440 resultados para Bifunctional Chelator


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The present study deals with a new analytical procedure based on a cellulose diffusion membrane and immobilised tetraethylene-pentamine-hexaacetate chelator (DM-TEPHA) for an in situ differentiation of labile and inert metal species in aquatic systems. The DM-TEPHA system was prepared by placing TEPHA chelator in pre-purified cellulose bags and in situ applied immersing the system in two Brazilian rivers to study the relative lability of metal species (Cu, Pb, Fe, Mn and Ni) as a function of the time and the quantity of exchanger, respectively. The procedure is simple and enables a new perspective for understanding the complexation, transport, stability and lability of metal species in aquatic systems rich in organic matter.

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Carbon-supported Pt x –Rh y –Sn z catalysts (x:y:z = 3:1:4, 6:2:4, 9:3:4) are prepared by Pt, Rh, and Sn precursors reduction in different addition order. The materials are characterized by X-ray diffraction, transmission electron microscopy, and X-ray photoelectron spectroscopy techniques and are evaluated for the electrooxidation of ethanol in acidic media by cyclic voltammetry, chronoamperometry, and anode potentiostatic polarization. The influence of both the order in which the precursors are added and the composition of metals in the catalysts on the electrocatalytic activity and physico-chemical characteristics of Pt x –Rh y –Sn z /C catalysts is evaluated. Oxidized Rh species prevail on the surface of catalysts synthesized by simultaneous co-precipitation, thus demonstrating the influence of synthesis method on the oxidation state of catalysts. Furthermore, high amounts of Sn in composites synthesized by co-precipitation result in very active catalysts at low potentials (bifunctional effect), while medium Sn load is needed for sequentially deposited catalysts when the electronic effect is most important (high potentials), since more exposed Pt and Rh sites are needed on the catalyst surface to alcohol oxidation. The Pt3–Rh1–Sn4/C catalyst prepared by co-precipitation is the most active at potentials lower than 0.55 V (related to bifunctional effect), while the Pt6–Rh2–Sn4/C catalyst, prepared by sequential precipitation (first Rh and, after drying, Pt + Sn), is the most active above 0.55 V.

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Résumé : L’imagerie TEP est une modalité puissante qui permet de suivre d’infimes concentrations de traceurs marqués pour la détection de cancers et d’autres pathologies. Il y a actuellement un intérêt croissant pour le développement de peptides comme outils diagnostiques et de traitement en oncologie. Cet intérêt se justifie entre autres par le fait que les peptides sont tolérants à la présence de chélateurs bifonctionnels ou de groupements prosthétiques pour le marquage avec divers radiométaux (64Cu, T1/2 = 12,7 h, 68Ga, T1/2 = 68 min, etc.) ou le 18F (T1/2 = 109,8 min) sans perte de leur activité biologique. L’objectif des travaux rapportés dans ce document était de développer des outils moléculaires innovateurs et efficaces qui facilitent le marquage de peptides pour l’imagerie TEP. Il s’agit spécifiquement d’un chélateur bifonctionnel et d’une méthode de conjugaison rapide et sélective de groupe prosthétique. Sur un volet, un chélateur bifonctionnel analogue de la lysine avec des ligands méthylhydroxamates a été synthétisé en solution par double bisalkylation. Les résultats préliminaires indiquent une faible chélation avec le Cu(II), mais sont à poursuivre avec les 68Ga et 89Zr. Pour le second volet de radiomarquage au 18F, les procédures synthétiques ont été optimisées en deux étapes, soient le marquage du groupe prothétique et sa conjugaison au peptide. Tout d’abord, des conditions de marquage par une réaction de SNAr en présence de 18F- ont été développées pour donner le groupe prosthétique 18F-thioester nécessaire à la conjugaison. Par la suite, sa conjugaison au peptide par la réaction de ligation chémosélective, ce qui implique trois étapes 1) une transthioestérification favorisée entre les groupements thioester et thiol des segments de peptides; 2) un réarrangement irréversible de l’intermédiaire thioester en N-(oxyalkyl)amide, suivi; 3) du clivage de l’auxiliaire. Par les présents travaux, il a été prouvé que la nouvelle méthodologie en un seul pot réactionnel accélère la réaction et permet le marquage au 18F de peptides non protégés, limitant ainsi les réactions secondaires et le nombre d’étapes après le marquage des peptides. La conjugaison du groupe prothétique à un composé et un peptide modèle se produit en 26-55 min comparativement aux 48 h des conditions originales rapportées. La méthode proposée permet également le marquage de peptides non protégés. Dans le futur, le chélateur bifonctionnel et le groupe prothétique seront conjugués à différents dérivés peptidiques ciblant des récepteurs impliqués dans le cancer et des tests de compétition, de saturation, de biodistribution et d’imagerie µTEP seront effectués.

