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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.
41

Caracterização estrutural das hemiceluloses de paredes celulares de cana-de-açúcar / Characterization of the sugarcane cell wall hemicelluloses

Crivellari, Augusto Cesar 11 June 2012 (has links)
O Brasil, segundo maior produtor mundial de biocombustíveis, produz etanol a partir da extração e fermentação de sacarose de colmos de cana-de-açúcar. A utilização da energia presente nas ligações químicas entre os carboidratos da parede celular (celulose, hemiceluloses e pectina), das biomassas de folha e bagaço (hoje ambos considerados resíduos de produção), é uma possibilidade para o incremento, de cerca de 3 vezes o valor atual, na produção de etanol. O entendimento da estrutura química dos polissacarídeos da parede celular de cana-de-açúcar é imprescindível para que esta tecnologia seja desenvolvida. O presente trabalho teve como objetivo isolar as hemiceluloses de colmo de cana-de-açúcar e estudar as suas estruturas químicas. Para tal, utilizou-se AIR (Alcohol Insoluble Residue) - parede celular sem açúcar solúvel - de colmo e folha de cana-de-açúcar SP80-3280 em hidrólises enzimáticas com endo-β-xilanase, liquenase e celulase isoladamente ou em conjunto de forma a determinar a estrutura fina dos polímeros atacáveis por tais hidrolases. O AIR de colmo também foi submetido ao fracionamento da parede celular com oxalato de amônio, seguido de extrações com 1M e 4M de NaOH para a separação das hemiceluloses. Somente as frações 1M e 4M de NaOH foram analisadas, através de hidrólises com endo-β-xilanases, seguido da análise dos oligossacarídeos resultantes por HPAEC-PAD (High Performance Anionic Exchange Chromatography with Pulsed Amperometric Detection) e por espectrometria de massas MALDI-TOF. Paralelamente, grupos de oligossacarídeos provenientes de hidrólises do colmo com endo-β-xilanase foram isolados por cromatografia em camada delgada (TLC) preparativa e, em seguida, hidrolisados com α-arabinofuranosidases e analisados por PACE (Polyacrylamide Carbohydrate Electrophoresis) para o esclarecimento da estrutura fina de arabinoxilanos. Os resultados obtidos mostraram a presença de xiloglucano na fração NaOH 4M em pequena proporção, cerca de 3% da parede celular, sendo este xiloglucano de 2 tipos: estrutura fina típica de gramíneas (composta por glucose, e os oligossacarídeos isoprimeverose, XG, XXG, XXGG, XXGGG) e estrutura fina de eudicotiledôneas e monocotiledôneas não-comelinóides (composta por oligossacarídeos: XXXG, XLXG/XXLG, XXXXG). A análise por MALDI-TOF da hidrólise das frações 1M e 4M de colmo de cana-de-açúcar com endo-β-xilanase revelou a existência de xilanos lineares (série homóloga de xilanos) em conjunto com um grupo de xilanos ramificados com arabinose de forma regular, com motivos arabinosilados com até 6 xiloses na cadeia principal. As hidrólises com endo-β-xilanase e liquenase em conjunto revelaram que o arabinoxilano e o β-glucano, juntos, perfazem cerca de 40% da parede celular de cana-de-açúcar, e não interferem na hidrólise uma da outra, permitindo o uso concomitante das enzimas em processos industriais. Além disso, especula-se que as arabinoses do arabinoxilano interagem, possivelmente, através de ligações por compostos fenólicos, prevenindo a ação enzimática. O presente trabalho começa a desvendar a estrutura fina das principais hemiceluloses da parede celular de colmo de cana-de-açúcar e aponta para a necessidade de experimentos que permitam compreensão de outros níveis de complexidade da parede celular, como por exemplo, as ramificações com agliconas e interações entre os polissacarídeos. / Brazil is the second-generation ethanol producer in the World, obtaining it from sugarcane soluble sugar from culms. The second generation ethanol consists of using the energy present in the covalent linkages of the cell wall carbohydrates (cellulose, hemicelluloses and pectin) from culms and leaves (both considered nowadays as litter). This is considered as a great opportunity to increase ethanol production up to 3 times the current figures. The knowledge about sugarcane polysaccharide structure is crucial for the development of the second-generation ethanol technology. This work, aimed at the isolation and structural studis of the hemicellulosic components of the sugarcane cell walls. To achieve this, AIR (Alcohol Insoluble Residue) from culms and leaves (SP 80-3280 variety) were digested with endo-β-xylanase, lichenase and cellulase (in different sequences, or with isolated or combined enzymes) to help determining the fine structures of the polysaccharides. The AIR from culm was fractionated with increasing alkali concentrations (NaOH 0,1M, 1M and 4M) to purify the different hemicelluloses. Only the 1M and 4M fractions were analyzed, after digestions with endo-β-xylanase, followed by HPAEC-PAD (High Performance Anionic Exchange Chromatography with Pulsed Amperometric Detection) and MALDI-TOF Mass Spectrometry analyses. Also, the oligosaccharides obtained by the endo-β-xylanase digestion were isolated by preparative TLC (Thin Layer Chromatography), re-digested with α-arabinofuranosidases and finally analyzed by PACE (Polyacrylamide Carbohydrate Electrophoresis) in order to clarify the fine structure of the arabinoxylan from sugarcane culm. The same fractionated material was digested by an endo-β-glucanase to clarify the xyloglucan structure. The results showed that in the 4M fraction, a small concentration of xyloglucan can be found (ca. 3% of the total hemicelluloses), and this polysaccharide has the typical grass structure: XG, XXG, XXGG and XXGGG/XLGG. Other oligosaccharides, typical from eudicotyledons were also found: the XXXG, XLXG/XXLG and XXXXG. The MALDI-TOF and PACE analyses performed after digestion with endo-β-xylanase and α-arabinofuranosidases, revealed the presence of linear xylan oligosaccharides (from 2 to 14) and also fragments with arabinose substitutions. The digestions with endo-β-xylanase and lichenase at the same time, revealed that the arabinoxylan and β-glucans, are 40% of all the sugarcane cell wall mass, and one enzyme does not interfere in the activity of the other. The present work starts to clarify the fine structure of the sugarcane culm (and leaves) major hemicelluloses, and also suggest that experiments aimed at understanding cell wall complexity are important steps to help developing efficient cellulosic ethanol technologies to obtain second generation ethanol from sugarcane biomass.
42

