Search results for "pyridines"

showing 10 items of 310 documents

Ferromagnetic Cu(II)4, Co(II)4, and Ni(II)6 azido complexes derived from metal-assisted methanolysis of di-2,6-(2-pyridylcarbonyl)pyridine.

2009

Reaction of copper(II) perchlorate with di-2,6-(2-pyridylcarbonyl)pyridine (pyCOpyCOpy, dpcp) in the presence of sodium azide yields complex [Cu(4)(N(3))(2){pyC(OMe)(O)pyC(OMe)(O)py}(2)(MeOH)(2)](ClO(4)) x 2 MeOH (1 x 2 MeOH), which crystallizes in the monoclinic P2(1)/c space group. Similar reaction of cobalt(II) nitrate yields complex [Co(4)(N(3))(2)(NO(3))(2){pyC(OMe)(O)pyC(OMe)(O)py}(2)] x 0.5 MeOH (2 x 0.5 MeOH) which crystallizes in the monoclinic I2/m space group. Reaction of nickel(II) perchlorate yields complex [Ni(6)(CO(3))(N(3))(6){pyCOpyC(O)(OMe)py}(3)(MeOH)(2)(H(2)O)][Ni(6)(CO(3))(N(3))(6){pyCOpyC(O)(OMe)py}(3) (MeOH)(3)](ClO(4))(2) x 1.8 MeOH (3 x 1.8 MeOH), which crystallizes…

Models MolecularChemistryStereochemistryPyridinesCyclohexane conformationTemperaturechemistry.chemical_elementCobaltCrystallography X-RayMagnetic susceptibilityInorganic ChemistryPerchloratechemistry.chemical_compoundNickelCrystallographyMagneticsDeprotonationCubaneNickelPyridineOrganometallic CompoundsPhysical and Theoretical ChemistryCopperMonoclinic crystal systemInorganic chemistry
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Synthesis, characterization, cellular uptake and interaction with native DNA of a bis(pyridyl)-1,2,4-oxadiazole copper(II) complex

2010

The copper(II) complex of 3,5-bis(2'-pyridyl)-1,2,4-oxadiazole was synthesized and characterized. X-Ray crystallography revealed that the complex consists of a discrete [Cu(3,5-bis(2'-pyridyl)-1,2,4-oxadiazole)(2)(H(2)O)(2)](2+) cation and two ClO(4)(-) anions. The Cu(II) coordination sphere has a distorted octahedral geometry and each ligand chelates the copper ion through the N(4) nitrogen of the oxadiazole ring and the nitrogen of one pyridine moiety. The coordinated water molecules are in cis position and each of them is H-bonded to the 5-pyridyl nitrogen of the oxadiazole ligand and to an oxygen of the perchlorate anion. Biological assays showed that, despite the free ligand not being …

Models MolecularCircular dichroismCoordination sphereheterocylces metal complex DNA binders anti-tumoralsCell SurvivalPyridinesStereochemistrychemistry.chemical_elementOxadiazoleLigandsInorganic Chemistrychemistry.chemical_compoundPerchlorateCell Line TumorOctahedral molecular geometryOrganometallic CompoundsHumansOxadiazolesChemistryLigandDNASettore CHIM/06 - Chimica OrganicaCopperBinding constantCrystallographySettore CHIM/03 - Chimica Generale E InorganicaCopper
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A simple helical macrocyclic polyazapyridinophane as a stereoselective receptor of biologically important dicarboxylates under physiological conditio…

2007

The interaction of a synthetic enantiopure azamacrocyclic receptor (L) with biologically important chiral dicarboxylates (A, 1-7) has been studied by means of potentiometric titrations in 0.15 M NaCl aqueous solution in a wide pH range. This macrocycle forms strong complexes of the type [HnLA](n-2) (with n = 0-5). As a general trend, the binding is much tighter at basic or neutral pH than in acidic medium. Interestingly, nonprotected excitatory amino acids (Asp and Glu) are strongly bound even at acidic pH. Regarding selectivity, the receptor showed stereoselective binding toward those substrates bearing an H-bonding donor at Calpha, being S-selective in most of the cases, except for glutam…

