Search results for "Nitroso"

showing 10 items of 83 documents

CCDC 1553257: Experimental Crystal Structure Determination

2017

Related Article: Matteo Savastano, Paloma Arranz-Mascaros, ́Carla Bazzicalupi, Maria Paz Clares, Maria Luz Godino-Salido, Lluis Guijarro, Maria Dolores Gutierrez-Valero, ́Antonio Bianchi, Enrique García-España, Rafael Lopez-Garzon|2017|ACS Omega|2|3868|doi:10.1021/acsomega.7b00736

Space GroupCrystallographycatena-[(mu-6-amino-3-methyl-5-nitroso-2-({2-[36915-tetraazabicyclo[9.3.1]pentadeca-1(15)1113-trien-6-yl]ethyl}amino)pyrimidin-4(3H)-one)-copper(ii) diperchlorate]Crystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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Spin Trapping of Carbon-Centered Ferrocenyl Radicals with Nitrosobenzene

2015

In contrast to metal centered 17 valence electron radicals, such as [Mn(CO)5]•, ferrocenium ions [Fe(C5H5)2]+ (1+), [Fe(C5Me5)2]+ (2+), [Fe(C5H5)(C5H4Et)]+ (3+), [Fe(C5H5)(C5H4NHC(O)Me)]+ (4+), and [Fe(C5H5)(C5H4NHC(S)Me)]+ (5+) do not add to nitrosobenzene PhNO to give metal-coordinated stable nitroxyl radicals. In the presence of the strong and oxidatively stable phosphazene base tert-butylimino-tris(dimethylamino)phosphorane, the quite acidic ferrocenium ions 1+–5+ are deprotonated to give a pool of transient and persistent radicals with different deprotonation sites [1–Hx]•–[5–Hx]•. One rather persistent iron-centered radical [4–HN]•, deprotonated at the nitrogen atom, has been detected…

Spin trappingRadicalOrganic ChemistryPhotochemistryPhosphoranelaw.inventionInorganic ChemistryMetalNitrosobenzenechemistry.chemical_compoundDeprotonationchemistrylawvisual_artvisual_art.visual_art_mediumPhysical and Theoretical ChemistryElectron paramagnetic resonancePhosphazeneOrganometallics
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Chemical model systems for cellular nitros(yl)ation reactions.

2009

S-nitros(yl)ation belongs to the redox-based posttranslational modifications of proteins but the underlying chemistry is controversial. In contrast to current concepts involving the autoxidation of nitric oxide ( • NO, nitrogen monoxide), we and others have proposed the formation of peroxynitrite (oxoperoxonitrate (1-)) as an essential intermediate. This requires low cellular fluxes of 'NO and superoxide ( • O 2 - ), for which model systems have been introduced. We here propose two new systems for nitros(yl)ation that avoid the shortcomings of previous models. Based on the thermal decomposition of 3-morpholinosydnonimine, equal fluxes of • NO and • O 2 - were generated and modulated by the …

StereochemistrySwineNitrosationIn Vitro TechniquesPhotochemistryNitric OxideBiochemistryRedoxArticlechemistry.chemical_compoundElectrophilic substitutionPhysiology (medical)Peroxynitrous AcidAnimalsAutoxidationPhenolNitrosoniumSuperoxideSuperoxide DismutaseGlutathioneIsocitrate DehydrogenasePeroxynitrous acidchemistryModels ChemicalMolsidomineNitrosationCattlePeroxynitriteFree radical biologymedicine
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The catalytic reduction of nitrobenzene at the [MoVIO2(O2CC(S)(C6H5)2)2]2? complex intercalated in a Zn(II)-Al(III) layered double hydroxide host: A …

2001

The heterogeneous reduction of nitrobenzene by thiophenol catalyzed by the dianionic bis(2-sulfanyl-2,2-diphenylethanoxycarbonyl) dioxomolybdate(VI) complex, [MoVIO2(O2CC(S)(C6H5)2)2]2−, intercalated into a Zn(II)–Al(III) layered double hydroxide host [Zn3−xAlx(OH)6]x+, has been investigated under anaerobic conditions. Aniline was found to be the only product formed through a reaction consuming six moles of thiophenol for each mol of aniline produced. The kinetics of the system have been analyzed in detail. In excess of thiophenol, all reactions follow first-order kinetics (ln([PhNO2]/[PhNO2]0) = −kappt) with the apparent rate constant kapp being a complex function of both initial nitrobenz…

ThiophenolOrganic ChemistryInorganic chemistryBiochemistryMedicinal chemistryChemical reactionCatalysisInorganic ChemistryNitrobenzeneNitrosobenzenechemistry.chemical_compoundAnilineReaction rate constantchemistryCatalytic cyclePhysical and Theoretical ChemistryInternational Journal of Chemical Kinetics
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Nitric oxide increases the decay of matrix metalloproteinase 9 mRNA by inhibiting the expression of mRNA-stabilizing factor HuR.

