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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
431

Synthesis of cross-linked pine cone biosorbent and its applications in industrial wastewater treatment

Kupeta, Albert Jerry Kafushe 11 1900 (has links)
M. Tech. (Department of Chemistry, Faculty of Applied and Computer Sciences) -- Vaal University of Technology / The widespread use of phenols and phenolic derivatives in industrial applications has resulted in their discharge as part of industrial wastewater. These chemicals are toxic and need to be removed from the aqueous environment. Amongst the available pollutant removal technologies, adsorption has been widely used due to its simplicity, ease of operation, cost-effectiveness and ability to sequester pollutants at very low concentrations. Different adsorbents have been applied for removal of phenols and their derivatives. Use of agricultural waste as adsorbents seems to offer a much cheaper alternative in pollutant removal. This study examines the synthesis of a hydrophobic biomaterial composite by cross-linking of Fenton treated pine cone and applying the prepared adsorbent for 2-nitrophenol removal from aqueous solution. Pine cone biomass, in its raw and modified forms was tested for its ability to remove 2-nitrophenol from simulated industrial wastewater. The experimental procedure is divided into two main parts: (1) pine cone modification using Fenton’s reagent and 1.6-hexamethylene diisocyanate and (2) application of the prepared hydrophobic adsorbent for 2-nitrophenol removal from wastewater. Fenton’s reagent was used to remove pigments, extractives and other soluble organic compounds from the raw pine. FTIR spectroscopy showed an increase in magnitude of oxygenated surface groups which resulted in a decrease in pHpzc. The effect of Fenton treatment on further modification of the pine biomass via cross-linking using 1.6-hexamethylene diisocyanate was investigated. Optimum reaction variables for the cross-linking using dibutyltin dilaurate as catalyst under an inert nitrogen gas atmosphere in anhydrous hexane solvent were determined using FTIR spectroscopy. Success of the cross-linking procedure was confirmed by use of analytical techniques (XRD, TGA, SEM, EDX and BET surface area) and weight percent gain calculations. Pine and modified pine biomass were tested for their ability to sequester 2-nitrophenol via batch adsorption technique. The effect of pine modification on affinity for the biosorbate was investigated. The mechanism of the adsorption process was determined via use of kinetic, diffusion and equilibrium isotherm models. Two error functions (coefficient of determination and percent variable error) were employed to substantiate the model showing a good fit to the experimental adsorption data. The experimental adsorption kinetic data was fit to the pseudo-first-order and pseudo-second-order kinetic models. Due to the large size of the pollutant molecules diffusion process analysis was also conducted. The effect of pine modification on kinetic and diffusion parameters was determined. The experimental equilibrium adsorption data was fit to the Freundlich, Redlich-Peterson and Hill isotherm models. The initial shapes of the adsorption isotherms for 2-nitrophenol adsorption onto pine and modified pine biomass determined the type of equilibrium isotherm models to fit the experimental data to. Thermodynamic parameters were calculated to determine the spontaneity, feasibility and energy changes associated with the adsorption process. The degree of disorder at the solid/liquid interface after the adsorption was determined. The effect of temperature on the adsorption process was used to show whether the adsorption is physical or chemical. The effect of pine modification on equilibrium isotherm parameters was determined. The study is divided into seven chapters: Chapter 1: The chapter covers the introduction, problem statement, aim and objectives of the research. It gives an insight into the research project. Chapter 2: The literature review of pollutants in industrial wastewater and methods of their removal is dealt with in this chapter. Adsorption is introduced as an alternative technique for pollutant removal from aqueous systems. An in-depth review of various adsorbents (including pine cone), their merits and limitations are also discussed together with methods of modifying and use of modified adsorbents. Equilibrium, kinetic and thermodynamic models used to treat adsorption experimental data are presented. Chapter 3: The experimental procedures on the synthesis, characterization and application of the hydrophobic biosorbent in the removal of 2-nitrophenol from aqueous solution are presented. Kinetic and equilibrium experiments are described in detail. Chapter 4: It describes the first part of the results and discussions. The chapter focuses on optimization of reaction variables and characterization (using various analytical techniques) of the hydrophobic biomaterial composite. Chapter 5 The chapter discusses the second part of the results. It focuses on magnitude of surface charge, pHpzc and kinetic studies. Fitting of the adsorption experimental data to kinetic and diffusion models is presented together with the error functions. Chapter 6 The chapter discusses part three of the results on equilibrium studies. The adsorption experimental data is fitted to equilibrium isotherm equations and error determination is presented. Thermodynamic parameters are calculated and interpreted. Chapter 7: Conclusion and recommendations are presented. The optimum reaction variables for cross-linking of Raw and Fenton treated pine cone were determined using FTIR analysis and found to be: 0.2 g pine biomass, 3.5 cm3 1.6-hexamethylene diisocyanate cross-linker, 50 cm3 anhydrous hexane solvent, 1.5 cm3 dibutyltin dilaurate catalyst, temperature of 50 °C and a reaction time of 4 hours. The pine surface showed an increase in phenolic, lactonic and carboxylic acid groups due to the modification. The pHpzc showed a decrease due to modification of the pine cone biomass. The pHpzc values for the pine and modified pine cone biomass were found to be: Raw = 7.49, Raw-HMDI modified = 6.68, Fenton treated pine = 5.40 and Fenton-HMDI modified = 6.12. The optimum pH for the adsorption of 2-nitrophenol onto raw pine and modified pine cone biomass was determined to be 6. The optimum adsorbent dosage was determined as 1.5 g/dm3. The adsorption kinetics show a good fit with the pseudo-second-order model. This suggests that surface adsorption is the controlling step in the adsorption of 2-nitrophenol onto pine cone biomass. The analysis of diffusion processes showed that the initial rapid stage during the adsorption is due to external mass transfer processes. The adsorption experimental data also showed that pore diffusion was rate-limiting amongst the diffusion processes. Pine modification using Fenton’s reagent and 1.6-hexamethylene diisocyanate increased magnitude of kinetic and diffusion parameters. Experimental data for 2-nitrophenol adsorption onto pine and modified pine cone biomass showed better correlation with the Redlich-Peterson and Hill isotherm models and poor correlation with the Freundlich isotherm model. This suggests that the mechanism does not show complete multilayer coverage with cooperative phenomena between adsorbate molecules. Thermodynamic parameters showed that the adsorption is feasible, spontaneous, and exothermic and results in a decrease in degree of disorder at the solid/liquid interface. An increase in temperature resulted in a decrease in adsorption capacity showing that the adsorption is physical. Pine modification using Fenton’s reagent and 1.6-hexamethylene diisocyanate increased magnitude of kinetic, diffusion and isotherm parameters. The kinetic and equilibrium results show that the adsorption of 2-nitrophenol onto pine cone biomass follows the order: Fenton treated-HMDI > Fenton treated > Raw-HMDI > Raw. Hence, it can be concluded that Fenton treatment and HMDI cross-linking modification did increase the adsorptive capabilities of the pine cone biomass. / VUT Research Directorate
432

