de estruturas polimórficas e grau de cristalinidade adequado, sem alterações após 24 meses. Nos estudos de difusão in vitro, observou-se que ftalocianina encapsulada nas NLS acumulam-se preferencialmente na epiderme e derme do que no estrato córneo, sem traços de permeação do ativo. Foi confirmado o caráter biocompatível das NLS sobre fibroblastos NIH-3T3. A ftalocianina encapsulada nas NLS não foi tóxica na linhagem de melanoma B16-F10 na ausência de luz, porém, apresentou excelente efeito fototóxico (0,75 ?g mL-1 de ClAlPc nanoencapsulada e irradiação entre 0,5 e 2,0 J cm-2), com redução da viabilidade celular de 87%. O segundo sistema de veiculação estudado foram as vesículas cataniônicas (VesCat), que se formam espontaneamente em água com o tensoativo TriCat 12. A obtenção das vesículas contendo ClAlPc envolve uma etapa adicional, para remoção de solvente orgânico, que foi aprimorada, reduzindo o tempo de produção em 55%. As VesCat/ClAlPc obtidas mantiveram suas propriedades físico-químicas e morfologia arredondada (confirmada por microscopia eletrônica de varredura), drug loading de 47% e alta E.E. Os resultados comprovaram que a aplicação desses dois sistemas nanométricos é altamente eficiente para aplicação da TFD no tratamento do câncer de pele do tipo melanoma ou outras doenças cutâneas, apresentando características favoráveis para avanços nos estudos de fase clínica e pré-clínica.
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A radioterapia interna seletiva é uma alternativa para o tratamento de alguns tipos de cânceres como o carcinoma hepatocelular (CHC), ou câncer de fígado primário. Neste tratamento, microesferas de vidro ou polimérica contendo em sua estrutura radionuclídeos emissores de partículas β- são introduzidas no fígado por meio da artéria hepática e migram, preferencialmente, para regiões hipervascularizadas, que são características da presença de tecido canceroso. Neste trabalho, foram propostos o desenvolvimento de vidros fosfato contendo hólmio para produção de microesferas e sua aplicação em radioterapia interna seletiva no Brasil. O vidro desenvolvido apresentou durabilidade química adequada, densidade de 2,7(3)g/cm3, alta estabilidade térmica e as impurezas encontradas não inviabilizam o tratamento. As microesferas foram produzidas pelos métodos da chama e da queda gravitacional e foram caracterizadas por diversas técnicas em que se observaram forma, granulometria, atividade e biocompatibilidade apropriados para o tratamento pretendido. Propõe-se que as microesferas possam ser submetidas a testes in vivo.
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As diversas aplicações tecnológicas de nanopartículas magnéticas (NPM) vêm intensificando o interesse por materiais com propriedades magnéticas diferenciadas, como magnetização de saturação (MS) intensificada e comportamento superparamagnético. Embora MNP metálicas de Fe, Co e bimetálicas de FeCo e FePt possuam altos valores de MS, sua baixa estabilidade química dificulta aplicações em escala nanométrica. Neste trabalho foram sintetizadas NPM de Fe, Co, FeCo e FePt com alta estabilidade química e rigoroso controle morfológico. NPM de óxido metálicos (Fe e Co) também foram obtidas. Dois métodos de síntese foram empregados. Usando método baseado em sistemas nanoheterogêneos (sistemas micelares ou de microemulsão inversa), foram sintetizadas NPM de Fe3O4 e Co metálico. Foram empregados surfactantes cátion-substituídos: dodecil sulfato de ferro(III) (FeDS) e dodecil sulfato de cobalto(II) (CoDS). Para a síntese das NPM, foram estudados e determinados a concentração micelar crítica do FeDS em 1-octanol (cmc = 0,90 mmol L-1) e o diagrama de fases pseudoternário para o sistema n-heptano/CoDS/n-butanol/H2O. NPM esferoidais de magnetita com3,4 nm de diâmetro e comportamento quase-paramagnético foram obtidas usando sistemas micelares de FeDS em 1-octanol. Já as NPM de Co obtidas via microemulsão inversa, apesar da larga distribuição de tamanho e baixa MS, são quimicamente estáveis e superparamagnéticas. O segundo método é baseado na decomposição térmica de complexos metálicos, pelo qual foram preparadas NPM esféricas de FePt e de óxidos metálicos (Fe3O4, FeXO1-X, (Co,Fe)XO1-X e CoFe2O4) com morfologia controlada e