Mise en évidence d’éléments de signalisation en aval du récepteur d’auxine ABP1 / Discovering of new signalling components downstream the auxin receptor ABP1

Paque, Sébastien 07 June 2013 (has links)
L’auxine est une hormone fondamentale dans le développement et la physiologie de la plante. L’obtention des plantes conditionnelles pour ABP1 a permis la mise en évidence de son importance dans la signalisation de l’auxine. Ainsi ABP1 agirait d’une part sur l’endocytose de vésicules à clathrine au niveau de la membrane plasmique et d’autre part sur la stabilité des Aux/IAAs. Ce dernier résultat suggère qu’une voie de signalisation en aval d’ABP1 permet de modifier l’homéostasie de la voie de régulation transcriptionnelle de l’auxine, la voie SCFTIR/AFBs.Mon travail de thèse a consisté à caractériser les plantes inactivées pour ABP1 lors de la croissance à l’obscurité dans la plante modèle Arabidopsis thaliana. Mon étude montre qu’ABP1 contrôle l’expansion cellulaire en jouant sur la plasticité pariétale. J’ai ainsi pu mettre en évidence une modification de la proportion de formes fucosylées des chaînes latérales des xyloglucanes, le principal hémicellulose de la paroi primaire chez Arabidopsis. Cette modification de la fucosylation des xyloglucanes requiert des changements d’expressions géniques médiés ce qui conforte l’existence d’une voie de signalisation reliant ABP1 à la voie SCFTIR/AFBs.En parallèle, j’ai mené une approche génétique de recherche de suppresseurs du phénotype lié à l’inactivation d’ABP1 à l’obscurité. Parmi les dix lignées validées, j’ai d’ores et déjà identifié le gène DCL3 comme étant impliqué dans la suppression du phénotype ss12k et mis en évidence l’implication de la voie d’extinction de gènes par l’intermédiaire de petits ARNs non codant (voie RdDM) dans le contrôle de l’expansion cellulaire. / Auxin is a key hormone concerning the control of plant physiology and the impact on plant development. Conditional plants for ABP1 allowed the post embryonic studies and have contributed to demonstrate the involvement of ABP1 in a broad range of cellular and developmental responses including the clathrin-dependent endocytosis and the regulation of Aux/IAAs homeostasis. These datas revealed that an ABP1-dependent pathway is acting on transcriptional regulation by modulating the SCFTIR/AFBs signaling pathway. I took advantage of the phenotype of dark grown seedlings to study cell expansion in ABP1 loss of function background. ABP1 knockdown induced modifications of fucosylated form of xyloglucan side chains that are the main hemicellulose in Arabidopsis primary cell wall. All data converge to show that this effect results from alterations of expression of cell wall related genes via the modulation of the SCFTIR/AFBs pathway. In parallel, I used a suppressor approach to discover new signaling components downstream of ABP1. Characterisation of one of the suppressor leads to the identification of a loss of function allele of DCL3. This data demonstrates the involvement of the RNA directed DNA methylation pathway downstream of ABP1.
43

