Search results for "Reactivity"

showing 10 items of 880 documents

Cover Picture: Direct CH Metalation with Chromium(II) and Iron(II): Transition-Metal Host / Benzenediide Guest Magnetic Inverse-Crown Complexes (Ang…

2009

Chromation and ferration are the latest additions to the concept of alkali-metal-mediated metalation, as described by J. Klett, R. E. Mulvey, and co-workers in their Communication on page 3317 ff. While the more electropositive sodium is essential for the reaction, it is the less electropositive chromium or iron that actually performs deprotonation of benzene. This novel reactivity can be likened to a game of chess in which the queen (Na) holds the king in check, while the knight (Cr, Fe) scores checkm(etal)ate.

MetalationSodiumInorganic chemistrychemistry.chemical_elementGeneral ChemistryAlkali metalMedicinal chemistryCatalysisChromiumchemistry.chemical_compoundDeprotonationchemistryTransition metalReactivity (chemistry)BenzeneAngewandte Chemie International Edition
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Preparation and reactivity of 1,2-bis(imino)ethylpalladium(II) complexes

1982

Abstract The 1,2-bis(imino)ethylpalladium complex, t r a n s − [ P d C I { C ( = N R ) ︹ C H = N R } ( P P h 3 ) 2 ] (R =p-C6H4OMe, DABI) can be prepared by treatment of [Pd(PPh3)4] with two equivalents of CNC6H4OMe-p followed by slow addition of HCl at −70° C. The σ-bonded 1,2-bis(imino) group can be easily monoprotonated and undergoes acid hydrolysis to give the α-aldehydoimidoyl derivative t r a n s − [ P d C I { C ( = N R ) ︹ C H = O } ( P P h 3 ) 2 ] . Condensation of the aldehydic carbonyl group with methylamine yields the product t r a n s − [ P d C I { C ( = N C 6 H 4 O M e − p ) ︹ C H = N M e } ( P P h 3 ) 2 ] , DABII, with different substituents on the N-imino atoms. Substitution …

MethylamineStereochemistryOrganic ChemistryCenter (category theory)chemistry.chemical_elementBiochemistryAdductInorganic ChemistryMetalchemistry.chemical_compoundchemistryvisual_artMaterials Chemistryvisual_art.visual_art_mediumReactivity (chemistry)ChelationEthyl groupPhysical and Theoretical ChemistryPalladiumJournal of Organometallic Chemistry
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Cross-Reactivity of Epstein-Barr Virus-Specific Immunoglobulin M Antibodies with Cytomegalovirus Antigens Containing Glycine Homopolymers

2001

ABSTRACTTimely and reliable detection of acute primary human cytomegalovirus (HCMV) infection is important in prenatal screening programs and for differential diagnosis of infectious mononucleosis-like disease. Enzyme-linked immunosorbent assays (ELISAs) based on HCMV proteins enable the sensitive detection of immunoglobulin M (IgM) antibodies during primary infection. However, concerns have been raised about possible cross-reactivities of the HCMV antigens used for the design of such ELISAs with IgM antibodies induced by Epstein-Barr Virus (EBV). In this study we investigated whether IgM antibodies generated during acute EBV infection reacted with recombinant HCMV antigens. Serum samples f…

Microbiology (medical)Human cytomegalovirusHerpesvirus 4 HumanPolymersvirusesClinical BiochemistryImmunologyAmino Acid MotifsMolecular Sequence DataCongenital cytomegalovirus infectionGlycineCytomegalovirusEnzyme-Linked Immunosorbent AssayBiologyCross Reactionsmedicine.disease_causeAntibodies ViralCross-reactivityVirusViral ProteinsAntigenAntibody SpecificitymedicineImmunology and AllergyAmino Acid SequenceAntigens Viralvirus diseasesbiochemical phenomena metabolism and nutritionmedicine.diseaseVirologyEpstein–Barr virusDNA-Binding ProteinsKineticsImmunoglobulin MImmunoglobulin MImmunologybiology.proteinMicrobial ImmunologyAntibody
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Unraveling the role of protein dynamics in dihydrofolate reductase catalysis

2013

Protein dynamics have controversially been proposed to be at the heart of enzyme catalysis, but identification and analysis of dynamical effects in enzyme-catalyzed reactions have proved very challenging. Here, we tackle this question by comparing an enzyme with its heavy ((15)N, (13)C, (2)H substituted) counterpart, providing a subtle probe of dynamics. The crucial hydride transfer step of the reaction (the chemical step) occurs more slowly in the heavy enzyme. A combination of experimental results, quantum mechanics/molecular mechanics simulations, and theoretical analyses identify the origins of the observed differences in reactivity. The generally slightly slower reaction in the heavy e…

