977 resultados para radical scavenger hydroxyl radical, 1,2 selenazoles, COX, LOX
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In der vorliegenden Arbeit werden 52 Verbindungen beschrieben, welche auf COX/LOX-Inhibition mit zusätzlichen Hydroxylradikalfängereigenschaften getestet worden sind. rnEs war möglich eine neue Synthesestrategie für noch nicht beschriebene 4,5-Diarylisoselenazole zu entwickeln und eine vorhandene Synthese für Isothiazoliumchloride von zwei Stufen, mit mäßigen Ausbeuten, auf eine Stufe, mit hoher Ausbeute, zu verkürzen.rnEs wurden mehrere COX-Inhibitoren identifiziert. MSD4a, MSD4h, MSD5a und MSD5h konnten als COX-1-, COX-2- und 5-LOX-Hemmer identifiziert werden. Besonders hervorzuheben ist die Verbindung MSD5h, die zusätzlich zur COX-1-, COX-2- und 5-LOX-Inhibition eine leichte Hemmung im Hydroxylradikalfänger-Assay zeigt, für die ein clog P-Wert von 2,65 berechnet wurde und die im XTT-Zytotoxizitätstestsystem, selbst bei einer Konzentration von 100 µM, kaum toxische Eigenschaften besitzt.rnWeiterhin war es möglich zu zeigen, dass Carbonsäuren gute Hydroxylradikalfängereigenschaften in unserem, auf der Fenton-Reaktion basierenden, Testsystem haben. Die Potenz der Carbonsäuren MSD8b und MSD11j im Vergleich zu den unwirksamen korrespondierenden Ester MSD8a und MSD11i führte zu Untersuchungen mit weiteren Carbonsäuren und deren Ester. Um den Wirkungsmechanismus zu erforschen wurde das Testsystem modifiziert, um eine Komplexierung der Eisenionen durch die Carbonsäuren auszuschließen. An Hand der Substanzen MSD8b und MSD11j wurde nachgewiesen, dass diese mit dem Hydroxylradikal reagieren, ohne zu decarboxylieren oder andere Zerfallsreaktionen einzugehen.rnZusätzlich zu den Untersuchungen der Enzym-Inhibition sowie des Hydroxylradikal-Scavenings wurden Molecular Modelling Studien durchgeführt. Die Ergebnisse der Dockingstudien in COX-1- (1eqg), COX-2- (1cx2) und in COX-1 mutierte COX-2-Kristallstrukturen (1cx2) führen zu einer kritischen Bewertung des folgenden Ansatzes: Es ist nicht unbedingt sinnvoll zuerst Strukturen mit dem Computer zu entwerfen und zu modeln und sie erst dann zu synthetisieren und in Enzym- oder Zellassays zu testen. Die Begründung dafür liegt in der Schwierigkeit einschätzen zu können, wie nah das gewählte Modell der Wirklichkeit ist. In den durchgeführten Dockingstudien konnte der sehr große Einfluss des kokristallisierten Liganden in der als Grundlage dienenden Kristallstruktur auf die Dockingergebnisse gezeigt werden. Durch einen zu kleinen kokristallisierten Liganden in der COX-1-Bindungstasche wurden als Ergebnis der Dockingstudie alle Verbindungen als nicht potent eingestuft, obwohl diese zum Teil im Enzymtestsystem wirksam waren. Dies konnte mit den Mutationsversuchen ausgeglichen werden. rnDeshalb kann man aus diesen Ergebnissen als Fazit ziehen, dass eine Strategie, Strukturen zu synthetisieren, in vitro zu testen und dabei die Strukturentwicklung mit Molecular Modelling Studien zu unterstützen, die Methode der Wahl darstellt.rn
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The anionic heterocumulene SCCCN- was generated in the gas phase by collisional activation of the radical anion of 1,2-dicyanoethylenedithiolate. The mechanism of this reaction, as well as the structures of neutral and anionic products, was investigated by hybrid density functional theory (DFT) calculations. Dissociation to form SCCCN- and SCN is proposed to occur by a radical directed cyano migration reaction, with calculations suggesting this is the lowest energy fragmentation pathway available to the precursor anion. In contrast, the even-electron protonated 1,2-dicyanoethylenedithiolate anion fragmented by loss of HCN.