Engineering carbohydrate-active enzymes: specificity and activity remodeled

Addington, Trevor 26 January 2009 (has links)
To understand and modify the secondary cell walls of plants the project group Enzyme Discovery in Hybrid Aspen for Fiber Engineering (EDEN) was founded composed of nine laboratories with funding from the European Commission. The main target of EDEN´s research is to genetically engineer fiber structure in order to produce transgenic trees with modified properties for the pulp and paper industries. In this target framework, the Populus tremula x tremuloides xyloglucan endotransglycosylase (PttXET16A) was selected for in-depth study of its transglycosylase activity catalyzing cleavage and reconnection of xyloglucan molecules, which is proposed to be involved in secondary cell wall morphogenesis. The creation of a family 16 carbohydrate active enzyme -glucanase/XET hybrids were attempted in order to design a chimeric enzyme with one or more of the following altered properties: specificity, activity, and or stability. The two enzymes, Bacillus licheniformis 1,3-1,4--glucanase and Populus tremula x tremuloides xyloglucan endotransglycosylase, are members of the same enzymatic family and have highly homologous 3-dimensional structures. However, the enzymes exhibit different activities, one a hydrolase the other a transferase; different specificities, one accepts only linear glcosydic substrates while the other branched substrates; and different stabilities. Hybrid enzyme construction represented an investigational challenge in order to understand what physical characteristics of both enzymes attribute to the specific pattern of activity and specificity observed.Removal of the 1,3-1,4--glucanase major loop resulted in a folded protein which still maintained some β-glucan hydrolase activity. However, no xyloglucan endotransglycosylase-like activity or specificity was observed. Next, point mutations of the β-sheets forming the enzymatic binding site cleft were mutated to resemble PttXET16A residues. The final chimeric protein neither exhibited XET nor β-glucanase activities. Structural analysis by X-ray crystallography revealed a major unexpected structural rearrangement providing a clear insight for further enzyme engineering. / Amb la finalitat d'entendre i modificar la paret cel·lular secundària de les plantes, es va fundar el grup Enzyme Discovery in Hibrid Aspen for Fibern Engineering (EDEN) composat per nou laboratoris amb la finançament de la Comissió Europea. El principal objectiu de la recerca del grup EDEN és enginyar genèticament l'estructura de fibres per tal de produir arbres transgènics amb propietats modificades per les indústries de la polpa i el paper.En el marc d'aquest projecte, es va seleccionar el Populus tremula x tremuloides xiloglucà endotransglicosilasa (PttXET16A) per estudiar en profunditat la seva activitat transglicosilasa catalitzant el trencament i la reconnexió de molècules de xiloglucà, el qual sembla estar involucrat en la morfogènesi de la paret cel·lular secundària. D'aquesta manera, s'intentà crear una família 16 d'híbrids de l'enzim actiu amb carbohidrats -glucanasa/XET per tal de dissenyar un enzim quimèric amb una o més de les propietats següents alterades: especificitat, activitat i/o estabilitat.Els dos enzims, Bacillus licheniformis 1,3-1,4--glucanasa i Populus tremula x tremuloides xiloglucà endotransglicosilasa, són membres de la mateixa família enzimàtica i tenen una gran homologia en les seves estructures en 3-dimensions. Tot i així, aquests enzims presenten diferents activitats, un presenta activitat hidrolasa i l'altre, transferasa; diferents especificitats, un accepta només substrats glicosílics lineals mentre l'altre, substrats ramificats; i diferents estabilitats. La construcció d'un enzim híbrid representa un repte en la investigació amb la finalitat d'entendre quines característiques físiques dels dos enzims s'atribueixen al model específic de l'activitat i especificitat observada.L'extracció del llaç més gran de l'1,3-1,4--glucanasa va resultar en l'obtenció d'una proteïna plegada que encara manté certa activitat hidrolasa del -glucà. Tot i això, no s'observà activitat o especificitat similar a la xiloglucà endotransglicosilasa. A partir d'aquí, es realitzaren mutacions puntuals a diferents punts de les fulles  que formen l'escletxa del lloc d'unió de l'enzim per assemblar-se als residus del PttXET16A. La proteïna quimèrica final tampoc presentava activitat XET ni -glucanasa. L'anàlisi de l'estructura per cristal·lografia de raigs X revelà una major reorganització estructural de l'esperada proveint el nou enzim d'un clar espai intern que obra moltes més portes a l'enginyeria de l'enzim. / Con la finalidad de entender y modificar la pared celular secundaria de las plantas, se fundó el grupo Enzyme Discovery in Hibrid Aspen for Fibern Engineering (EDEN) compuesto por nueve laboratorios con la financiación de la Comisión Europea. El principal objetivo de la búsqueda del grupo EDEN es ingeniar genéticamente la estructura de fibras para producir árboles transgénicos con propiedades modificadas para las industrias de la pulpa y el papel. En el marco de este proyecto, se seleccionó el Populus tremula x tremuloides xiloglucán endotransglicosilasa (PttXET16A) para estudiar en profundidad su actividad transglicosilasa catalizando la rotura y la reconnexión de moléculas de xiloglucán, el cual parece estar involucrado en la morfogénesis de la pared celular secundaria. De esta forma, se intentó crear una familia 16 de híbridos de la enzima activa con carbohidratos -glucanasa/XET con la finalidad de diseñar una enzima quimérica con una o más de las propiedades siguientes alteradas: especificidad, actividad y/o estabilidad. Las dos enzimas, Bacillus licheniformis 1,3-1,4--glucanasa y Populus tremula x tremuloides xiloglucà endotransglicosilasa, son miembros de la misma familia enzimática y tienen una gran homología en sus estructuras en 3-dimensiones. Aún así, estas enzimas presentan diferentes actividades, una tiene actividad hidrolasa y la otra, transferasa; diferentes especificidades, una acepta sólo sustratos glicosílicos lineales mientras la otra, sustratos ramificados; y diferentes estabilidades. La construcción de una enzima híbrida representa un reto dentro de la investigación con la finalidad de entender qué características físicas de las dos enzimas se atribuyen al modelo específico de la actividad y especificidad observada. La extracción del lazo más grande de la 1,3-1,4--glucanasa resultó en la obtención de una proteína plegada que todavía mantiene cierta actividad hidrolasa del -glucán. Aún así, no se observó actividad o especificidad similar a la xiloglucán endotransglicosilasa. A partir de este punto, se realizaron mutaciones puntuales a diferentes puntos de las hojas  que forman la brecha del lugar de unión de la enzima por asemejarse a los residuos del PttXET16A. La proteína quimérica final tampoco presentaba actividad XET ni -glucanasa. El análisis de la estructura por cristalografía de rayos X reveló una mayor reorganización estructural de la esperada proveyendo la nueva enzima de un claro espacio interno que obre muchas más puertas a la ingeniería de la enzima.
44