Models MolecularComputational chemistryStereochemistryKineticsBiophysicsMolecular Dynamics SimulationTritiumCatalysisEnzyme catalysisReaction coordinateReaction rateMolecular dynamicsQuantum biologyEscherichia coliReactivity (chemistry)Carbon IsotopesQuantum biologyMultidisciplinaryNitrogen IsotopesChemistryProtein dynamicsBiological chemistryProteinsTetrahydrofolate DehydrogenaseKineticsChemical physicsPhysical Sciences
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On the Catalytic Effect of Water in the Intramolecular Diels–Alder Reaction of Quinone Systems: A Theoretical Study

2012

The mechanism of the intramolecular Diels#8211;Alder (IMDA) reaction of benzoquinone 1, in the absence and in the presence of three water molecules, 1w, has been studied by means of density functional theory (DFT) methods, using the M05-2X and B3LYP functionals for exploration of the potential energy surface (PES). The energy and geometrical results obtained are complemented with a population analysis using the NBO method, and an analysis based on the global, local and group electrophilicity and nucleophilicity indices. Both implicit and explicit solvation emphasize the increase of the polarity of the reaction and the reduction of activation free energies associated with the transition stat…

Models MolecularImplicit solvationPopulationpolar Diels–Alder reactionsMolecular ConformationPharmaceutical SciencePhotochemistryArticleCatalysisAnalytical Chemistrylcsh:QD241-441lcsh:Organic chemistryComputational chemistryDrug DiscoveryDFT reactivity indicesComputer SimulationPhysical and Theoretical ChemistryeducationDiels–Alder reactioneducation.field_of_studyCycloaddition ReactionChemistryOrganic Chemistryintramolecular Diels–Alder reactionsSolvationQuinonesWaterHydrogen Bondingwater catalysisBenzoquinoneTransition stateModels ChemicalChemistry (miscellaneous)Intramolecular forceMolecular MedicineQuantum TheoryThermodynamicsDensity functional theorylocal reactivity difference indexDiterpenesAlgorithmsMolecules
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Synthesis and reactivity of the novel hydride derivative RhHCl(TIMP3) (HTIMP3 = tris[1-(diphenylphosphino)-3-methyl-1H-indol-2-yl]methane)

2009

The reaction of HTIMP(3) (HTIMP(3) = tris[1-(diphenylphosphino)-3-methyl-1H-indol-2-yl]methane) with [RhCl(COD)](2) and Rh(acac)(CO)(2) produces RhHCl(TIMP(3)) (1H) and Rh(TIMP(3))(CO) (2), respectively, both exhibiting tetradentate kappaC,kappa(3)P-coordination of the TIMP(3) moiety. The reaction of RhHCl(TIMP(3)) with nucleophiles (L) in the presence of AgBF(4) or AgPF(6) produces different compounds depending on the nature of L. Indeed, cationic Lewis adducts of formula [RhH(L)(TIMP(3))](+) ((2H+)-(5H+)) are obtained when L is CO, CNCH(2)Ph, pyridine or CH(2)CHCN. On the other hand, when the incoming nucleophile is CH(3)COOH the hydride-free complex [Rh(CH(3)COO)(TIMP(3))](+) ((6+)) is o…

Models MolecularMolecular StructureHydrideChemistryCationic polymerizationStereoisomerismCrystallography X-RayMedicinal chemistryAdductInorganic Chemistrychemistry.chemical_compoundNucleophilePyridineOrganometallic CompoundsMoietyOrganic chemistryReactivity (chemistry)Derivative (chemistry)Dalton Transactions
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Unveiling the Different Chemical Reactivity of Diphenyl Nitrilimine and Phenyl Nitrile Oxide in [3+2] Cycloaddition Reactions with (R)-Carvone throug…

2020

The [3+2] cycloaddition (32CA) reactions of diphenyl nitrilimine and phenyl nitrile oxide with (R)-carvone have been studied within the Molecular Electron Density Theory (MEDT). Electron localisation function (ELF) analysis of these three-atom-components (TACs) permits its characterisation as carbenoid and zwitterionic TACs, thus having a different reactivity. The analysis of the conceptual Density Functional Theory (DFT) indices accounts for the very low polar character of these 32CA reactions, while analysis of the DFT energies accounts for the opposite chemoselectivity experimentally observed. Topological analysis of the ELF along the single bond formation makes it possible to characteri…

Models MolecularNitrilemolecular mechanismsPharmaceutical Science010402 general chemistrynitrilimines01 natural sciencesArticleAnalytical Chemistrylcsh:QD241-441chemistry.chemical_compoundlcsh:Organic chemistryComputational chemistryDrug DiscoveryNitrilesSingle bondReactivity (chemistry)Physical and Theoretical ChemistryChemoselectivityCarbenoidCycloaddition ReactionMolecular Structure010405 organic chemistryChemistryNitrilimineOrganic ChemistryBiphenyl Compoundsmolecular electron density theory[3+2] cycloadditionsCycloaddition0104 chemical sciencesChemistry (miscellaneous)chemoselectivitynitrile oxidesMolecular MedicineQuantum TheoryDensity functional theoryMolecules
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Exploring the redox reactivity of magnesium porphine. Insight into the origins of electropolymerisation.