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One-electron oxidation of 3,6-diphenyl-1,2-dithiin yields the corresponding radical cation. The product is stable at low temperatures and can be distinguished by a triplet EPR signal. Cyclic voltammetric, UV-vis spectroelectrochemical, and DFT studies were performed to elucidate its molecular structure and electronic properties. Time-dependent DFT calculations reproduce appreciably well the UV-vis spectral changes observed during the oxidation. The results reveal a moderately twisted structure of the 1,2-dithiin heterocycle in the radical cation.
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myo-Inositol phosphates possessing the 1,2,3-trisphosphate motif share the remarkable ability to completely inhibit iron-catalysed hydroxyl radical formation. The simplest derivative, myo-inositol 1,2,3-trisphosphate [Ins(1,2,3)P3], has been proposed as an intracellular iron chelator involved in iron transport. The binding conformation of Ins(1,2,3)P3 is considered to be important to complex Fe3+ in a 'safe' manner. Here, a pyrene-based fluorescent probe, 4,6-bispyrenoyl-myo-inositol 1,2,3,5-tetrakisphosphate [4,6-bispyrenoyl Ins(1,2,3,5)P4], has been synthesised and used to monitor the conformation of the 1,2,3-trisphosphate motif using excimer fluorescence emission. Ring-flip of the cyclohexane chair to the penta-axial conformation occurs upon association with Fe3+, evident from excimer fluorescence induced by π-π stacking of the pyrene reporter groups, accompanied by excimer formation by excitation at 351 nm. This effect is unique amongst biologically relevant metal cations, except for Ca 2+ cations exceeding a 1:1 molar ratio. In addition, the thermodynamic constants for the interaction of the fluorescent probe with Fe3+ have been determined. The complexes formed between Fe 3+ and 4,6-bispyrenoyl Ins(1,2,3,5)P4 display similar stability to those formed with Ins(1,2,3)P3, indicating that the fluorescent probe acts as a good model for the 1,2,3-trisphosphate motif. This is further supported by the antioxidant properties of 4,6-bispyrenoyl Ins(1,2,3,5)P4, which closely resemble those obtained for Ins(1,2,3)P3. The data presented confirms that Fe3+ binds tightly to the unstable penta-axial conformation of myo-inositol phosphates possessing the 1,2,3-trisphosphate motif. © 2010 The Royal Society of Chemistry.
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I. The target molecules are classified as 1-aryl 2-cyclopropyl substituted ethylene. In the ground state, these molecules have a number of conformers, which are in equilibrium through rotation about single bonds. Once excited, the conformers have fixed conformation and are no longer in equilibrium and can be distinguished by their UV-vis as well as fluorescence spectra. The synthetic strategy involves standard steps. Both 2-methylanthracene and 2-methylnaphthalene were brominated using N-bromosuccinimide to give the bromomethyl adduct, which then was reacted with triphenylphosphine to form the phosphonium salt. This was followed by the formation of the phosphorus ylide, which upon treatment with cyclopropanecarboxaldehyde gave the product.^ II. The degradation of three aliphatic haloethers: bis-(2-chloroethyl) ether, bis-(2-chloroisopropyl) ether, and bis-(2-chloroethoxy)methane and two aromatic haloethers: 4-chlorodiphenyl ether and 4-bromodiphenyl ether was studied. Product studies have been conducted on the titanium dioxide photocatalysis of these compounds including mass balance, monitoring and identifying intermediates to establish the reaction pathways to deduce a mechanism for their degradation. The extent of mineralization was determined from the measurement of halogen anion (Cl$\sp-$/Br$\sp-$) as well as total organic carbon. The relative rates of disappearance of the individual haloethers appear to be related to the hydrophobic character of the given compound. Reaction mechanisms involving hydroxyl radical are proposed to explain the observed results. ^