estabilidade química. O método não mostrou a mesma efetividade na síntese de NPM de FeAg e FeCo: a liga FeAg não foi obtida enquanto que NPM de FeCo com estabilidade química foram obtidas sem controle morfológico. NPM de Fe e FeCo foram preparadas a partir da redução térmica de NPM de Fe3O4 e CoFe2O4, as quais foram previamente recobertas com sílica. A sílica previne a sinterização inter-partículas, além de proporcionar caráter hidrofílico e biocompatibilidade ao material. As amostras reduzidas apresentaram aumento dos valores de MS (entre 21,3 e 163,9%), o qual é diretamente proporcional às dimensões das NPM. O recobrimento com sílica foi realizado via hidrólise de tetraetilortosilicato (TEOS) em sistema de microemulsão inversa. A espessura da camada de sílica foi controlada variando-se o tempo de reação e as concentrações de TEOS e de NPM, sendo então proposto um mecanismo do processo de recobrimento. Algumas amostras receberam um recobrimento adicional de TiO2 na fase anatase, para o qual foi empregado etilenoglicol como solvente e ligante para formação de glicolato de Ti como precursor. A espessura da camada de TiO2 (2-12 nm) é controlada variando as quantidades relativas entre NPM e o precursor de Ti. Ensaios de hipertermia magnética foram realizados para as amostras recobertas com sílica. Ensaios de hipertermia magnéticas mostram grande aumento da taxa de aquecimento das amostras após a redução térmica, mesmo para dispersões diluídas de NPM (0,6 a 4,5 mg mL-1). Taxas de aquecimento entre 0,3 e 3,0oC min-1 e SAR entre 37,2 e 96,3 W g-1. foram obtidos. A atividade fotocatalítica das amostras recobertas foram próximas à da fase anatase pura, com a vantagem de possuir um núcleo magnético que permite a recuperação do catalisador pela simples aplicação de campos magnéticos externos. Os resultados preliminares dos ensaios de hipertermia magnética e fotocatálise indicam um forte potencial dos materiais aqui relatados para aplicações em biomedicina e em fotocatálise.
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Os implantes mamários de silicone têm sido empregados, tanto nas cirurgias de aumento das mamas, quanto na reconstrução do tecido mamário após mastectomia. A segurança biológica dos implantes de silicone merece estudo relacionado aos processos de esterilização empregados, pois podem constituir-se em fator de comprometimento da estrutura química do polímero e, conseqüentemente, da biocompatibilidade. Este estudo consistiu na avaliação da biocompatibilidade de implantes mamários de silicone após terem sido submetidos aos processos de esterilização por calor seco, radiação gama e óxido de etileno. O parâmetro avaliado foi a viabilidade celular, empregando o método de difusão em agar e de captura do vermelho neutro. As amostras compreenderam implantes de silicone gel lisos, texturizados e revestidos com poliuretano e implantes texturizados pré-cheios com solução salina. Também foi realizado o teste de endotoxinas bacterianas pelo método do LAL e determinação da taxa de migração do gel de silicone (teste de bleed). Os três métodos de esterilização mostraram-se igualmente eficientes pela comprovação da condição de esterilidade dos implantes através de metodologia descrita na Farmacopéia Americana 27 edição. Os níveis de endotoxinas bacterianas dos implantes, também atenderam aos requisitos dos compêndios oficiais. Na avaliação da biocompatibilidade todos os implantes, independente dos processos de esterilização utilizados, apresentaram ausência de citotoxicidade. Os resultados do teste de bleed mostraram uma maior taxa de migração de gel para os implantes de superfície lisa em comparação com os implantes de superfície texturizada e revestida com poliuretano, quando esterilizados por calor seco. Ao comparar a taxa de migração do gel para os implantes de superfície lisa esterilizados por calor seco e óxido de etileno, obteve-se uma maior taxa de migração para aqueles implantes esterilizados por óxido de etileno. As diferentes avaliações realizadas neste estudo abrangeram aspectos biológicos, químicos e físicos relevantes para garantir um produto de boa qualidade e que, por assegurar a manutenção da característica de biocompatibilidade, resulta na segurança biológica deste tipo de implante.