Matériaux composites à matrice époxyde chargée par des fibres de palmier dattier : effet de l’oxydation au tempo sur les fibres / Epoxy matrix composites filled with date palm fibers : effect of tempo oxidation on fiber

Sbiai, Adil 03 June 2011 (has links)
A travers cette thèse, nous avons pu valoriser les rejets agricoles du palmier dattier (Phoenix L. dactylifera) (fibres issues des folioles) par leur introduction comme renfort fibreux dans la préparation des biocomposites à matrice polyépoxyde (DGEBA/IPD). Le but de la première partie de la thèse était l’étude de la modification chimique des fibres de palmier par oxydation au 2,2, 6,6–tétraméthylpipéridine-1-oxyle (TEMPO). Le suivi cinétique et la topologie de la réaction, ainsi que la caractérisation des fibres à l’état brut et à l’état oxydé, ont été aussi étudiés. Un modèle cinétique original a été proposé ensuite rendant compte du caractère hétérogène de cette réaction chimique. La deuxième partie était consacrée à l’étude cinétique et rhéocinétique de la polymérisation du système DGEBA/IPD seul et en présence de fibres brutes et oxydées. Parallèlement, l’étude thermique de la polymérisation du réseau final a été également réalisée. La dernière partie avait comme but l’étude des propriétés mécaniques aux petites et grandes déformations de ces composites et mettre en évidence l’effet de l’oxydation des fibres sur ces propriétés. D’autre part, le suivi de mise en forme par RTM (moulage par transfert de résine) a montré un effet positif de l’oxydation sur le déroulement de l’injection. Une meilleure mouillabilité du mat des fibres oxydées par la résine est à l’origine de l’amélioration du procédé. / To increase in value the agricultural waste products of the date palm tree -phoenix dactylifera l-, especially the fibers from the leaflets, their use as filler in polyepoxide matrix (dgeba / ipd) was investigated to prepare new bio-based composites. Our goal in the first part is to study the chemical modification of palm fiber by oxidation mediated by 2,2,6,6-tetramethylpiperidine-1-oxyl (tempo). The kinetic and the topology of the reaction, as well as the characterization of fibres in rough and oxidized state, were also studied. An original kinetic model was proposed taking into account the heterogeneous character of this chemical reaction. The second part was devoted to study the kinetics and rheokinetic of the polymerization of dgeba / ipd with and without modified and unmodified fibers. This enabled to show the effect of the introduction of the date palm tree fibers (oxidized and non oxidized) on the composite formation. The thermal properties of the prepared composites were also investigated in this part of work. In the last part of this work, the mechanical properties of these composites were investigated and enabled to highlight the effect of the fibers oxidation on these properties. In addition, the effect of oxidation on the course of the injection during the rtm process (moulding by transfer of resin) was investigated. A positive effect of the oxidation of the fibers on the course of the injection was obtained and was attributed to the higher wettability of oxidized fibres by the resin.
433