2003

Dysregulation of extracellular matrix turnover is an important feature of many inflammatory processes. Rat renal mesangial cells express high levels of matrix metalloproteinase 9 (MMP-9) in response to inflammatory cytokines such as interleukin-1 beta. We demonstrate that NO does strongly destabilize MMP-9 mRNA, since different luciferase reporter gene constructs containing the MMP-9 3' untranslated region (UTR) displayed significant reduced luciferase activity in response to the presence of NO. Moreover, by use of an in vitro degradation assay we found that the cytoplasmic fractions of NO-treated cells contained a higher capacity to degrade MMP-9 transcripts than those obtained from contro…

Untranslated regionCytoplasmRNA StabilityMolecular Sequence DataGene ExpressionRNA-binding proteinBiologyKidneyNitric OxideELAV-Like Protein 1Gene expressionAnimalsElectrophoretic mobility shift assayNitric Oxide DonorsRNA MessengerEnzyme InhibitorsMolecular Biology3' Untranslated RegionsCyclic GMPCells CulturedRepetitive Sequences Nucleic AcidMessenger RNABase SequenceThree prime untranslated regionMolecular MimicryRNARNA-Binding ProteinsCell BiologyMolecular biologyRecombinant ProteinsRatsELAV ProteinsMatrix Metalloproteinase 9RibonucleoproteinsGuanylate CyclaseAntigens SurfaceAminoquinolinesDactinomycinSoluble guanylyl cyclaseInterleukin-1Nitroso CompoundsMolecular and cellular biology
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SYNTHESIS AND SAR STUDIES OF NEW 3-METHYL-5-(5-PROPYL-1H-1-R'-3-PYRAZOLYL)-1H-1-R-4-NITROSOPYRAZOLES AS ANTIMICOTIC AGENTS.

2013

antimicotic agents nitrosopyrazolesSettore CHIM/08 - Chimica Farmaceutica
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Syntheses of novelN-([18F]fluoroalkyl)-N-nitroso-4-methyl-benzenesulfonamides and decomposition studies of corresponding19F- and bromo-analogues: pot…

2003

N-([ 18 F]fluoroalkyl)-N-nitroso-4-methyl-benzensulfonamides [n-alkyl = (-CH 2 ) [ 18,19 F]F, n=2-4)] were synthesized in radiochemical yields ranging from 75-90% to provide new secondary labelling precursors for the syntheses of 18 F-labelled compounds. Preliminary decomposition studies utilizing the corresponding non-radioactive 19 F-compounds as well as the bromo containing analogous compounds were performed to evaluate their stability regarding temperature and basicity of the labelling medium. Furthermore, initial difficulties in labelling these compounds led to the development of a modified labelling procedure applying nearly solvent-free conditions. Extensive decomposition experiments…

chemistry.chemical_classificationChemistryOrganic ChemistryNitrosoBiochemistryDecompositionChemical synthesisAnalytical ChemistrySulfonamidechemistry.chemical_compoundLabellingDrug DiscoveryOrganic chemistryRadiology Nuclear Medicine and imagingReactivity (chemistry)SpectroscopyAlkylJournal of Labelled Compounds and Radiopharmaceuticals
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Structure and reactivity of a mononuclear gold(II) complex.

2017

Mononuclear gold(II) complexes are very rare labile species. Transient gold(II) species have been suggested in homogeneous catalysis and in medical applications, but their geometric and electronic structures have remained essentially unexplored: even fundamental data, such as the ionic radius of gold(II), are unknown. Now, an unprecedentedly stable neutral gold(II) complex of a porphyrin derivative has been isolated, and its structural and spectroscopic features determined. The gold atom adopts a 2+2 coordination mode in between those of gold(III) (four-coordinate square planar) and gold(I) (two-coordinate linear), owing to a second-order Jahn–Teller distortion enabled by the relativistical…

chemistry.chemical_classificationIonic radius010405 organic chemistryGeneral Chemical EngineeringHomogeneous catalysisGeneral Chemistry010402 general chemistry01 natural sciencesPorphyrin0104 chemical sciencesDivalentNitrosobenzenechemistry.chemical_compoundCrystallographyHomologous serieschemistryReactivity (chemistry)Derivative (chemistry)Nature chemistry
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A DFT Study of the Domino Inter [4 + 2]/Intra [3 + 2] Cycloaddition Reactions of Nitroalkenes with Enol Ethers

2000

The molecular mechanism of the domino inter [4 + 2]/intra [3 + 2] cycloaddition reactions of nitroalkenes with enol ethers to give nitroso acetal adducts has been characterized using density functional theory methods with the B3LYP functional and the 6-31G* basis set. The presence of Lewis acid catalyst and solvent effects has been taken into account to model the experimental environment. These domino processes comprise two consecutive cycloaddition reactions:  the first one is an intermolecular [4 + 2] cycloaddition of the enol ether to the nitroalkene to give a nitronate intermediate, which then affords the final nitroso acetal adduct through an intramolecular [3 + 2] cycloaddition reacti…

chemistry.chemical_classificationchemistry.chemical_compoundChemistryOrganic ChemistryEnol etherNitronateNitrosoLewis acids and basesNitroalkeneMedicinal chemistryEnolCycloadditionLewis acid catalysisThe Journal of Organic Chemistry
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Influence of Reactant Polarity on the Course of the Inverse-Electron-Demand Diels−Alder Reaction. A DFT Study of Regio- and Stereoselectivity, Presen…

1999

The molecular mechanisms for the inverse-electron-demand Diels−Alder reactions between nitroethene and three substituted ethenes (propene, methyl vinyl ether, and dimethylvinylamine) to give the corresponding nitroso cycloadducts have been characterized with density functional theory methods using the B3LYP/6-31G* calculational level. On the basis of stability arguments and molecular orbital analysis relative rates, regioselectivity, and stereoselectivity, the presence of Lewis acid catalyst modeled by the BH3 system and the inclusion of solvent effects as a function of the nature of substituent in the dienophile fragment are analyzed and discussed. The ortho attack mode presents transition…

chemistry.chemical_compoundchemistryOrganic ChemistrySubstituentRegioselectivityStereoselectivityNitrosoMethyl vinyl etherSolvent effectsInverse electron-demand Diels–Alder reactionPhotochemistryMedicinal chemistryLewis acid catalysisThe Journal of Organic Chemistry
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