Strategies for cellulose fiber modification

Persson, Per January 2004 (has links)
<p>This thesis describes strategies for and examples ofcellulose fiber modification.The ability of an engineered biocatalyst, acellulose-binding module fused to the<i>Candida antarctica</i>lipase B, to catalyze ring-openingpolymerization of e-caprolactone in close proximity tocellulose fiber surfaces was explored. The water content in thesystem was found to regulate the polymer molecular weight,whereas the temperature primarily influenced the reaction rate.The hydrophobicity of the cellulose sample increased as aresult of the presence of surface-deposited polyester.</p><p>A two-step enzymatic method was also investigated. Here,Candida antarctica lipase B catalyzed the acylation ofxyloglucan oligosaccharides.The modified carbohydrates werethen incorporated into longer xyloglucan molecules through theaction of a xyloglucan endotransglycosylase. The modifiedxyloglucan chains were finally deposited on a cellulosesubstrate.</p><p>The action of<i>Candida antarctica</i>lipase B was further investigated inthe copolymerization of e-caprolactone and D,L-lactide.Copolymerizations with different e-caprolactone-to-D,L-lactideratios were carried out. Initially, the polymerization wasslowed by the presence of D,L-lactide. During this stage,D,L-lactide was consumed more rapidly than ε-caprolactoneand the incorporation occurred dimer-wise with regard to thelactic acid units.</p><p>Morphological studies on wood fibers were conducted using asol-gel mineralization method. The replicas produced werestudied, without additional sample preparation, by electronmicroscopy and nitrogen adsorption. Information concerning thestructure and accessibility of the porous fiber wall wasobtained. Studies of never-dried kraft pulp casts revealedmicro-cavities and cellulose fibrils with mean widths of 4.7(±2) and 3.6 (±1) nm, respectively.</p><p>Finally, cationic catalysis by simple carboxylic acids wasstudied. L-Lactic acid was shown to catalyze the ring-openingpolymerization of ε-caprolactone in bulk at 120 °C.The reaction was initiated with methylß-D-glucopyranoside, sucrose or raffinose, which resultedin carbohydrate-functionalized polyesters. The regioselectivityof the acylation was well in agreement with the correspondinglipase-catalyzed reaction. The polymerization was alsoinitiated with a hexahydroxy-functional compound, whichresulted in a dendrimer-like star polymer. The L-lactic acidwas readily recycled, which made consecutive reactions usingthe same catalyst possible.</p><p><b>Keywords:</b><i>Candida antarctica</i>lipase B, cationic catalysis,cellulose-binding module, dendrimer, enzymatic polymerization,fiber modification, silica-cast replica, sol-gelmineralization, organocatalysis, xyloglucanendotransglycosylase</p>
45

Ultrastructure of the Primary Cell Wall of Softwood Fibres Studied using Dynamic FT-IR Spectroscopy

Stevanic Srndovic, Jasna January 2008 (has links)
<p>The primary cell wall is a complex multipolymer system whose composite structure has been mostly determined from chemical and biochemical studies. Although the primary cell wall serves a central role, with regard to the connective properties of fibres, knowledge about the interactions among the polymers, when it comes to the mechanical properties, is very limited. The physical properties of the polymers, i.e. their elastic and viscous deformations, as well as the ultrastructure of the polymers, i.e. the interactions among the polymers in the outer fibre wall layers that lead to this behaviour, are still not fully understood.</p><p>The aim of this study was to examine how the different wood polymers, viz. lignin, protein, pectin, xyloglucan and cellulose, interact in the outer fibre wall layers of the spruce wood tracheid. The initial objective was to separate an enriched primary cell wall material from a first stage TMP, by means of screening and centri-cleaning. From this material, consisting of the primary cell wall (P) and outer secondary cell wall (S1) materials, thin sheets were prepared and analysed using a number of different analytical methods. The major measuring technique used was dynamic Fourier transform infra-red (FT-IR) spectroscopy in combination with dynamic 2D FT-IR spectroscopy. This technique is based on the detection of small changes in molecular absorption that occur when a sinusoidally stretched sample undergoes low strain. The molecular groups affected by the stretching respond in a specific way, depending on their environment, while the unaffected molecular groups provide no response to the dynamic spectra, by producing no elastic or viscous signals. Moreover, the dynamic 2D FT-IR spectroscopy provides useful information about various intermolecular and intramolecular interactions, which influence the reorientability of functional groups in a polymer material.</p><p>Measurements of the primary cell wall material, using dynamic FT-IR spectroscopy, indicated that strong interactions exist among lignin, protein and pectin, as well as among cellulose, xyloglucan and pectin in this particular layer. This was in contrast to the secondary cell wall, where interactions of cellulose with glucomannan and of xylan with lignin were dominant. It was also indicated that the most abundant crystalline cellulose in the primary cell wall of spruce wood fibres is the cellulose Iβ allomorph, which was also in contrast to the secondary cell wall, where the cellulose Iα allomorph is more dominant. The presence of strong interactions among the polymers in the primary cell wall and, especially, the relatively high content of pectin and protein, showed that there is a very good possibility of selectively attacking these polymers in the primary cell wall. The first selective reaction chosen was a low degree of sulphonation, applied by an impregnation pretreatment of chips with a very low charge of sodium sulfite (Na2SO3). This selective reaction caused some structural modification of the lignin, a weakening of the interactions between lignin;pectin, lignin;protein and pectin;protein, as well as an increased softening of the sulphonated primary cell wall material, when compared to the unsulphonated primary cell wall material. All this resulted in an increased swelling ability of the material.</p>
46