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Gasoline oxygenates (MTBE, methyl tert-butyl ether; DIPE, di-isopropyl ether; ETBE, ethyl tert-butyl ether; TAME, tert-amyl ether) are added to gasoline to boost octane and enhance combustion. The combination of large scale use, high water solubility and only minor biodegradability has now resulted in a significant gasoline oxygenate contamination occurring in surface, ground, and drinking water systems. Combination of hydroxyl radical formation and the pyrolytic environment generated by ultrasonic irradiation (665 kHz) leads to the rapid degradation of MTBE and other gasoline oxygenates in aqueous media. ^ The presence of oxygen promotes the degradation processes by rapid reaction with carbon centered radicals indicating radical processes involving O 2 are significant pathways. A number of the oxidation products were identified. The formation of products (alcohols, ketones, aldehydes, esters, peroxides, etc) could be rationalized by mechanisms which involve hydrogen abstraction by OH radical and/or pyrolysis to form carboncentered radicals which react with oxygen and follow standard oxidation chain processes. ^ The reactions of N-substituted R-triazolinediones (RTAD; R = CH 3 or phenyl) have attracted considerable interest because they exhibit a number of unusual mechanistic characteristics that are analogous to the reactions of singlet oxygen (1O2) and offer an easy way to provide C-N bond(s) formation. The reactions of triazolinedione with olefins have been widely studied and aziridinium imides are generally accepted to be the reactive intermediates. ^ We observed the rapid formation of an unusual intermediate upon mixing tetracyclopropylethylene with 4-methyl-1,2,4-triazoline-3,5-dione in CDCl 3. Detailed characterization by NMR (proton, 13C, 2-D NMRs) indicates the intermediate is 5,5,6,6-tetracyclopropyl-3-methyl-5,6-dihydro-oxazolo[3,2- b][1,2,4]-triazolium-2-olate. Such products are extremely rare and have not been studied. Upon warming the intermediate is converted to 2 + 2 diazetidine (major) and ene product (minor). ^ To further explore the kinetics and dynamics of the reaction activation energies were obtained using Arrhenius plots. Activation energies for the formation of the intermediate from reactants, and 2+2 adduct from the intermediate were determined as 7.48 kcal moll and 19.8 kcal mol−1 with their pre-exponential values of 2.24 × 105 dm 3 mol−1 sec−1 and 2.75 × 108 sec−1, respectively, meaning net slow reactions because of low pre-exponential values caused by steric hindrance. ^
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A model (NADH-phenazine methosulfate-O2) formally similar to pyridine nucleotide-dependent flavoprotein hydroxylases catalyzed the hydroxylation of several aromatic compounds. The hydroxylation was maximal at acid pH and was inhibited by ovine Superoxide dismutase, suggesting that perhydroxyl radicals might be intermediates in this process. The stoichiometry of the reaction indicated that a univalent reduction of oxygen was occurring. The correlation between the concentration of semiquinone and hydroxylation, and the inhibition of hydroxylation by ethanol which inhibited semiquinone oxidation, suggested the involvement of phenazine methosulfate-semiquinone. Activation of hydroxylation by Fe3+ and Cu2+ supported the contention that univalently reduced species of oxygen was involved in hydroxylation. Catalase was without effect on the hydroxylation by the model, ruling out H2O2 as an intermediate. A reaction sequence, involving a two-electron reduction of phenazine methosulfate to reduced phenazine methosulfate followed by disproportionation with phenazine methosulfate to generate the semiquinone, was proposed. The semiquinone could donate an electron to O2 to generate O2 which could be subsequently protonated to form the perhydroxyl radical.
