Search results for "Adduct"

showing 10 items of 320 documents

Diels-Alder Reactions of (1H-Indol-3-yl)-enacetamides and -endiacetamides: A Selective Access to Acetylamino-Functionalized [b]Annelated Indoles and …

1991

Diels-Alder reactions of the (1H-indol-3-yl)-enacetamides and -endiacetamides 1a–d with some carbodieno-philes and 4-phenyl-3H-1,2,4-triazole-3,5(4H)-dione give rise to the novel amino-functionalized carbazole; 4–6 and 8 (Scheme 3). Ethenetetracarbonitrile reacts with 1b to furnish the Michael-type adduct 7 (Scheme 3). Structural aspects of the starting materials 1, which exhibit above all 3-vinyl-1H-indole reactivity, are discussed with regard to the prediction of a Diels-Alder process.

Intramolecular reactionCarbazolemedicine.drug_classOrganic ChemistryRegioselectivityBiochemistryCatalysisCycloadditionAminoketoneAdductInorganic Chemistrychemistry.chemical_compoundchemistryDrug DiscoverymedicineOrganic chemistryStereoselectivityReactivity (chemistry)Physical and Theoretical ChemistryHelvetica Chimica Acta
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Hydrophilic and Hydrophobic Polymeric Derivatives of Anti-Inflammatory Agents Such as Alclofenac, Ketoprofen, and Ibuprofen

1991

Macromolecular prodrugs of a hydrophilic polymer [α,β-poly( N- hydroxyethyl)-DL-aspartamide (PHEA)] was used as a drug carrier. Three poly- (HEA)-NSAID adducts were studied: poly(HEA)-Alclofenac, poly(HEA)-Keto profen, and poly(HEA)-Ibuprofen. Prodrugs with different drug content were synthesized both as water-soluble and water-insoluble agents. Hydrolysis of water-soluble adducts in a simulated gastric juice was studied.

Ketoprofenchemistry.chemical_classificationPolymers and PlasticsChemistrymedicine.drug_class0206 medical engineeringBioengineering02 engineering and technologyPolymerProdrugAlclofenac021001 nanoscience & nanotechnologyIbuprofen020601 biomedical engineeringAnti-inflammatoryAdductBiomaterialsPolymer chemistryMaterials ChemistrymedicineOrganic chemistry0210 nano-technologyDrug carriermedicine.drugJournal of Bioactive and Compatible Polymers
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Dimeric n-Alkyl Complexes of Rare-Earth Metals Supported by a Linked Amido−Cyclopentadienyl Ligand:  Evidence for β-Agostic Bonding in Bridging n-Alk…

2002

The dimeric rare-earth hydrides [Ln(η^5:η^1-C_5Me_4SiMe_2NCMe_3)(THF)(μ-H)]_2 (Ln = Y, Yb) react with excess α-olefin H_2C ═ CHR (R = Et, ^nPr, ^nBu) in a 1,2-insertion to give the series of THF-free dimeric n-alkyl complexes [Ln(η^5:η^1-C_5Me_4SiMe_2NCMe_3)(μ-CH_2CH_2R)]_2 as isolable crystals. Single-crystal X-ray diffraction studies on the five derivatives [Y(η^5:η^1-C_5Me_4SiMe_2NCMe_2R‘)(μ-CH_2CH_2R)]_2 (R‘ = Me, R = Et, ^nBu; R‘ = Et, R = Et, ^nPr) and [Yb(η^5:η^1-C_5Me_4SiMe_2NCMe_3)(μ-CH_2CH_2^nBu)]_2 revealed that the centrosymmetric dimeric complexes consist of two trans-arranged [Ln(η^5:η^1-C_5Me_4SiMe_2NCMe_2R‘)] fragments connected by two μ-alkyl ligands. Most strikingly, there…

Lanthanidechemistry.chemical_classificationAgostic interactionLigandStereochemistryHydrideOrganic ChemistryMedicinal chemistryAdductInorganic Chemistrychemistry.chemical_compoundMonomerchemistryCyclopentadienyl complexPhysical and Theoretical ChemistryAlkylOrganometallics
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Catalytic Diastereo- and enantioselective vinylogous Mannich reaction of alkylidenepyrazolones to isatin-derived ketimines

2021

A valuable organocatalytic vinylogous Mannich reaction between alkylidenepyrazolones and isatin-derived ketimines has been successfully established. Squaramide organocatalyst, prepared from quinine, catalyzed the diastereo- and enantioselective vinylogous Mannich addition, affording a range of aminooxindole-pyrazolone adducts (24 examples) with excellent outcomes: up to 98% yield with complete diastereoselectivity and excellent enantioselectivity (up to 99% ee). Additionally, different synthetic transformations were performed with the chiral pyrazolone-oxindole adducts.