Heterologous expression, characterization and applications of carbohydrate active enzymes and binding modules

Kallas, Åsa January 2006 (has links)
Wood and wood products are of great economical and environmental importance, both in Sweden and globally. Biotechnology can be used both for achieving raw material of improved quality and for industrial processes such as biobleaching. Despite the enormous amount of carbon that is fixed as wood, the knowledge about the enzymes involved in the biosynthesis, re-organization and degradation of plant cell walls is relatively limited. In order to exploit enzymes more efficiently or to develop new biotechnological processes, it is crucial to gain a better understanding of the function and mechanism of the enzymes. This work has aimed to increase the knowledge about some of the enzymes putatively involved in the wood forming processes in Populus. Xyloglucan endotransglycosylases and a putative xylanase represent transglycosylating and hydrolytic enzymes, respectively. Carbohydrate binding modules represent non-catalytic modules, which bind to the substrate. Among 24 genes encoding for putative xyloglucan endotransglycosylases or xyloglucan endohydrolases that were identified in the Populus EST database, two were chosen for further studies (PttXTH16-34 and PttXTH16-35). The corresponding proteins, PttXET16-34 and PttXET16-35, were expressed in P. pastoris, purified and biochemically characterized. The importance of the N-glycans was investigated by comparing the recombinant wild-type proteins with their deglycosylated counterparts. In order to obtain the large amounts of PttXET16-34 that were needed for crystallization and development of biotechnological applications, the conditions for the large-scale production of PttXET16-34 in a fermenter were optimized. In microorganisms, endo-(1,4)-β-xylanases are important members of the xylan degrading machinery. These enzymes are also present in plants where they might fulfill a similar, but probably more restrictive function. One putative endo-(1,4)-β-xylanase, denoted PttXYN10A, was identified in the hybrid aspen EST library. Sequence analysis shows that this protein contains three putative carbohydrate-binding modules (CBM) from family 22 in addition to the catalytic module from GH10. Heterologous expression and reverse genetics were applied in order to elucidate the function of the catalytic module as well as the binding modules of PttXYN10A. Just as in microorganisms, some of the carbohydrate active enzymes from plants have one or more CBM attached to the catalytic module. So far, a very limited number of plant CBMs has been biochemically characterized. A detailed bio-informatic analysis of the CBM family 43 revealed interesting modularity patterns. In addition, one CBM43 (CBM43PttGH17_84) from a putative Populus b-(1,3)-glucanase was expressed in E. coli and shown to bind to laminarin (β-(1,3)-glucan), mixed-linked β-(1,3)(1,4)-glucans and crystalline cellulose. Due to their high specificity for different carbohydrates, CBMs can be used as probes for the analysis of plant materials. Generally, they are more specific than both staining techniques and carbohydrate-binding antibodies. We have used cellulose- and mannan binding modules from microorganisms as tools for the analysis of intact fibers as well as processed pulps. / QC 20100903
47

Synthèse et études de l'auto-assemblage en solution de diblocs amphiphiles à base de xyloglucanes et application pour la stabilisation de protéines / Synthesis and self-assembly properties in solution of amphiphilic xyloglucan-based block copolymer and their use as protein stabilizer.