Les peptides antimicrobiens dérivés de la chromogranine A et Staphylococcus aureus : de l'analyse de l'interaction hôte-pathogène au développement de revêtement de polymère antimicrobien / Antimicrobial chromogranin A derived peptides and Staphylococcus aureus : from host pathogen interaction analysis to development of antimicrobial polymer coating

Aslam, Rizwan 15 April 2013 (has links)
Les chromogranines (Cgs) sont une famille de protéines acides exprimées dans les granules des cellules neuroendocrines et immunitaires. Plusieurs peptides dérivés des Cgs présentent des activités antimicrobiennes. L’objectif de ma thèse est d’évaluer l’interaction hôte-pathogène et ensuite de développer un polymère antimicrobien avec insertion du peptide antimicrobien cateslytin (CTL).Dans une première partie, nous avons évalué l’aptitude de la leukotoxine LukE/D à induire la sécrétion des neutrophiles et rôle des protéases bactériennes à dégrader les peptides dérivés de la CgA. Les neutrophiles activés sécrètent de nombreux composés que nous avons identifiés. De plus, la dégradation des PAMs dérivés de la CgA par les protéases de S.aureus a été déterminée. Sur tous les PAMs testés, CTL est le seul qui tue S.aureus et résister à dégradation. Par ailleurs, CgA et CgB sont dégradés par la protéase Glu-C pour produire de nouveaux fragments sans activité antibactérienne, mais d’activité antifongique.Dans une deuxième partie, nous avons décidé de préparer un revêtement conjugué à CTL. CTL-C est utilisé pour préparer des films avec le dépôt alterné de CHI et HA-CTL-C. Par la suite nous avons synthétisé HAFITC-CTL-C and HAFITC pour analyser leur interaction. HAFITC-CTL-C est rapidement détectable dans le cytoplasme sans provoquer la lyse cellulaire. De plus, les films contenant CTL-C ne sont pas toxiques pour les fibroblastes gingivaux humains.En conclusion, CTL est le seul peptide antimicrobien dérivé de la CgA qui peut tuer S.aureus et résiste à la dégradation protéolytique, ce qui est de bon augure pour de nouvelles études visant à développer des biomatériaux antimcrobiens. / Chromogranins (Cgs) are a family of acidic proteins, expressed in secretory granules of neuro-endocrine and immune cells. Several Cgs derived peptides express antimicrobial activity. Current study was aimed to evaluate host-pathogen interaction and ultimately to develop antimicrobial polymer with insertion of cateslytine (CTL).In first part, stimulatory ability of leukotoxin LukE/D to induce neutrophils secretions and role of bacterial proteases to degrade CgA-derived AMPs was evaluated. Activated neutrophils secrete various components which were identified. Later by using antimicrobial assays, several fractions were found active and later discussed with respect to proteomic analysis. Additionally, degradation of CgA derived AMPs by S. aureus proteases was demonstrated. Out of various AMPs tested, CTL was only that can kill S. aureus and resist protease degradation. Furthermore, CgA and CgB are processed by Glu-C protease to produce new fragments lacking antibacterial activity but presenting antifungal activity.Secondly, we aimed to prepare CTL conjugated biomaterial coating. CTL-C was used to prepare PEM films with alternative deposition of CHI and HA-CTL-C and evaluated for antimicrobial activities. Later on, we synthesized HAFITC-CTL-C and HAFITC to analyze their interaction. HAFITC-CTL-C was readily detectable in cytoplasm without provoking cell lysis. Moreover CTL-C inserted PEM films are non-toxic to human gingival fibroblast cells.In conclusion, CTL is the only CgA-derived AMP that can kill S. aureus and resistant to proteolytic degradation, which is a promising feature for further studies in order to develop antimicrobial biomaterials.
434

Effect of calcium phosphate ceramic architectural features on the self-assembly of microvessels in vitro

