Search results for "Bioinformatic"

showing 10 items of 1651 documents

Crystal structure of 1-(2-fluoro­benzo­yl)-2,7-di­meth­oxy­naphthalene

2014

The asymmetric unit of the compound contains two independent conformers. Each conformer is stacked along the a axis to form columns through van der Waals inter­actions only.

crystal structureCrystallographyAromaticityGeneral ChemistryCrystal structureDihedral angleCondensed Matter PhysicsRing (chemistry)Bioinformatics1-aroyl­naphthalene compoundResearch Communicationschemistry.chemical_compoundsymbols.namesakeCrystallographynon-coplanarly accumulated aromatic rings structurechemistryQD901-999symbolsMoleculeGeneral Materials Sciencevan der Waals forceConformational isomerism1-aroylnaphthalene compoundNaphthalenespatial organizationActa Crystallographica Section E: Structure Reports Online
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Crystal structure of (E)-4-[N-(7-methyl-2-phenyl-imidazo[1,2-a]pyridin-3-yl)carboximido-yl]phenol.

2015

The molecule of the title compound, C21H17N3O, is built up from fused five- and six-membered rings connected to a methyl group, a phenyl ring and an (iminomethyl)phenol group. The fused ring system is almost planar (r.m.s. deviation = 0.031 Å) and forms dihedral angles of 64.97 (7) and 18.52 (6)° with the phenyl ring and the (iminomethyl)phenol group, respectively. In the crystal, centrosymmetric molecules are linked by pairs of C—H...π interactions into dimeric units, which are further connected by O–H...N hydrogen bonds to form layers parallel to (101).

crystal structureCrystallographyHydrogen bondimidazo[12a]pyridine derivativeGeneral ChemistryCrystal structureDihedral angleCondensed Matter PhysicsRing (chemistry)Bioinformaticshydrogen bondingC—H⋯π inter­actionsMedicinal chemistryData ReportsCrystalchemistry.chemical_compoundC—H...π interactionschemistryQD901-999Group (periodic table)PhenolGeneral Materials ScienceMethyl groupActa crystallographica. Section E, Crystallographic communications
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Crystal structure of 2-(adamantan-1-yl)-5-(4-bromophenyl)-1,3,4-oxadiazole

2014

In the title molecule, C18H19BrN2O, the benzene ring is inclined to the oxadiazole ring by 10.44 (8)°. In the crystal, C—H...π interactions link the molecules in a head-to-tail fashion, forming chains extending along thec-axis direction. The chains are further connected by π–π stacking interactions, with centroid–centroid distances of 3.6385 (7) Å, forming layers parallel to thebcplane.

crystal structureCrystallographyStackingπ–π inter­actionsGeneral ChemistryCrystal structureCondensed Matter PhysicsBioinformaticsRing (chemistry)adamntane derivativeData ReportsCrystalchemistry.chemical_compoundCrystallographyC—H...π hydrogen bonds134-oxa­diazoleC—H⋯π hydrogen bondschemistryQD901-999π–π interactions134-oxadiazoleDiazoleGeneral Materials ScienceBenzeneActa Crystallographica Section E
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Crystal structure of 3-mesityl-1-[(pyridin-2-yl)methyl]-3,4,5,6-tetrahydropyrimidin-1-ium bromide monohydrate

2015

In the title hydrated salt, C19H24N3+·Br−·H2O, the values of the N—C bond lengths within the tetrahydropyrimidinium ring indicate delocalization of the N=C double bond. In the cation, the dihedral angle formed by the pyridine and benzene rings is 14.97 (12)°. In the crystal, ions and water molecules are linked by O—H...Br, O—H...N, C—H...Br and C—H...O hydrogen bonds into chains running parallel to thebaxis.

crystal structureDouble bondCrystal structureDihedral angleBioinformaticsRing (chemistry)lcsh:Chemistrychemistry.chemical_compoundBromidePyridineGeneral Materials SciencePhysics::Chemical Physicstetrahydropyrimidiniumchemistry.chemical_classificationQuantitative Biology::BiomoleculesChemistryHydrogen bondGeneral ChemistryCondensed Matter Physicshydrogen bondingData ReportsBond lengthCrystallographyNHC precursorlcsh:QD1-999tetra­hydro­pyrimidiniumActa Crystallographica Section E: Crystallographic Communications
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Crystal structure and computational study of 3,4-dihydroxy-3-hydroxymethyl-9-methyl-6-methylidene-3a, 4,5,6,6a, 9,9a, 9b-octahydroazuleno[4,5-b]furan…

2015

WOS: 000370762300147

crystal structureHOMOLUMOMOPACPM3Crystal structureRing (chemistry)BioinformaticsMedicinal chemistryCentaurea polypodiifoliaCNDOResearch CommunicationsCrystalCNDO/2theoretical investigationchemistry.chemical_compoundFuranGeneral Materials SciencePhysics::Chemical PhysicsHOMO/LUMOQuantitative Biology::Biomoleculescynarinin ACrystallographyHydrogen bondGeneral ChemistryCondensed Matter PhysicschemistryQD901-999
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Crystal structure of (E)-N-(3,4-di­meth­oxy­benzyl­idene)morpholin-4-amine

2014

In the title compound, C13H18N2O3, the benzene ring makes a dihedral angle of 17.19 (11)° with the least-squares plane formed by the four C atoms of the morpholine ring, which adopts a chair conformation. In the crystal, C—H...N hydrogen bonds link the molecules into supramolecular chains running along a 21screw axis parallel to theb-axis direction. Weak C—H...π interactions are also observed.