Gauche, Cony 22 April 2013 (has links)
Ce travail décrit une nouvelle route synthétique qui a pour objectif l'obtention de diblocs amphiphiles constitués uniquement d'oligosaccharides issus de xyloglucanes des graines de Tamarin. Les xylogluco-oligosaccharides (XGOs, DP7, 8, 9) de tailles parfaitement définies ont été obtenus par une digestion enzymatique contrôlée (cellulase) de xyloglucanes. Dans la perspective de lier les deux blocs par cycloaddition 1,3-dipolaire de Huisgen catalysée par le Cuivre I, dite aussi chimie « click », les XGOs ont subit une réaction d'amination réductrice assistée par micro-ondes. L'action de la propargylamine a permis d'intégrer en position réductrice du XGO la fonction alcyne et une peracétylation des focntions hydroxyles du sucre ont rendu ce bloc hydrophobe. D'un autre côté, l'azidoethylamine a permis d'insérer la fonction azoture et constitue le bloc hydrophile. Cette stratégie de synthèse a également été transposée à un oligosaccharide monodisperse (XGO, DP7) provenant de la dégalactosylation enzymatique du xyloglucane par l'action supplémentaire de la galactosidase d'Aspergillus Niger. Finalement, les diblocs amphiphilies ont été synthétisé aussi bien à partir des XGOs de DP7, 8, 9 (XGO-b-XGO,Ac), que du XGO DP7 (DP7-b-DP7,Ac). Leurs propriétés d'auto-assemblages dans l'eau ont été réalisées ainsi que leur caractérisation physico-chimique. Suite à des mesures de concentration micellaire critique (CMC) obtenus par spectroscopie de fluorescence du pyrène, nous avons observé que l'élimination des unités de galactose provoque une augmentation de la CMC. La détermination du diamètre des micelles en solution aqueuse a été réalisée grâce à la technique de diffusion de la lumière (DLS) et a été confirmée par microscopie électronique à transmission (MET). Des micelles sphériques d'une taille moyenne de 25 nm (XGO-b-XGO,Ac) et de 6 nm (DP7-b-DP7,Ac) ont été observées au MET. La digestion enzymatique partielle des micelles formés à partir du dibloc XGO-b-XGO,Ac dans l'eau, conduisant à la formation des micelles DP7-b-XGO,Ac a conduit à un système moins polydisperse et à une diminution de la taille moyenne du diamètre micellaire de l'ordre de 50% (déterminée par DLS). Des nanoparticules de gliadine et de zéine ont été préparées par désolvatation en utilisant le dibloc XGO-b-XGO,Ac comme surfactant en comparaison au surfactant commercial non-ionique, le Pluronic F68. Les résultats suggèrent la capacité du dibloc à stabiliser la protéine de zéine sous forme de nanoparticules sphériques et de façon relativement monodisperses. Les particules formées et stabilisées grâce à l'association de protéines d'origine végétale et d'un surfactant « biopolymérique » synthétisé uniquement par des oligosaccharides, apparaissent comme des systèmes idéaux, associant biocompatibilité, biodégradabilité et des origines naturelles et renouvelables. Ces systèmes peuvent tout à fait être valorisés pour la libération contrôlée de substances actives. / This work describes a new synthetic route to obtain fully oligosaccharides-based amphiphilic diblock copolymers, made from tamarind seeds xyloglucan. A mixture of well size-defined xyloglucooligosaccharides (XGO of 7, 8 and 9 carbohydrate units) were obtained from the cellulose-mediated enzymatic digestion of xyloglucanes. To perform the Huisgen click reaction the oligosaccharides were reducing end functionalized by azide and propargyl functions via microwave-catalyzed reductive amination. The hydrophobic block was obtained after peracetylation of alkyne-containing XGO. The amphiphilic co-oligomers were synthesized either from the mixture of xyloglucan oligosaccharides to give XGO-b-XGO,Ac, either from the monodisperse XGO of 7 carbohydrate units (DP7), obtained by a degalactosylation process involving another specific enzymatic hydrolysis (beta-galactosidase from Aspergillus Niger), to give DP7-b-DP7,Ac. The XGO-based diblocks were characterized according to the state-of-the-art in structural characterization (NMR, MS, FT-IR) and Soft Matter physico-chemistry (SLS, DLS, CMC, TEM) techniques. The removal of galactose units (DP7-b-DP7,Ac) conferred an increase in the critical micellar concentration value compared to XGO-b-XGO,Ac, which were determined by fluorescence spectroscopy. The size diameter of the micelles were carried out by dynamic light scattering (DLS) and confirmed by transmission electron microscopy (TEM). Spherical micelles with an average size of 25 nm for XGO-b-XGO,Ac and 6 nm DP7-b-DP7,Ac nanoparticles were observed by TEM. The partial enzymatic digestion of the shell constituting XGO-b-XGO,Ac micelles in water led to formation of DP7-b-XGO,Ac micelles with a lowest polydispersity and a decrease in the average size diameter by 50 %, as determined by DLS. XGO-b-XGO,Ac was tested as a nonionic block copolymer surfactant to stabilize zein and gliadin nanoparticles, which come from gluten of wheat and maize and were prepared by the method of desolvation. Its stabilizing properties were compared to Pluronic F68 surfactant belonging to poloxamers' family. The results suggest the suitability of the XGO-based diblock to stabilize zein aggregates, resulting in stable, monodisperse and spherical nanoparticles. Finally, this work proposed a system consisting in potential nanocarriers prepared from vegetable proteins stabilized by biosourced oligosaccharide surfactants.
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Caracterização estrutural das hemiceluloses de paredes celulares de cana-de-açúcar / Characterization of the sugarcane cell wall hemicelluloses