Models MolecularCircular dichroismMacrocyclic CompoundsStereochemistryPyridinesPotentiometric titrationCarboxylic AcidsProtonationTartrateSodium Chloridechemistry.chemical_compoundAza CompoundsBinding SitesMolecular StructureChemistryOrganic ChemistryOsmolar ConcentrationWaterStereoisomerismGlutamic acidHydrogen-Ion ConcentrationSolutionsEnantiopure drugStability constants of complexesStereoselectivityProtonsThe Journal of organic chemistry
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Coordination Diversity in Mono- and Oligonuclear Copper(II) Complexes of Pyridine-2-Hydroxamic and Pyridine-2,6-Dihydroxamic Acids

2013

Solution and solid state studies on Cu(II) complexes of pyridine-2-hydroxamic acid (HPicHA) and pyridine-2,6-dihydroxamic acid (H2PyDHA) were carried out. The use of methanol/water solvent allowed us to investigate the Cu(II)-HPicHA equilibria under homogeneous conditions between pH 1 and 11. In agreement with ESI-MS indication, the potentiometric data fitted very well with the model usually reported for copper(II) complexes of α-aminohydroxamate complexes ([CuL](+), [Cu5(LH-1)4](2+), [CuL2], [CuL2H-1](-)), however with much higher stability of the 12-MC-4 species. A series of copper(II) complexes has been isolated in the solid state and characterized by a variety of spectroscopic methods, …

Models MolecularDenticityPyridinesPotentiometric titrationInorganic chemistrychemistry.chemical_elementCrystallography X-RayHydroxamic AcidsMedicinal chemistryMagnetic susceptibilityCopperInorganic ChemistrySolventchemistry.chemical_compoundchemistryCoordination ComplexesPyridineChelationMethanolProtonsPhysical and Theoretical Chemistryta116CopperInorganic Chemistry
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Thioetherification of Chloroheteroarenes: A Binuclear Catalyst Promotes Wide Scope and High Functional-Group Tolerance

2014

A constrained binuclear palladium catalyst system affords selective thioetherification of a wide range of functionalized arenethiols with chloroheteroaromatic partners with the highest turnover numbers (TONs) reported to date and tolerates a large variety of reactive functions. The scope of this system includes the coupling of thiophenols with six- and five-membered 2-chloroheteroarenes (i.e., functionalized pyridine, pyrazine, quinoline, pyrimidine, furane, and thiazole) and 3-bromoheteroarenes (i.e., pyridine and furane). Electron-rich congested thiophenols and fluorinated thiophenols are also suitable partners. The coupling of unprotected amino-2-chloropyridines with thiophenol and the s…

Models MolecularHalogenationPyrazinePhosphinesPyridineschemistry.chemical_elementSulfidesLigandsCatalysisCatalysischemistry.chemical_compoundPhenolsPyridineOrganic chemistrySulfhydryl CompoundsFuransThiazoleThiophenolOrganic ChemistryQuinolineGeneral ChemistryCombinatorial chemistryThiazoleschemistryPyrazinesFunctional groupQuinolinesPalladiumPalladiumChemistry - A European Journal
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Optimization of Triazine Nitriles as Rhodesain Inhibitors: Structure-Activity Relationships, Bioisosteric Imidazopyridine Nitriles, and X-ray Crystal…

2013

The cysteine protease rhodesain of Trypanosoma brucei parasites causing African sleeping sickness has emerged as a target for the development of new drug candidates. Based on a triazine nitrile moiety as electrophilic headgroup, optimization studies on the substituents for the S1, S2, and S3 pockets of the enzyme were performed using structure-based design and resulted in inhibitors with inhibition constants in the single-digit nanomolar range. Comprehensive structure-activity relationships clarified the binding preferences of the individual pockets of the active site. The S1 pocket tolerates various substituents with a preference for flexible and basic side chains. Variation of the S2 subs…

Models MolecularImidazopyridineMolecular modelNitrilePyridinesStereochemistryCathepsin LTrypanosoma brucei bruceiSubstituentCysteine Proteinase InhibitorsCrystallography X-RayLigandsBiochemistryStructure-Activity Relationshipchemistry.chemical_compoundParasitic Sensitivity TestsNitrilesDrug DiscoveryHumansMoietyGeneral Pharmacology Toxicology and PharmaceuticsTriazinePharmacologyDose-Response Relationship DrugMolecular StructurebiologyTriazinesChemistryLigandOrganic ChemistryImidazolesActive siteCysteine Endopeptidasesbiology.proteinMolecular MedicineChemMedChem
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Imidazolate bridged Cu(II)-Cu(II) and Cu(II)-Zn(II) complexes of a terpyridinophane azamacrocycle: a solution and solid state study.