Gariboldi, Maria Isabella January 2018 (has links)
One of the greatest obstacles to clinical translation of bone tissue engineering is the inability to effectively and efficiently vascularise scaffolds. This limits the size of defects that can be repaired, as blood perfusion is necessary to provide nutrient and waste exchange to tissue at the core of scaffolds. The goal of this work was to systematically explore whether architecture, at a scale of hundreds of microns, can be used to direct the growth of microvessels into the core of scaffolds. A pipeline was developed for the production of hydroxyapatite surfaces with controlled architecture. Three batches of hydroxyapatite were used with two different particle morphologies and size distributions. On sintering, one batch remained phase pure and the other two batches were biphasic mixtures of α-tricalcium phosphate (α-TCP) and hydroxyapatite. Sample production methods based on slip casting of a hydroxyapatite-gelatin slurry were explored. The most successful of these involved the use of curable silicone to produce moulds of high-resolution, three dimensional (3D) printed parts with the desired design. Parts were dried and sintered to produce patterned surfaces with higher resolution than obtainable through conventional 3D printing techniques. Given the difficulties associated with the structural reproducibility of concave pores architectures in 3D reported in the literature, in this work, a 2.5D model has been developed that varies architectural parameters in a controlled manner. Six contrasting architectures consisting of semi-circular ridges and grooves were produced. Grooves and ridges were designed to have widths of 330 μm and 660 μm, with periodicities, respectively, of 1240 μm and 630 μm. Groove depth was varied between 150 μm and 585 μm. Co-cultures of endothelial cells and osteoblasts were optimised and used to grow microcapillary-like structures (referred to as "microvessels") on substrates. Literature shows that these precursors to microcapillaries contain lumina and can produce functional vasculature, demonstrating their clinical promise. The effects of the composition and surface texture of grooved samples on microvessel formation were studied. It was found that surface microtopography and phase purity (α-TCP content) did not affect microvessel formation. However, hydroxyapatite architecture was found to significantly affect microvessel location and orientation. Microvessels were found to form predominantly in grooves or between convexities. Two metrics - the degree of alignment (DOA) and the degree of containment (DOC) - were developed to measure the alignment of endothelial cell structures and their localisation in grooves. For all patterned samples, the CD31 (an endothelial cell marker) signal was at least 2.5 times higher along grooves versus perpendicular to grooves. In addition, the average signal was at least two times higher within grooves than outside grooves for all samples. Small deep grooves had the highest DOA and DOC (6.13 and 4.05 respectively), and individual, highly aligned microvessels were formed. An image analysis method that compares sample X-ray microtomography sections to original designs to quantify architectural distortion was developed. This method will serve as a useful tool for improvements to architectural control for future studies. This body of work shows the crucial influence of architecture on microvessel self-assembly at the hundreds of micron scale. It also highlights that microvessel formation has a relatively low sensitivity to phase composition and microtopography. These findings have important implications for the design of porous scaffolds and the refinement of fabrication technologies. While important results were shown for six preliminary architectures, this work represents a toolkit that can be applied to screen any 2.5D architecture for its angiogenic potential. This work has laid the foundations that will allow elucidating the precise correspondence between architecture and microvessel organisation, ultimately enabling the "engineering" of microvasculature by tuning local scaffold design to achieve desirable microvessel properties.
435

Synthèse et caractérisation d’hydrogels de fibrine et de polyéthylène glycol pour l’ingénierie tissulaire cutanée / Synthesis and characterization of fibrin/polyethylene glycol based for skin tissue engineering