Augusto Cesar Crivellari 11 June 2012 (has links)
O Brasil, segundo maior produtor mundial de biocombustíveis, produz etanol a partir da extração e fermentação de sacarose de colmos de cana-de-açúcar. A utilização da energia presente nas ligações químicas entre os carboidratos da parede celular (celulose, hemiceluloses e pectina), das biomassas de folha e bagaço (hoje ambos considerados resíduos de produção), é uma possibilidade para o incremento, de cerca de 3 vezes o valor atual, na produção de etanol. O entendimento da estrutura química dos polissacarídeos da parede celular de cana-de-açúcar é imprescindível para que esta tecnologia seja desenvolvida. O presente trabalho teve como objetivo isolar as hemiceluloses de colmo de cana-de-açúcar e estudar as suas estruturas químicas. Para tal, utilizou-se AIR (Alcohol Insoluble Residue) - parede celular sem açúcar solúvel - de colmo e folha de cana-de-açúcar SP80-3280 em hidrólises enzimáticas com endo-&beta;-xilanase, liquenase e celulase isoladamente ou em conjunto de forma a determinar a estrutura fina dos polímeros atacáveis por tais hidrolases. O AIR de colmo também foi submetido ao fracionamento da parede celular com oxalato de amônio, seguido de extrações com 1M e 4M de NaOH para a separação das hemiceluloses. Somente as frações 1M e 4M de NaOH foram analisadas, através de hidrólises com endo-&beta;-xilanases, seguido da análise dos oligossacarídeos resultantes por HPAEC-PAD (High Performance Anionic Exchange Chromatography with Pulsed Amperometric Detection) e por espectrometria de massas MALDI-TOF. Paralelamente, grupos de oligossacarídeos provenientes de hidrólises do colmo com endo-&beta;-xilanase foram isolados por cromatografia em camada delgada (TLC) preparativa e, em seguida, hidrolisados com &alpha;-arabinofuranosidases e analisados por PACE (Polyacrylamide Carbohydrate Electrophoresis) para o esclarecimento da estrutura fina de arabinoxilanos. Os resultados obtidos mostraram a presença de xiloglucano na fração NaOH 4M em pequena proporção, cerca de 3% da parede celular, sendo este xiloglucano de 2 tipos: estrutura fina típica de gramíneas (composta por glucose, e os oligossacarídeos isoprimeverose, XG, XXG, XXGG, XXGGG) e estrutura fina de eudicotiledôneas e monocotiledôneas não-comelinóides (composta por oligossacarídeos: XXXG, XLXG/XXLG, XXXXG). A análise por MALDI-TOF da hidrólise das frações 1M e 4M de colmo de cana-de-açúcar com endo-&beta;-xilanase revelou a existência de xilanos lineares (série homóloga de xilanos) em conjunto com um grupo de xilanos ramificados com arabinose de forma regular, com motivos arabinosilados com até 6 xiloses na cadeia principal. As hidrólises com endo-&beta;-xilanase e liquenase em conjunto revelaram que o arabinoxilano e o &beta;-glucano, juntos, perfazem cerca de 40% da parede celular de cana-de-açúcar, e não interferem na hidrólise uma da outra, permitindo o uso concomitante das enzimas em processos industriais. Além disso, especula-se que as arabinoses do arabinoxilano interagem, possivelmente, através de ligações por compostos fenólicos, prevenindo a ação enzimática. O presente trabalho começa a desvendar a estrutura fina das principais hemiceluloses da parede celular de colmo de cana-de-açúcar e aponta para a necessidade de experimentos que permitam compreensão de outros níveis de complexidade da parede celular, como por exemplo, as ramificações com agliconas e interações entre os polissacarídeos. / Brazil is the second-generation ethanol producer in the World, obtaining it from sugarcane soluble sugar from culms. The second generation ethanol consists of using the energy present in the covalent linkages of the cell wall carbohydrates (cellulose, hemicelluloses and pectin) from culms and leaves (both considered nowadays as litter). This is considered as a great opportunity to increase ethanol production up to 3 times the current figures. The knowledge about sugarcane polysaccharide structure is crucial for the development of the second-generation ethanol technology. This work, aimed at the isolation and structural studis of the hemicellulosic components of the sugarcane cell walls. To achieve this, AIR (Alcohol Insoluble Residue) from culms and leaves (SP 80-3280 variety) were digested with endo-&beta;-xylanase, lichenase and cellulase (in different sequences, or with isolated or combined enzymes) to help determining the fine structures of the polysaccharides. The AIR from culm was fractionated with increasing alkali concentrations (NaOH 0,1M, 1M and 4M) to purify the different hemicelluloses. Only the 1M and 4M fractions were analyzed, after digestions with endo-&beta;-xylanase, followed by HPAEC-PAD (High Performance Anionic Exchange Chromatography with Pulsed Amperometric Detection) and MALDI-TOF Mass Spectrometry analyses. Also, the oligosaccharides obtained by the endo-&beta;-xylanase digestion were isolated by preparative TLC (Thin Layer Chromatography), re-digested with &alpha;-arabinofuranosidases and finally analyzed by PACE (Polyacrylamide Carbohydrate Electrophoresis) in order to clarify the fine structure of the arabinoxylan from sugarcane culm. The same fractionated material was digested by an endo-&beta;-glucanase to clarify the xyloglucan structure. The results showed that in the 4M fraction, a small concentration of xyloglucan can be found (ca. 3% of the total hemicelluloses), and this polysaccharide has the typical grass structure: XG, XXG, XXGG and XXGGG/XLGG. Other oligosaccharides, typical from eudicotyledons were also found: the XXXG, XLXG/XXLG and XXXXG. The MALDI-TOF and PACE analyses performed after digestion with endo-&beta;-xylanase and &alpha;-arabinofuranosidases, revealed the presence of linear xylan oligosaccharides (from 2 to 14) and also fragments with arabinose substitutions. The digestions with endo-&beta;-xylanase and lichenase at the same time, revealed that the arabinoxylan and &beta;-glucans, are 40% of all the sugarcane cell wall mass, and one enzyme does not interfere in the activity of the other. The present work starts to clarify the fine structure of the sugarcane culm (and leaves) major hemicelluloses, and also suggest that experiments aimed at understanding cell wall complexity are important steps to help developing efficient cellulosic ethanol technologies to obtain second generation ethanol from sugarcane biomass.
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Modification chimique de surface de microcapsules de parfum en vue d’une vectorisation ciblée / Chemical surface modification of microcapsules for a targeted fragrance delivery