2010

International audience; Magnesium(II) porphine, MgP (1), was synthesised according to the Lindsey procedure allowing to isolate and crystallise 1-formyldipyrromethane (2) as a synthetic intermediate. Unprecedented Xray diffraction studies revealed multiple intermolecular associations in the crystal between neighbouring units of 2, namely hydrogen bond and CH … π. The electrochemical behaviour of 1 was examined by means of cyclic voltammetry. In oxydation, two well-defined and distinct steps are assigned to macrocycle concerned electron transfers yielding initially the π-cation radical and π dication, respectively. The highly reactive dication condenses neutral magnesium porphine to form a d…

Models MolecularPorphyrinsInorganic chemistrychemistry.chemical_element010402 general chemistryElectrochemistryCrystallography X-Ray01 natural sciencesRedoxOligomerInorganic Chemistrychemistry.chemical_compound[CHIM.ANAL]Chemical Sciences/Analytical chemistryPolymer chemistryElectrochemistryOrganometallic Compounds[CHIM.COOR]Chemical Sciences/Coordination chemistryReactivity (chemistry)Magnesium[CHIM.ORGA]Chemical Sciences/Organic chemistry010405 organic chemistryHydrogen bondChemistryMagnesiumHydrogen Bonding[CHIM.MATE]Chemical Sciences/Material chemistry0104 chemical sciencesDicationCyclic voltammetryOxidation-ReductionDalton transactions (Cambridge, England : 2003)
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Understanding the Mechanism of the Intramolecular Stetter Reaction. A DFT Study

2012

The mechanism of the N-heterocyclic carbene (NHC)-catalyzed intramolecular Stetter reaction of salicylaldehyde 1 to yield chromanone 3 has been theoretically studied at the B3LYP/6-31G** level. This NHC-catalyzed reaction takes place through six elementary steps, which involve: (i) formation of the Breslow intermediate IN2; (ii) an intramolecular Michael-Type addition in IN2 to form the new C-C s bond; and (iii) extrusion of the NHC catalyst from the Michael adduct to yield chromanone 3. Analysis of the relative free energies in toluene indicates that while formation of Breslow intermediate IN2 involves the rate-determining step of the catalytic process, the intramolecular Michael-type addi…

Models MolecularStereochemistryPharmaceutical Scienceintramolecular Stetter reactionDFT calculationsArticleCatalysisAnalytical ChemistryStereocenterCatalysislcsh:QD241-441chemistry.chemical_compoundlcsh:Organic chemistryComputational chemistryHeterocyclic CompoundsDrug Discoveryintramolecular Michael additionorganocatalysisN-heterocyclic carbenesPhysical and Theoretical ChemistrymechanismsChemistryOrganic ChemistryStetter reactionorganocatalysis; <em>N</em>-heterocyclic carbenes; <em>umpolung</em> reactivity; intramolecular Stetter reaction; intramolecular Michael addition; mechanisms; DFT calculationsSalicylaldehydeChemistry (miscellaneous)Yield (chemistry)OrganocatalysisIntramolecular forceumpolung reactivityMolecular MedicineCarbeneMethaneMolecules
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Magnesium Exchanged Zirconium Metal−Organic Frameworks with Improved Detoxification Properties of Nerve Agents

2019

UiO-66, MOF-808 and NU-1000 metal-organic frameworks exhibit a differentiated reactivity toward [Mg(OMe)2(MeOH)2]4 related to their pore accessibility. Microporous UiO-66 remains unchanged while mesoporous MOF-808 and hierarchical micro/mesoporous NU-1000 materials yield doped systems containing exposed MgZr5O2(OH)6 clusters in the mesoporous cavities. This modification is responsible for a remarkable enhancement of the catalytic activity toward the hydrolytic degradation of P-F and P-S bonds of toxic nerve agents, at room temperature, in unbuffered aqueous solutions.

Models MolecularSurface PropertiesQuímica organometàl·licachemistry.chemical_element010402 general chemistry01 natural sciencesBiochemistryCatalysisCatalysisColloid and Surface ChemistryPolymer chemistryReactivity (chemistry)MagnesiumParticle SizeMaterialsMetal-Organic FrameworksZirconiumAqueous solutionMagnesiumHydrolysisTemperatureGeneral ChemistryMicroporous material0104 chemical scienceschemistryMetal-organic frameworkZirconiumMesoporous materialNerve AgentsOxidation-ReductionPorosity
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