Gsib, Olfat 20 March 2018 (has links)
Depuis plus d’une cinquantaine d’années, de formidables avancées ont été initiées dans le domaine de l’ingénierie tissulaire cutanée menant à la reconstruction in vitro de substituts de peau. La plupart sont des substituts dermiques destinés à être utilisés comme aide à la cicatrisation des plaies aigües et chroniques en complément des traitements de greffes conventionnels ainsi que pour l’augmentation des tissus mous. Bien qu’un nombre croissant de patients aient pu bénéficier de ces matrices dermiques, leur application clinique reste encore restreinte, en raison de leur coût élevé mais également à cause de résultats cicatriciels parfois peu satisfaisants. Par conséquent, il reste un défi de taille, celui de développer des substituts dermiques stimulant activement la cicatrisation, présentant un faible coût de production, sans propriétés antigéniques et possédant des propriétés mécaniques adaptées. Dans ce cadre, les hydrogels à base de fibrine constituent des candidats prometteurs, en particulier en raison du rôle central de cette protéine dans la cicatrisation. Le principal inconvénient est qu’à concentration physiologique, ces hydrogels sont faibles mécaniquement, ce qui les rend difficilement manipulables. L’objectif de cette thèse a été la mise au point ainsi que la caractérisation de différents hydrogels destinés à être utilisés comme substituts dermiques. Ces derniers présentent l’avantage d’associer les propriétés biologiques de la fibrine avec les propriétés mécaniques d’un polymère synthétique, le polyéthylène glycol dans une architecture de réseaux interpénétrés de polymères (RIP). Les résultats obtenus ont permis : - de confirmer les propriétés physico-chimiques des RIP développés initialement par nos collaborateurs de l’université de Cergy-Pontoise, - de valider en trois étapes (in vitro, ex vivo puis in vivo) la biocompatibilité de ces nouvelles matrices, destinées à être utilisées comme supports de culture 2D et pour l’augmentation des tissus mous, - d’élaborer et de caractériser des matrices macroporeuses, optimisées pour la culture 3D de fibroblastes de dermes humains. / Over the past five decades, we assisted in extraordinary advances in the field of skin tissue engineering which led to the in vitro reconstruction of a wide range of skin substitutes. Most of them are dermal substitutes: Their clinical application ranges from treating acute and chronic wounds to soft tissue augmentation. Although increasing numbers of patients have been treated with dermal substitutes, their clinical application has been limited by their substantial cost and some poor healing outcomes. Hence, there is still a challenge to produce a dermal substitute which enhance sufficiently wound healing. To this end, the substitute should exhibit suitable properties for enabling the repair process. Other requirements such as excellent biocompatibility, minimal antigenicity, ease to handle and cost-effective production are also essential. In this context, fibrin hydrogels constitute promising candidates for skin tissue engineering since fibrin fibers form a physiological and provisional backbone during wound healing. However, the poor mechanical properties of fibrin-based hydrogels at physiological concentration are an obstacle to their use. In this study, our aim was to design and characterize mechanically reinforced fibrin-based hydrogels by combining the intrinsic properties of a fibrin network with the mechanical features of a polyethylene glycol network using an interpenetrating polymer network (IPN) architecture. They are intended to be used as dermal scaffolds. The results obtained in this thesis: - Confirmed the suitable physico-chemical properties of IPN, first developed by our partner of the University of Cergy-Pontoise. - Validated their biocompatibility using a three-step approach (in vitro, ex vivo and in vivo assays). - Led to the synthesis and characterization of a new type of fibrin-based macroporous matrices, optimized for 3D dermal fibroblast culture.
436

Dreidimensionale Charakterisierung der Osseointegration von Titanimplantaten mittels Mikrocomputertomographie

Bernhardt, Ricardo 24 January 2007 (has links) (PDF)
Die Entwicklung und Erprobung von metallischen Implantatwerkstoffen mit biologischen Beschichtungen für den Einsatz im menschlichen Knochen verlangt, neben der Untersuchung grundlegender zellbiologischer Wechselwirkungen, eine ganzheitliche Betrachtung ihrer Wirkungsweise im lebenden Organismus. Die vorwiegend angewandte Methode zur Quantifizierung des Potentials von Biofunktionalisierungen metallischer Implantate ist dabei die histologische Auswertung. Diese stützt sich aber auf Informationen aus nur wenigen und eher zufälligen Schnittlagen im Probenvolumen, was mit einer hohen Anzahl an Tierexperimenten ausgeglichen wird. Mit der Mikrocomputertomographie steht neben der klassischen Histologie eine zerstörungsfreie Methode zur Verfügung, welche eine detaillierte dreidimensionale Darstellung des neugebildeten Knochengewebes ermöglicht. Die Abbildungsqualität des mineralischen Knochengewebes um Titanimplantate, als Grundlage für eine Vergleichbarkeit von Tomographie und Histologie, wurde anhand von drei Mikrofokus-Computertomographen und einem Synchrotron-Computertomographen am HASYLAB untersucht. Die tomographische Untersuchung von Hartgewebe einschließlich metallischer Implantate zeigte mit Hilfe von Synchrotronstrahlung die beste qualitative Übereinstimmung zur histologischen Bildgebung. Für die Quantifizierung der Knochenneubildung wurden interaktive Analysemodelle erarbeitet, welche eine vereinheitlichte Auswertung von histologischen und tomographischen Informationen erlaubt. Auf Grundlage der entwickelten Analyseprozeduren war es erstmals möglich, die statistische Belastbarkeit der Ergebnisse aus der histologischen und tomographischen Analyse zu untersuchen. Dabei konnte gezeigt werden, dass hinsichtlich der Herausstellung von Unterschieden bei der Osseointegration modifizierter Titanimplantate mit beiden Methoden ähnliche Ergebnistrends gefunden werden. Eine Signifikanz (p < 0,01) der Unterschiede bei der Knochenneubildung konnte jedoch ausschließlich mit der mikrotomographischen Analyse herausgestellt werden. Die Ergebnisse bei der Darstellung und Analyse des mineralischen Gewebes durch die Nutzung der Synchrotrontomographie gehen weit über die Grenzen der histologischen Untersuchungen hinaus. Durch den dreidimensionalen Charakter der Informationen ergeben sich dabei neue Bewertungsmodelle zur Beurteilung der Osseointegration von biofunktionalisierten Implantaten. Die mikrotomographische Analyse führt gegenüber der histologischen Auswertung durch die geringe Irrtumswahrscheinlichkeit der Ergebnisse bei deutlich verminderter Probenanzahl zu einer erheblichen Verringerung von Tierversuchen.
437