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A new titanium catalyst easily synthesized from ethylmaltol bidentate chelator ligand was studied in homogeneous and heterogeneous ethylene polymerization. The dichlorobis(3-hydroxy-2-ethyl-4-pyrone)titanium(IV) complex was characterized by 1H and 13C NMR (nuclear magnetic resonance), UV-Vis and elemental analysis. Theoretical study by density functional theory (DFT) showed that the complex chlorines exhibit cis configuration, which is important for the activity in olefin polymerization. The complex was supported by two methods, direct impregnation or methylaluminoxane (MAO) pre-treatment, in five mesoporous supports: MCM-41 (micro and nano), SBA-15 and also the corresponding modified Al species. All the catalytic systems were active in ethylene polymerization and the catalytic activity was strongly influenced by the method of immobilization of the catalyst and the type of support.

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This thesis explores two distinct parts of mitochondrial physiology: the role of mitochondria in generation of reactive oxygen species (ROS) and mitochondrial morphology and dynamics within cells. The first area of research is covered in Chapters 1-8. Mitochondrial biofunctionality and ROS production are discussed in Chapter 1, followed by the strategy of targeting bioactive compounds to mitochondria by linking them to lipophilic triphenylphosphonium cations (TPP) (Chapter 2). ROS sensors relevant to the research are reviewed in Chapter 3. Chapter 4 presents design and synthesis of novel probes for superoxide detection in mitochondria (MitoNeo-D), cytosol (Neo-D) and extracellular environment (ExCellNeo-D). The results of biological validation of MitoNeo-D and Neo-D performed in the MRC MBU in Cambridge are presented in Chapter 5. A dicationic hydrogen peroxide sensor that utilizes in situ click chemistry is discussed in Chapter 6. Preliminary work on the synthesis of mitochondria-targeted superoxide generators, which led to the development of mitochondria-targeted analogue of paraquat, MitoPQ, is presented in Chapter 7. A set of bifunctional probes (BCN-Mal, BCN-E-BCN and Mito-iTag) for assessing the redox states of protein thiols is discussed in Chapter 8 along with their biological validation. The second part of the thesis is aimed at the study of mitochondrial morphology and dynamics and is presented in Chapters 9-11. Chapter 9 provides background on the classes of fluorophores relevant to the research, the phenomenon of fluorescence quenching and the principle of photoactivation with examples of photoactivatable fluorophores. Next, the background on mitochondrial morphology and heterogeneity is presented in Chapter 10, followed by the ways of imaging and tracking mitochondria within cells by conventional fluorophores and by photoactivatable fluorophores exploiting super-resolution microscopy. Chapter 11 presents the design and synthesis of four photoactivatable fluorophores for mitochondrial tracking, MitoPhotoRhod110, MitoPhotoNIR, Photo-E+, MitoPhoto-E+, along with results of biological validation of MitoPhotoNIR. The results and discussion concludes with Chapter 12, which is a summary and suggestions for future work, followed by the chemistry experimental procedures (Chapter 13), materials and methods for biological experiments (Chapter 14) and references.