LetterChemistryIsatinOrganic ChemistrySquaramideEnantioselective synthesisBiochemistryCatalysisAdductReaccions químiqueschemistry.chemical_compoundCatàlisiYield (chemistry)Organic chemistryPhysical and Theoretical ChemistryMannich reactionQuímica orgànica
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Comparative G2(MP2) Molecular Orbital Study of B3H7XH3 and H3BXH3 Donor−Acceptor Complexes (X = N, P, and As)

2002

B3H7XH3 and H3BXH3 (X = N, P, and As) have been studied as donor−acceptor complex type at the G2(MP2) level of theory. Both single- and double-bridged structures of B3H7 Lewis acid are taken into account. Although the double-bridged structure is energetically favored in the isolated state, the coordination prefers the single-bridged one. The monoborane adducts adopt the staggered arrangement with C3v symmetry. The energetic analysis by natural bond orbital theory shows that the decrease of hyperconjugative contribution upon complexation in the B3H7 moiety has, as consequence, a loss of symmetry for B3H7XH3 (X= P and As) complexes. In the two series, the coordination is the result of two opp…

Ligand field theoryNon-bonding orbitalChemistryStereochemistryMoietyMolecular orbitalLewis acids and basesPhysical and Theoretical ChemistryAcceptorNatural bond orbitalAdductThe Journal of Physical Chemistry A
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Studies on adducts of organotin(IV) halides with bis(acetylacetone)ethylenediimine

1971

The solid state configuration of 1/1 adducts, formed by mono-, di- and tri-organotin(IV) halides with the potentially tetradentate ligand bis(acetylacetone)ethylenediimine, has been investigated. The infrared spectra suggest that the neutral ligand coordinates SnIV through N (or O) atoms of the H-bonded acetylacetoneimine moieties. The skeletal vibrations associated to Sn-C and Sn-Cl bonds are consistent with square planar configurations of the organotin(IV) halide moieties, where SnCl3 and C3Sn groups would be T-shaped, and Alk2SnCl2 would have trans-dialkyl, trans-dichloro arrangements. The latter configuration is supported by the magnitude of the quadrupole splittings. Measurements of th…

LigandAcetylacetoneOrganic ChemistryInorganic chemistrychemistry.chemical_elementInfrared spectroscopyHalideBiochemistryAdductInorganic Chemistrychemistry.chemical_compoundCrystallographychemistryOctahedronMössbauer spectroscopyMaterials ChemistryPhysical and Theoretical ChemistryTinJournal of Organometallic Chemistry
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Adducts of 1,4-diazabutadienes with group IIB metal halides

1981

Abstract The reactions of 1,4-diazabutadienes (or α-diimines) RNC(R′)C(R″)NR, DAB, (R = p -C 6 H 4 OMe, R′ = R″ = H, DAB I ; R = p -C 6 H 4 OMe,R′ = H, R″ = Me, DAB II ; R = p -C 6 H 4 OMe, R′= R″ = Me; DAB III ; R = CMe 3 , R′ = R″ = H, DAB IV ) with MX 2 M = Zn, Cd, Hg; X = CI, Br) yield in general 1/1 adducts. These species are assigned a monomeric configuration with a σ,σ′-N,N′, chelating DAB ligand for M = Zn, Hg, whereas the CdCl 2 adducts have polymeric structures with terminal and/or bridging chlorides. In the reactions of CdCl 2 with DAB I or DAB IV polymeric species [(CdCl 2 ) 2 (DAB)] x are obtained in which all chlorides are bridging. Spectrophotometric dissociation equilib…