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A prática da reutilização de produtos médico-hospitalares de uso único vem sendo aplicada desde meados da década de setenta. A principal razão que tem contribuído para disseminação desta conduta pelas instituições hospitalares radicadas tanto nos países em desenvolvimento como naqueles considerados ricos, tem sido a aparente economia de custos. Apesar dos riscos relacionados com a prática da reutilização, como reações pirogênicas, danos ocasionados por bactérias consideradas patogênicas em pacientes imunologicamente comprometidos, danos na integridade fisica dos produtos, assim como aumento do período de permanência dos pacientes no hospital, têm despertado o interesse em avaliar aspectos fisicos e biológicos dos produtos médico-hospitalares reutilizados. Baseando-se nestas considerações foram aplicados desafios com esporos de Bacillus Subtilis varo niger ATCC 9372 e endotoxina bacteriana E. coli 055:B5. Os produtos desafiados foram cateteres intravenosos, torneira três vias e tubos de traqueostomia. A possível presença microbiana foi investigada após contaminação intencional dos esporos de B. Subtillis (107 ufc/unid.) com submissão das unidades contaminadas à limpeza e posterior esterilização, utilizando óxido de etileno/CFC na proporção 12:88. Os ciclos de reprocessamentos simulados de produtos médico-hospitalares consistiram de contaminação de cada unidade teste com carga microbiana, lavagem com detergente enzimático, secagem e esterilização. Ao término de cada ciclo de reprocessamento foram separadas unidades representativas para avaliação por contagem microbiana (pour plate), testes de esterilidade por inoculação direta e indireta, citotoxidade por cultura de células e microscopia eletrônica de varredura. A eficiência da esterilidade foi avaliada tanto por contagem microbiana como pelos testes de esterilidade, que resultaram em níveis microbianos de 103 ufc/unid. e detecção de contaminação até o 6° ciclo de reprocessamento nos cateteres intravenosos, tubos de traqueostomia e torneiras três vias. A segurança dos reprocessamentos dos produtos médico-hospitalares foi avaliada pela cultura de células de fibroblastos de camundongo (NCTC clone 929), as quais não apresentaram toxicidade. Entretanto, os resultados obtidos durante microscopia eletrônica de varredura comprovaram presença de carga microbiana após 10° ciclo de reprocessamento, assim como danos na superficie polimérica. Durante desafio com endotoxina bacteriana, que consistiu em contaminar as unidades com 200 UE, secagem e exposição ao ciclo de esterilização com óxido de etileno/CFC (12:88), verificou-se que após ciclos de reprocessamentos simulados, totalizando dez ciclos, foi possível detectar valores de recuperação de endotoxina em torno de 100%. Os cateteres-guia que foram adquiridos em instituição hospitalar após quatro reutilizações, apresentaram níveis de contaminação de 105 ufc/unid., assim como presença de bactérias consideradas patogênicas em pacientes comprometidos imunologicamente, já a detecção de endotoxina bacteriana nestes cateteres não foi considerada significativa. Logo, as avaliações aplicadas nas unidades submetidas aos ciclos de reprocessamentos simulados, assim como nos cateteres-guia reprocessados e reutilizados quatro vezes, refletiram a realidade de algumas instituições no âmbito nacional e internacional que praticam a reutilização de produtos médico-hospitalares de uso-único. Os resultados obtidos vêm enfatizar objeções quanto à prática da reutilização, considerando que a ausência de segurança pode ocasionar em danos ao paciente.