crystal structureHydrogen bondCyclohexane conformationSupramolecular chemistryGeneral ChemistryCrystal structureDihedral angleCondensed Matter PhysicsBioinformaticsRing (chemistry)hydrogen bondingC—H⋯π inter­actionsData Reportslcsh:ChemistryCrystalCrystallographychemistry.chemical_compoundC—H...π interactionslcsh:QD1-999chemistryMorpholineGeneral Materials ScienceSchiff basesC - H?? interactionsmorpholin-4-amineActa Crystallographica Section E: Structure Reports Online
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Crystal structure of a mixed-valence μ-oxide Sn12 cluster

2014

The mixed-valence μ-oxide Sn12cluster, decacarbonyltetra-μ4-oxido-hexa-μ3-oxido-tetrakis[μ-2,2′-(pyridine-2,6-diyl)bis(1,1-diphenylethanolato)]decatin(II)ditin(IV)dimolybdenum(O)(2Mo—Sn) toluene heptasolvate, [Mo2Sn12(C33H27NO2)4O10(CO)10]·7C7H8, has a crystallographically imposed inversion centre. The asymmetric unit also contains three and a half toluene solvent molecules, one of which is disordered about a centre of symmetry. The complex molecule comprises six distinct Sn atom species with four different coordination numbers, namely 3, 4, 5, and 6. The SnIIatoms forming the central Sn10O10core adopt distorted trigonal–pyramidal, square-pyramidal and octahedral coordination geometries pro…

crystal structureValence (chemistry)CrystallographyHydrogen bondLigandCoordination numberOxidecarbonylschemistry.chemical_elementGeneral ChemistryCrystal structureCondensed Matter PhysicsBioinformaticsS12 clusterData Reportschemistry.chemical_compoundCrystallographychemistrystannylenesQD901-999AtomGeneral Materials ScienceTinActa Crystallographica Section E
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Crystal structure of bis-(allyl-ammonium) oxalate.

2014

The title salt, 2C3H8N+·C2O42−, crystallized with six independent allylammonium cations and three independent oxalate dianions in the asymmetric unit. One of the oxalate dianions is nearly planar [dihedral angle between CO2planes = 1.91 (19)°], while the other two are twisted with angles of 11.3 (3) and 26.09 (13)°. One cation has a synperiplanar (cis) conformation with an N—C—C—C torsion angle of 0.9 (3)°, whereas the five remaining cations are characterized bygauchearrangements, with the N—C—C—C torsion angles ranging from 115.9 (12) to 128.8 (3)°. One of the allylammonium cations is positionally disordered (fixed occupancy ratio = 0.45:0.55). In the crystal, the cations and anions are co…

crystal structureoxalateallylammoniumHydrogen bondGeneral ChemistryCrystal structureAmmonium oxalateDihedral angleCondensed Matter PhysicsBioinformaticshydrogen bondingOxalateData ReportsDicationlcsh:Chemistrychemistry.chemical_compoundCrystallographydicationchemistrylcsh:QD1-999allyl­ammoniumGeneral Materials ScienceActa crystallographica. Section E, Structure reports online
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CoproID predicts the source of coprolites and paleofeces using microbiome composition and host DNA content

2020

Shotgun metagenomics applied to archaeological feces (paleofeces) can bring new insights into the composition and functions of human and animal gut microbiota from the past. However, paleofeces often undergo physical distortions in archaeological sediments, making their source species difficult to identify on the basis of fecal morphology or microscopic features alone. Here we present a reproducible and scalable pipeline using both host and microbial DNA to infer the host source of fecal material. We apply this pipeline to newly sequenced archaeological specimens and show that we are able to distinguish morphologically similar human and canine paleofeces, as well as non-fecal sediments, fro…

dogsArcheologyMicrobial DNAData Mining and Machine LearningCoprolitemicrobiomeendogenous DNAlcsh:MedicineMorphology (biology)Genomechemistry.chemical_compoundPaleofecesDog0601 history and archaeologyGutArqueologia Metodologia0303 health sciences060102 archaeologyGeneral NeuroscienceGeneral Medicine06 humanities and the artsGenomicsNextflowmachine learningnextflowgutGeneral Agricultural and Biological SciencesShotgun metagenomicsPaleofecesHumanpaleofecesBioinformaticsBiologyMicrobiologyGeneral Biochemistry Genetics and Molecular Biologydiversity03 medical and health sciencesEndogenous DNAMachine learningcoprolitedog molecular analysishumanMicrobiomeancient DNAgenome030304 developmental biology030306 microbiologyHost (biology)lcsh:RcultureAncient DNAarcheologychemistryEvolutionary biologyAnthropologyCoproliteMicrobiomedietDNAPeerJ
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Design and rationale of a nationwide screening analysis from the LIPIDOGRAM2015 and LIPIDOGEN2015 studies.

2022

IntroductionCardiovascular disease (CVD) is a major cause of morbidity and mortality throughout the world. The LIPIDOGRAM2015 study was performed to estimate the prevalence of risk factors for atherosclerotic diseases as well as cardiovascular and related disorders in the primary care setting in Poland. The LIPIDOGEN2015 sub-study was designed to include a random cohort of patients in order to analyse parameters related to lipid metabolism, oxidative stress, inflammatory responses, autoimmune disorders, and gene variants that confer susceptibility to cardiometabolic and atherosclerotic diseases.Material and methodsThe recruitment was carried out by 438 primary care physicians in Poland. The…

dyslipidaemiabusiness.industryGeneral Medicinemedicine.diseaseBioinformaticsmedicine.disease_causeScreening analysiscardiovascular diseasesinflammationmedicineoxidative stressatherosclerosisbusinesscardiometabolic diseasesgenesDyslipidemiaOxidative stressArchives of medical science : AMS
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