Διερεύνηση διεπιφανειακών φαινομένων μεταξύ βακτηρίων και βιοϋλικών

Κατσικογιάννη, Μαρία 12 January 2009 (has links)
Ένα από τα σημαντικότερα προβλήματα που προκύπτουν από την χρήση εμφυτευμάτων και ιατρικών συσκευών και που εμποδίζουν την μακροχρόνια χρήση τους είναι η εμφάνιση νοσοκομειακών σηψαιμικών επεισοδίων σχετιζόμενων με λοιμώξεις που προκαλούνται από πηκτάση αρνητικούς σταφυλόκοκκους, και κυρίως από τον S. epidermidis. Με δεδομένο ότι η εκτεταμένη χορήγηση αντιβιοτικών έχει οδηγήσει στην επικράτηση πολυανθεκτικών βακτηριακών στελεχών της φυσιολογικής χλωρίδας, η κατασκευή αντιβακτηριακών ή και βακτηριοστατικών βιοϋλικών κρίνεται επιβεβλημένη. Για το σκοπό αυτό απαραίτητη είναι η μελέτη και η κατανόηση του μηχανισμού προσκόλλησης των βακτηρίων στην επιφάνεια του βιοϋλικού. Στην κατεύθυνση αυτή διερευνήθηκε η επίδραση των φυσικοχημικών αλληλεπιδράσεων βακτηρίων-υλικών, του ρυθμού διάτμησης και της σχετικής συνεισφοράς τους στην ικανότητα των βακτηρίων να προσκολλώνται στην επιφάνεια του βιοϋλικού αλλά και να ενεργοποιούν τα γονίδια ica που είναι υπεύθυνα για την παραγωγή της εξωκυττάριας βλεννώδους ουσίας (slime) και συγκεκριμένα μιας πολυσακχαρικής φύσεως προσκολλητίνης (polysaccharide intercellular adhesin, PIA). Για τη μελέτη αυτή τροποιήθηκαν επιφανειακά με τεχνικές πλάσματος υπάρχοντα βιοϋλικά, παρασκευάστηκαν αυτό-οργανούμενα μονοστρωματικά συστήματα σε γυαλί και χαρακτηρίστηκαν φυσικοχημικά. Ελέγθηκε επίσης εάν οι θεωρίες κολλοειδών συστημάτων, και συγκεκριμένα η θερμοδυναμική, η DLVO και η εκτεταμένη DLVO μπορούν να εξηγήσουν τα πειραματικά αποτελέσματα. Τα αποτελέσματα έδειξαν ότι η βακτηριακή προσκόλληση μειώνεται με την αύξηση της επιφανειακής ενέργειας και του πολικού χαρακτήρα των υλικών, ενώ δεν επηρεάζεται σημαντικά από το μη πολικό τους χαρακτήρα. Η θερμοδυναμική θεωρία εξήγησε ικανοποιητικά τα αποτελέσματα για υψηλής ιοντικής ισχύος διαλύματα, ενώ η DLVO για χαμηλής. Η εκτεταμένη DLVO θεωρία εξήγησε ικανοποιητικά την επίδραση της φυσικοχημείας τόσο του διαλύματος όσο και της επιφάνειας στη βακτηριακή προσκόλληση. Η αύξηση του ρυθμού διάτμησης μείωσε την προσκόλληση των βακτηρίων με τρόπο που εξαρτώνταν από τις φυσικοχημικές αλληλεπιδράσεις βακτηρίων-υλικών, ενώ παράλληλα μείωσε την προβλεψιμότητα των παραπάνω θεωριών. Επομένως, η βακτηριακή προσκόλληση θεωρήθηκε ως αποτέλεσμα του συνδιασμού φυσικοχημικών αλληλεπιδράσεων και σχηματισμού μακρομοριακών δεσμών. Τα αποτελέσματα από τη μελέτη της έκφρασης των γονιδίων ica έδειξαν ότι η έκφρασή τους αυξάνεται με την μείωση της επιφανειακής ενέργειας του υλικού και την αύξηση του ρυθμού διάτμησης. / One of the major problems arising from the use of implants and medical devices and impeding their long-term use is the emergence of nosocomial septic incidents related to infections caused by Coagulase negative staphylococci, most notably by S. epidermidis. The extensive use of antibiotics has resulted in multi-resistant bacterial strains of normal flora, making the need for developing antibacterial biomaterials of great importance. For this purpose it is necessary to study and understand the mechanism of bacterial adhesion to the surface of biomaterials. In this direction, we investigated the influence of the physicochemical interactions between bacteria and materials, the shear rate and their relative contribution on the ability of bacteria to adhere to the biomaterial surface and to activate the ica genes, which are responsible for the production of extracellular polymeric (slime), and in particular for the production of polysaccharide intercellular adhesin (PIA), that mediates cell-cell interactions. For this study, the surface of existing biomaterials was modified by plasma methods, self-assembled monolayers were prepared on glass, and the materials were physicochemicaly characterized. The applicability of the colloidal theories, such as the thermodynamic, the DLVO and the extended DLVO, for the prediction of bacterial adhesion was examined as well. The results showed that the increase in material surface energy and its polar component reduced bacterial adhesion, whereas adhesion was not significantly influenced by the non-polar character of the material surface. The thermodynamic theory explained satisfactorily the results for high ionic strength solutions, while DLVO for solutions with low ionic strength. The extended DLVO theory explained well the effects of both the solution and material surface properties to bacterial adhesion. The increase in shear rate reduced the number of adherent bacteria in a manner that depended on the bacteria-material physicochemical interactions, but not in the way that the above theories predicted. Therefore, bacterial adhesion considered as the result of a combination of the physicochemical and hydrodynamic interactions, and the formation of macromolecular bonds. The investigation of ica genes expression showed that the expression enhanced by the decrease in the material surface energy the increase in shear rate.
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Electric Stimuli as Instructive Cues to Guide Cellular Differentiation on Electrically Conductive Biomaterial Substrates in vitro