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It is proposed that singlet dioxygen reacting with guanosine or deoxyguanosine part of nucleotides does not, by itself, cause DNA cleavage. The strand break originates at the endoperoxide stage whenever this link evolves into a O-centered radical. The O-centered radical is then in a good spatial position to abstract an hydrogen intramolecularly from the ribose or desoxyribose part of the nucleotide. The carbon centered radical thus formed on the sugar part may lead to strand break either by a p-scission mechanism or by an homolytically induced solvolysis. High pH could also induce cleavage after the endoperoxide stage via a base catalyzed ring chain protomerism.
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Four new 2-oxo-1,2-dihydrobenzoh]quinoline-3-carbaldehyde N-substituted thiosemicarbazone ligands (H-2-LR, where R = H, Me, Et or Ph) and their corresponding new cobalt(III) complexes have been synthesized and characterized. The structures of the complexes 2 and 3 were determined by single crystal X-ray diffraction analysis. The interactions of the new complexes with DNA were investigated by absorption, emission and viscosity studies which indicated that the complexes bind to DNA via intercalation. Antioxidant studies of the new complexes showed that the significant antioxidant activity against DPPH radical. In addition, the in vitro cytotoxicity of complexes 1-4 against A549 cell line was assayed which showed higher cytotoxic activity with lower IC50 values indicating their efficiency in killing the cancer cells even at very low concentrations. (C) 2012 Elsevier Masson SAS. All rights reserved.
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5-exo Cyclisation of vinyl-, aryl- and alkyl-radicals onto the aryl group of arylcarboxamides is followed by beta-scission of the resulting spirocyclohexadienyl radicals with ejection of a carbamoyl radical. The fate of this radical depends on the substrate but, in the cases studied, either 5-endo cyclisation or direct reduction follows to give phthalimides, biaryls or beta-arylethylamines.
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Das Ziel der Dissertation war die Synthese und pharmakologische Charakterisierung von COX-1-, COX-2- und 5-LOX-Inhibitoren, die zur Behandlung entzündlicher Dermatosen für die topische Anwendung geeignet sein sollten. Hierfür wurden zwei Strukturklassen - die sogenannten Imidazothiazole und die Chalcone-Derivate - entworfen und synthetisiert sowie in verschiedenen in vitro-Testsystemen auf ihre pharmakologische Wirksamkeit untersucht. rnDie Leitsubstanz der ersten Strukturklasse wurde in Anlehnung an die Struktur von Licofelon entworfen. Licofelon ist ein dualer COX/LOX-Inhibitor, der für die Indikation Osteoarthritis eingesetzt werden soll. Durch den Austausch einzelner Substituenten an den Phenylringen wurde die Leitstruktur schrittweise verändert, um die Wirksamkeit zu optimieren. Die Substituentenvariation erfolgte anhand des sogenannten Topliss-Schemas. Bei der zweiten Substanzklasse wurde durch Kombination zweier antiinflammatorisch wirksamer Molekülgruppen - mit dem Ziel eines synergistischen Effekts - eine Grundstruktur entwickelt, die zur Optimierung der Wirksamkeit derivatisiert wurde. Als Komponenten dienten 4,5-Bis(4-methoxyphenyl)-1H-imidazol-2-thiol (Z11) und ein Chalcon. Z11 ist sowohl in der Literatur als auch in vorangegangen Arbeiten des Arbeitskreises als dualer COX/LOX-Inhibitor beschrieben. Chalcone besitzen eine 1,3-Diphenylpropenon-Partialstruktur und können über einen der beiden Phenylringe mit Z11 verknüpft werden. In der Literatur wurde vielfach über die vielfältigen pharmakologischen Eigenschaften der Chalcone berichtet; im Rahmen dieser Arbeit stand deren antiinflammatorische Eigenschaft im Vordergrund. rnZur Beurteilung der Effektivität und Toxizität der Substanzen wurden diese anschließend pharmakologisch charakterisiert werden. Hierfür standen verschiedene in vitro-Testsysteme zur Verfügung, die Aufschluss über die COX-1-, COX-2- und 5-LOX-Inhibition der synthetisierten Substanzen gaben. Des Weiteren wurden die Substanzen auf eine mögliche inhibitorische Aktivität gegenüber TNF- untersucht. Da die Entwicklung der Testverbindungen mit dem Ziel der topischen Anwendung erfolgte, wurde eine log P-Wert-Bestimmung durchgeführt, um eine Aussage über die Lipophilie der Verbindungen treffen zu können.rn