Sallet, Pauline 16 March 2017 (has links)
En vue de vectoriser de façon ciblée des microcapsules de parfum vers un substrat textile pour des applications lessivielles, ce travail de thèse s’est consacré à la modification chimique de la surface de ces microcapsules en milieu aqueux par des polysaccharides ayant des affinités particulières pour les substrats de cellulose (agent d’aide au dépôt). Pour ce faire, une approche mettant en jeu des fonctionnalités époxy a été développée en deux étapes : fonctionnalisation de la surface des microcapsules par des molécules relais, puis greffage covalent d’un polysaccharide via la fonctionnalité époxy. Après chaque étape de greffage covalent en surface des microcapsules, différentes stratégies de caractérisations ont été mises en place (spectroscopies infrarouge, RAMAN, RMN du solide, XPS, ATG, mesure du potentiel zêta, gravimétrie, microscopie optique et fluorescente). Des expériences témoins ont également été réalisées pour prouver la non-adsorption des greffons de surface sur les microcapsules. La synthèse et le greffage de polysaccharides marqués avec des sondes fluorescente, alcyne et méthacrylate nous ont également permis d’appuyer nos conclusions. Afin d’envisager des modifications chimiques en milieu aqueux, la stabilité des composés époxy dans l’eau a dû être étudiée de façon précise par spectroscopie RMN en solution et nous avons abouti avec succès à une meilleure compréhension des phénomènes réactionnels époxy-amine et époxy-hydroxyle en milieu aqueux.Enfin, une enzyme (la lipase) a également pu être greffée de façon covalente via la fonctionnalisation époxy tout en conservant son activité catalytique. / Colloidal suspensions are of paramount significance in industrial applications. They are employed in various domains like paintings, inks, pigments, pharmacology, cosmetics, food,textile, composite materials or waste water treatment. Properties of colloids strongly depend on parameters such as the chemical composition, dimensions or morphology. To confer additional features to the colloids, i.e. stability, compatibilization, targeting, stealth properties and so on, it is also crucial to tailor their surface functionalization. In this work, we intend to develop a methodology allowing for tuning the surface properties of highly cross-linked fragrance microcapsules to graft polysaccharides. To do so, the first objective of this work is to identify functionalities at the surface (of the colloids) amenable to post-modifications. Based on this crucial insight, suitable surface chemistries are further explored to impart new properties to the colloids. Thus the presence of amine functions is highlighted by ninhydrine tests and then exploited to incorporate new functionalities at the surface of colloids.Incorporation of fluorescent tags (such as  Rhodamine Isothiocyanate, RITC), intermediate polymer epoxy chains (α,ω-epoxy functionalized polyethylene glycol or PGMA) are performed. Depending on the nature of the moieties to be grafted, the resulting colloids are subsequently characterized by Confocal Laser Scanning Microscopy (CLSM), FTIR, XPS, and RAMAN Spectroscopy. After this first step of functionnalization, epoxy rings at the surface are used to postgraft polysaccharides.
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Ultrastructure of the Primary Cell Wall of Softwood Fibres Studied using Dynamic FT-IR Spectroscopy

Stevanic Srndovic, Jasna January 2008 (has links)
The primary cell wall is a complex multipolymer system whose composite structure has been mostly determined from chemical and biochemical studies. Although the primary cell wall serves a central role, with regard to the connective properties of fibres, knowledge about the interactions among the polymers, when it comes to the mechanical properties, is very limited. The physical properties of the polymers, i.e. their elastic and viscous deformations, as well as the ultrastructure of the polymers, i.e. the interactions among the polymers in the outer fibre wall layers that lead to this behaviour, are still not fully understood. The aim of this study was to examine how the different wood polymers, viz. lignin, protein, pectin, xyloglucan and cellulose, interact in the outer fibre wall layers of the spruce wood tracheid. The initial objective was to separate an enriched primary cell wall material from a first stage TMP, by means of screening and centri-cleaning. From this material, consisting of the primary cell wall (P) and outer secondary cell wall (S1) materials, thin sheets were prepared and analysed using a number of different analytical methods. The major measuring technique used was dynamic Fourier transform infra-red (FT-IR) spectroscopy in combination with dynamic 2D FT-IR spectroscopy. This technique is based on the detection of small changes in molecular absorption that occur when a sinusoidally stretched sample undergoes low strain. The molecular groups affected by the stretching respond in a specific way, depending on their environment, while the unaffected molecular groups provide no response to the dynamic spectra, by producing no elastic or viscous signals. Moreover, the dynamic 2D FT-IR spectroscopy provides useful information about various intermolecular and intramolecular interactions, which influence the reorientability of functional groups in a polymer material. Measurements of the primary cell wall material, using dynamic FT-IR spectroscopy, indicated that strong interactions exist among lignin, protein and pectin, as well as among cellulose, xyloglucan and pectin in this particular layer. This was in contrast to the secondary cell wall, where interactions of cellulose with glucomannan and of xylan with lignin were dominant. It was also indicated that the most abundant crystalline cellulose in the primary cell wall of spruce wood fibres is the cellulose Iβ allomorph, which was also in contrast to the secondary cell wall, where the cellulose Iα allomorph is more dominant. The presence of strong interactions among the polymers in the primary cell wall and, especially, the relatively high content of pectin and protein, showed that there is a very good possibility of selectively attacking these polymers in the primary cell wall. The first selective reaction chosen was a low degree of sulphonation, applied by an impregnation pretreatment of chips with a very low charge of sodium sulfite (Na2SO3). This selective reaction caused some structural modification of the lignin, a weakening of the interactions between lignin;pectin, lignin;protein and pectin;protein, as well as an increased softening of the sulphonated primary cell wall material, when compared to the unsulphonated primary cell wall material. All this resulted in an increased swelling ability of the material. / QC 20101123

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