Greeshma, T January 2015 (has links) (PDF)
Directing differential cellular response by manipulating the physical characteristics of the material is regarded as a key challenge in biomaterial implant design and tissue engineering. In developing various biomaterials, the influence of substrate properties, like surface topography, stiffness and wettability on the cell functionality has been investigated widely. However, such study to probe into the influence of substrate conductivity on cell fate processes is rather limited. The need for such an understanding is based on the fact that specific tissues in the body are electrically active in nature, such as in brain, heart and skeletal muscle. These tissues make use of electrical conductivity as an effective cue for tissue homeostasis, development, regeneration and so on. Moreover, understanding the importance of underlying conductivity in basic biological processes is essential in developing electrically conductive biomaterials with the ability to simulate normal electrophysiology of the body by interfacing with bioelectric fields in cells and tissues. Electrical stimulation and charge conduction can regulate numerous intracellular signalling pathways, can interact with cytoskeleton proteins to modulate the morphology, increase protein synthesis and on the more can favor the ECM protein conformational changes. On these grounds, the present dissertation illustrates that persistent electrical activation influences the multipotency of hMSCs and acts like a promoter towards selective differentiation of hMSCs into neural/cardiomyogenic or osteogenic lineage. Besides, continual exposure to electric field stimulated conducting culture environments lead to growth arrest while enhancing differentiation. In total, this dissertation suggests the dominant role of conductivity in inducing my oblast differentiation and hMSc lineage commitment that involves EF stimulated in vitro culture conditions. Also, a knowledge base with qualitative and quantitative understanding of stem cells and their response to substrate physical properties and external field effect was developed through this comprehensive study. Such an improved understanding of the ability of hMSCs in sensing electrical conductivity may lead to the development of culture additives/conditions that better induce directed stem cell differentiation.
439

ARSENIC REMOVAL BY PHYTOFILTRATION AND SILICON TREATMENT : A POTENTIAL SOLUTION FOR LOWERING ARSENIC CONCENTRATIONS IN FOOD CROPS