LigandInorganic chemistryImineMedicinal chemistryDissociation (chemistry)AdductInorganic Chemistrychemistry.chemical_compoundMetal halideschemistryMaterials ChemistryChelationTitrationPhysical and Theoretical ChemistryEquilibrium constantInorganica Chimica Acta
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Reaction of Rh2(μ2-O2CCH3)3[μ2-(C6H4)PMePh](HO2CCH3)2 with triphenylphosphine: rearrangement of the metalated PMePh2 ligand and formation of a compou…

1995

The reaction of [Rh2(μ2-O2CCH3)3{μ2-(C6H4)PMePh}] (1) in CHCl3 with one mole of PPh3 gives the two phosphine monoadducts, which are in rapid equilibrium above −40 °C. After 6 h at room temperature this mixture gives [Rh2(μ2-O2CCH32{μ2-(C6H4)PMePh}{μ2-(C6H4)PPh2}](HO2CCH3)2 (3), a doubly metalated compound with a head-to-head configuration. 1 reacts with two moles of PPh3, forming the bis-adduct 1.P2, which at 10 °C gives a mixture 3, in the form of its phosphine adduct 3.P, and [Rh2(μ2-O2CCH3)2{μ2-(CH2)PPh2}{μ2- (C6H4) PPh2}(PPh3)] (2). It is confirmed that 3.P is not the kinetic product in the reaction from 1.P2 to 2. The structure of [Rh2(μ2-O2CCH3)2{μ2-(CH2)PPh2}{μ2-(CP6H4) PPh2} (PPh3)]…

LigandStereochemistrychemistry.chemical_elementCrystal structureAdductRhodiumInorganic ChemistryBond lengthchemistry.chemical_compoundCrystallographychemistryMaterials ChemistryPhysical and Theoretical ChemistryTriphenylphosphinePhosphineMonoclinic crystal systemInorganica Chimica Acta
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ChemInform Abstract: Organoelement Derivatives of Steroids: Synthesis and Structural Characterization of Diorganotin Chloride Adducts of Hormones.

1987

Abstract Ten new diorganotin dichloride adducts of hormones of the type R 2 SnCl 2 ·2L [where R = Me, Et, n-Bu, Oct and Ph; L = 4-androsten-17s-ol-3-one ( A ); 5-androsten-3s-ol-17-one ( B ); 4-androsten-17α- methyl-17s-ol-3-one ( C ) and 3,17-dihydroxy-5- pregnene-20-one ( D )] have been prepared and characterized at 297 K and 223 K. Spectroscopic measurements (IR; Raman; 1 H, 13 C, 119 Sn NMR) suggest the dissociation or fast ligand exchange in solution at 297 K. Hexa-coordinated adducts with bonding through carbonyl oxygen and trans -R groups in octahedral geometry are formulated at 223 K.

Ligandchemistry.chemical_elementGeneral MedicineOxygenChlorideMedicinal chemistryDissociation (chemistry)Adductsymbols.namesakechemistryOctahedral molecular geometrysymbolsmedicineRaman spectroscopyHormonemedicine.drugChemInform
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Interaction of sulphate and chloride with cobalt(II)-carbonic anhydrase

1990

The interaction between Cobalt(II)-Bovine Carbonic Anhydrase II and the inhibitors sulphate and chloride have been investigated through 1H NMR and electronic absorption spectroscopies. Both inhibitors bind to the metal ion forming a 1:1 adduct and the corresponding affinity constants have been determined. These inhibitors interact weakly with CoBCA II and this interaction only occurs at low pH values. The T1 values of the meta-like protons of the coordinated histidines have been measured. The coordination number of the metal ion in the adducts is discussed on the basis of temperature dependence of the isotropic shifts, T1, and molar absorbance values.

Magnetic Resonance SpectroscopyCarbonic anhydrase IICoordination numberInorganic chemistryIon chromatographychemistry.chemical_elementBiochemistryChlorideAdductInorganic ChemistryChloridesCarbonic anhydrasemedicineCarbonic Anhydrase InhibitorsCarbonic AnhydrasesbiologySulfatesChemistryOsmolar ConcentrationTemperatureCobaltHydrogen-Ion ConcentrationSpectrophotometrybiology.proteinProton NMRCobaltmedicine.drugJournal of Inorganic Biochemistry
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