2007

The dinuclear Cu2+ and Zn2+ as well as the mixed Cu2+-Zn2+ complexes of a 5,5''-pentaazaterpyridinophane ligand (L) are able to incorporate imidazolate (Im-) as a bridging ligand. The crystal structure of [Cu(2)L(Im)(Br)(H2O)](CF(3)SO(3))(2).3H2O (1) shows one copper coordinated by the three pyridine nitrogens of the terpyridine unit, one nitrogen of the imidazolate bridge (Im-) and one bromide anion occupying the axial position of a distorted square pyramid. The second copper atom is coordinated by the remaining imidazolate nitrogen, the three secondary nitrogens at the centre of the polyamine bridge and one water molecule that occupies the axial position. Magnetic measurements have been p…

Models MolecularMacrocyclic CompoundsMagnetic Resonance SpectroscopyPyridinesInorganic chemistrychemistry.chemical_elementCrystal structureCrystallography X-RayLigandsInorganic Chemistrychemistry.chemical_compoundMagneticsImidazolateElectrochemistryOrganometallic CompoundsImidazoleAza CompoundsMolecular StructureChemistryLigandSuperoxide DismutaseImidazolesTemperatureBridging ligandHydrogen-Ion ConcentrationCopperEnzyme ActivationSolutionsCrystallographyZincStability constants of complexesTerpyridineCopperDalton transactions (Cambridge, England : 2003)
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A synthetic molecular pentafoil knot

2011

Knots are being discovered with increasing frequency in both biological and synthetic macromolecules and have been fundamental topological targets for chemical synthesis for the past two decades. Here, we report on the synthesis of the most complex non-DNA molecular knot prepared to date: the self-assembly of five bis-aldehyde and five bis-amine building blocks about five metal cations and one chloride anion to form a 160-atom-loop molecular pentafoil knot (five crossing points). The structure and topology of the knot is established by NMR spectroscopy, mass spectrometry and X-ray crystallography, revealing a symmetrical closed-loop double helicate with the chloride anion held at the centre…

Models MolecularMagnetic Resonance SpectroscopyMacromolecular SubstancesPyridinesStereochemistryIronGeneral Chemical EngineeringCatenaneContext (language use)Crystallography X-RayLigandsChloridesMolecular knotAminesta116Topology (chemistry)Trefoil knotAldehydesMolecular StructurePolymer scienceHydrogen bondChemistryDNAGeneral ChemistryMechanically interlocked molecular architecturesIminesKnot (mathematics)Nature Chemistry
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Orientational preferences of aromatic guests in dimeric capsules of tetraurea calix[4]arenes—MD and NMR studies

2006

Molecular dynamics (MD) simulations have been performed for complexes of a dimeric capsule of a tetraurea calixarene with a series of twelve aromatic guests. A distinct orientational preference and a restriction of the internal mobility was found which depend on the size and electronic properties of the guests. The results are in agreement with the CIS values obtained from (1)H NMR spectroscopic measurements and with complexation selectivities obtained by competition experiments.

Models MolecularMagnetic Resonance SpectroscopyPyridinesChemistryOrganic ChemistryBinding CompetitiveBiochemistrySubstrate SpecificityKineticsMolecular dynamicsCrystallographyPhenolsPyrazinesCalixareneBenzene DerivativesProton NMRThermodynamicsUreaCalixarenesPhysical and Theoretical ChemistryElectronic propertiesOrg. Biomol. Chem.
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3-(2-Pyridyl)-[1,2,3]triazolo[1,5-a]pyridines. An experimental and theoretical (DFT) study of the ring-chain isomerization

2005

An experimental (1H NMR) and theoretical (DFT) study of the ring-chain-ring isomerization of 3-(2-pyridyl)-[1,2,3]triazolo[1,5-a]pyrid-7-yl derivatives (A) into 6-{[1,2,3]triazolo[1,5-a]pyrid-3-yl}-2-pyridyl derivatives (B) has been carried out. Based on the calculations, a mechanism of several steps will be proposed. The experimental results as well as the calculations lead to the conclusion that the A-B ratio depends on the electronic properties of the substituents. © The Royal Society of Chemistry 2005.

Models MolecularMagnetic Resonance SpectroscopyPyridinesChemistryOrganic ChemistryMolecular ConformationElectronsRing (chemistry)BiochemistryIsomerismChain (algebraic topology)Computational chemistryProton NMRPhysical and Theoretical ChemistryIsomerizationElectronic properties
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