Sandhi, Arifin January 2017 (has links)
Use of arsenic-rich groundwater for crop irrigation can increase the arsenic (As) content in food crops and act as a carcinogen, compromising human health. Using aquatic plant based phytofiltration is a potential eco-technique for removing arsenic from water. The aquatic moss species Warnstorfia fluitans grows naturally in mining areas in northern Sweden, where high concentrations of arsenic occur in lakes and rivers. This species was selected as a model for field, climate chamber and greenhouse studies on factors governing arsenic removal and arsenic phytofiltration of irrigation water. The arsenic and silicon (Si) concentrations in soil, water and plant samples were measured by AAS (atomic absorption spectrophotometry), while arsenite and arsenate species were determined using AAS combined with high pressure liquid chromatography (HPLC) with an anion exchange column. The arsenic content in grains of hybrid and local aromatic rice (Oryza sativa) cultivars with differing arsenic accumulation factor (AF) values was investigated in an arsenic hotspot in Bangladesh. The results showed that arsenic AF was important in identifying arsenic-safer rice cultivars for growing in an arsenic hotspot. The study based on silicon effect on arsenic uptake in lettuce showed that arsenic accumulation in lettuce (Lactuca sativa) could be reduced by silicon addition. The aquatic moss had good phytofiltration capacity, with fast arsenic removal of up to 82% from a medium with low arsenic concentration (1 µM). Extraction analysis showed that inorganic arsenic species were firmly bound inside moss tissue. Absorption of arsenic was relatively higher than adsorption in the moss. Regarding effects of different abiotic factors, plants were stressed at low pH (pH 2.5) and arsenic removal rate was lower from the medium, while arsenic efflux occurred in arsenate-treated medium at low (12°C) and high (30°C) temperature regimes. Besides these factors, low oxygenation increased the efficiency of arsenic removal from the medium. Finally, combining W. fluitans as a phytofilter with a lettuce crop on a constructed wetland significantly reduced the arsenic content in edible parts (leaves) of lettuce. Thus W. fluitans has great potential for use as an arsenic phytofilter in temperate regions. / <p>QC 20170323</p>
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Développement d'implants nanofibreux actifs pour la régénération osseuse / Bioactive nanofibrous implants for bone tissue regeneration

Eap, Sandy 07 October 2014 (has links)
Notre équipe a développé une stratégie innovante de fonctionnalisation d’implants nanofibreux synthétiques à base de nanoréservoirs actifs pour la médecine régénérative osseuse. Notre objectif essentiel est de proposer un implant synthétique, biodégradable, et nanostructuré permettant d’accélérer la réparation du tissu osseux. Ces nouveaux implants synthétiques représentent un choix alternatif aux membranes de collagène d’origine animale. Notre stratégie consiste à construire des nanoréservoirs de chitosane, contenant des facteurs ostéoinducteurs tels que la BMP-2 afin d’enrober les nanofibres de nos implants. L’implant synthétique et biomimétique a été conçu à partir du le poly(ε-caprolactone) (PCL),polymère biocompatible et biodégradable approuvé par la FDA, et élaboré grâce à la technique de l’electrospinning afin de mimer la matrice extracellulaire. L’optimisation de ce procédé a permis la mise en oeuvre d’implants d’épaisseurs différentes (jusqu’à 10mm). La double fonctionnalisation de l’implant a permis de le rendre bioactif et vivant en utilisant la combinaison de facteur de croissance et de cellules souches mésenchymateuses. L’efficacité de la double fonctionnalisation des implants de PCL a ainsi été mise en évidence par l’accélération de la régénération osseuse in vivo.L’activité de ces implants fonctionnalisés de nanoréservoirs bioactifs est en cours d’analyse dans le cadre de tests précliniques pour une application maxillo-faciale, parodontale et orthopédique en vu d’obtenir un marquage CE. De plus, une start-up (ARTiOS NanoMed) basée sur cette nanotechnologie a été crée. En conclusion, nous pensons que la technologie développée par notre laboratoire a permis une avancée dans le domaine de la régénération osseuse et que cette technologie présente un fort potentiel d’application en clinique. / Our team has developped a novel and unique strategy to functionnalize nanofibrous and synthetic implants based on active nanoreservoirs for bone regeneration. We propose a new synthetic biodegradable and nanostructured implant to accelarate restoration of bone tissue. These new implants could replace collagen membranes from animal origin. The nanoreservoirs are based on chitosan containing osteoinductive growth factors such as BMP-2. Poly(ε-caprolactone) (PCL) is a biodegradable and biocompatible polymer approved by FDA and has been used to produce the synthetic and biomimetic implants by electrospinning in order to mimic the bone extracellular matrix. Optimization of this process has allowed the elaboration of nanofibrous implants with different thicknesses reaching 10 mm. Using the combination of growth factors and mesenchymal stem cells in a double functionalization created a bioactive and living implant. This strategy has been validated in vitro and in vivo thanks to bone site implantation in murin model. Acceleration of bone regeneration in vivo has brought to light the efficiency of the double functionalization onto the PCL implants.The functionalized implants bioactivity is still currently in study for pre-clinical trials in order to obtain authorization for applications in maxillo-facial, parodontal, and orthopaedic fields. Moerover, astat-up (ARTiOS NanoMed) based on this nanotechnology has been founded.To conclude, we believe that our nanotechnology could lead to a new generation of engineered bone implants which has a great potential to be used in the clinic.

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