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The hydroperoxy radical (HO2) plays a critical role in Earth's atmospheric chemistry as a component of many important reactions. The self-reaction of hydroperoxy radicals in the gas phase is strongly affected by the presence of water vapor. In this work, we explore the potential energy surfaces of hydroperoxy radicals hydrogen bonded to one or two water molecules, and predict atmospheric concentrations and vibrational spectra of these complexes. We predict that when the HO2 concentration is on the order of 108molecules·cm-3 at 298 K, that the number of HO2···H2O complexes is on the order of 107molecules·cm-3 and the number of HO2···(H2O)2 complexes is on the order of 106molecules·cm-3. Using the computed abundance of HO2···H2O, we predict that, at 298 K, the bimolecular rate constant for HO2···H2O + HO2 is about 10 times that for HO2 + HO2.
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The reaction of the old yellow enzyme and reduced flavins with organic nitrate esters has been studied. Reduced flavins have been found to react readily with glycerin trinitrate (GTN ) (nitroglycerin) and propylene dinitrate, with rate constants at pH 7.0, 25°C of 145 M−1s−1 and 5.8 M−1s−1, respectively. With GTN, the secondary nitrate was removed reductively 6 times faster than the primary nitrate, with liberation of nitrite. With propylene dinitrate, on the other hand, the primary nitrate residue was 3 times more reactive than the secondary residue. In the old yellow enzyme-catalyzed NADPH-dependent reduction of GTN and propylene dinitrate, ping-pong kinetics are displayed, as found for all other substrates of the enzyme. Rapid-reaction studies of mixing reduced enzyme with the nitrate esters show that a reduced enzyme–substrate complex is formed before oxidation of the reduced flavin. The rate constants for these reactions and the apparent Kd values of the enzyme–substrate complexes have been determined and reveal that the rate-limiting step in catalysis is reduction of the enzyme by NADPH. Analysis of the products reveal that with the enzyme-catalyzed reactions, reduction of the primary nitrate in both GTN and propylene dinitrate is favored by comparison with the free-flavin reactions. This preferential positional reactivity can be rationalized by modeling of the substrates into the known crystal structure of the enzyme. In contrast to the facile reaction of free reduced flavins with GTN, reduced 5-deazaflavins have been found to react some 4–5 orders of magnitude slower. This finding implies that the chemical mechanism of the reaction is one involving radical transfers.
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1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) causes nigrostriatal dopaminergic pathway damage similar to that observed in Parkinson disease (PD). To study the role of NO radical in MPTP-induced neurotoxicity, we injected MPTP into mice in which nitric oxide synthase (NOS) was inhibited by 7-nitroindazole (7-NI) in a time- and dose-dependent fashion. 7-NI dramatically protected MPTP-injected mice against indices of severe injury to the nigrostriatal dopaminergic pathway, including reduction in striatal dopamine contents, decreases in numbers of nigral tyrosine hydroxylase-positive neurons, and numerous silver-stained degenerating nigral neurons. The resistance of 7-NI-injected mice to MPTP is not due to alterations in striatal pharmacokinetics or content of 1-methyl-4-phenylpyridinium ion (MPP+), the active metabolite of MPTP. To study specifically the role of neuronal NOS (nNOS), MPTP was administered to mutant mice lacking the nNOS gene. Mutant mice are significantly more resistant to MPTP-induced neurotoxicity compared with wild-type littermates. These results indicate that neuronally derived NO mediates, in part, MPTP-induced neurotoxicity. The similarity between the MPTP model and PD raises the possibility that NO may play a significant role in the etiology of PD.