Search results for "reo"

showing 10 items of 7464 documents

Addition of thiols to the double bond of dipeptide C-terminal dehydroalanine as a source of new inhibitors of cathepsin C.

2017

Addition of thiols to double bond of glycyl-dehydroalanine and phenyl-dehydroalanine esters provided micromolar inhibitors of cathepsin C. The structure-activity studies indicated that dipeptides containing N-terminal phenylalanine exhibit higher affinity towards the enzyme. A series of C-terminal S-substituted cysteines are responsible for varying interaction with S1 binding pocket of cathepsin C. Depending on diastereomer these compounds most likely act as slowly reacting substrates or competitive inhibitors. This was proved by TLC analysis of the medium in which interaction of methyl (S)-phenylalanyl-(R,S)-(S-adamantyl)cysteinate (7i) with the enzyme was studied. Molecular modeling enabl…

0301 basic medicineModels MolecularDouble bondStereochemistryPhenylalanineCysteine Proteinase InhibitorsBiochemistryCathepsin CCathepsin CSubstrate Specificity03 medical and health scienceschemistry.chemical_compoundStructure-Activity Relationship0302 clinical medicineDehydroalanineMoietyAnimalsSulfhydryl CompoundsBinding sitechemistry.chemical_classificationDipeptideAlanineBinding SitesDehydropeptidesDiastereomerEnzyme inhibitorsGeneral MedicineDipeptidesKinetics030104 developmental biologychemistryThiol addition030220 oncology & carcinogenesisCattleBiochimie
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Prefolded Synthetic G-Quartets Display Enhanced Bioinspired Properties

2016

International audience; A water-soluble template-assembled synthetic G-quartet (TASQ) based on the use of a macrocyclodecapeptide scaffold was designed to display stable intramolecular folds alone in solution. The preformation of the guanine quartet, demonstrated by NMR and CD investigations, results in enhanced peroxidase-type biocatalytic activities and improved quadruplex-interacting properties. Comparison of its DNAzyme-boosting properties with the ones of previously published TASQ revealed that, nowadays, it is the best DNAzyme-boosting agent.

0301 basic medicineModels MolecularGuanineStereochemistryDNAzymewaterSupramolecular chemistryDeoxyribozymednainsights010402 general chemistryG-QuartetsG-quadruplexchemistry[ CHIM ] Chemical Sciences01 natural sciencesCatalysissupramolecular chemistryg-quadruplex structures03 medical and health scienceschemistry.chemical_compoundG-quartets[CHIM]Chemical SciencesrnaComputingMilieux_MISCELLANEOUSligandsbiologyOrganic Chemistry[CHIM.CATA]Chemical Sciences/CatalysisGeneral ChemistryDNA CatalyticSmall moleculeG-quadruplexes0104 chemical sciencesSolutionssmall molecules030104 developmental biologychemistryBiocatalysisIntramolecular forceBiocatalysisNucleic Acid Conformationcyclodecapeptideacid
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The hydrolysis of 6-phosphogluconolactone in the second step of pentose phosphate pathway occurs via a two-water mechanism.

2018

Hydrolysis reaction marks the basis of life yet the mechanism of this crucial biochemical reaction is not completely understood. We recently reported the mechanisms of hydrolysis of nucleoside triphosphate and phosphate monoester. These two reactions hydrolyze P-O-P and P-O-C linkages, respectively. Here, we present the mechanism of hydrolysis of δ-6-phosphogluconolactone, which is an important precursor in the second step of the pentose phosphate pathway. Its hydrolysis requires the cleavage of C-O-C linkage and its mechanism is hitherto unknown. We report three mechanisms of hydrolysis of δ-6-phosphogluconolactone based on density functional computations. In the energetically most favorab…

0301 basic medicineModels MolecularStereochemistryBiophysicsPentose phosphate pathway010402 general chemistryCleavage (embryo)01 natural sciencesBiochemistryGluconatesPentose Phosphate Pathway03 medical and health scienceschemistry.chemical_compoundHydrolysis6-Phosphogluconolactonechemistry.chemical_classificationBinding SitesHydrolysisOrganic ChemistryWaterPhosphate0104 chemical sciencesEcoRV030104 developmental biologyEnzymechemistryNucleoside triphosphateQuantum TheoryThermodynamicsBiophysical chemistry
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Coordination of the biliverdin D-ring in bacteriophytochromes.

2018

Phytochrome proteins translate light into biochemical signals in plants, fungi and microorganisms. Light cues are absorbed by a bilin chromophore, leading to an isomerization and a rotation of the D-ring. This relays the signal to the protein matrix. A set of amino acids, which is conserved across the phytochrome superfamily, holds the chromophore in the binding pocket. However, the functional role of many of these amino acids is not yet understood. Here, we investigate the hydrogen bonding network which surrounds the D-ring of the chromophore in the resting (Pr) state. We use UV/vis spectroscopy, infrared absorption spectroscopy and X-ray crystallography to compare the photosensory domains…

0301 basic medicineModels MolecularStereochemistryProtein ConformationProtein Data Bank (RCSB PDB)General Physics and Astronomyphytochrome proteinsbakteerit03 medical and health scienceschemistry.chemical_compoundProtein structureBacterial ProteinsProteobacteriabiochemical signalsDeinococcusPhysical and Theoretical ChemistryStigmatella aurantiacaBiliverdinBinding SitesbiologyPhytochromeBiliverdineta1182Deinococcus radioduransHydrogen BondingChromophorebiology.organism_classificationPhotochemical ProcessesD-ring030104 developmental biologychemistryproteiinitvalokemiaDeinococcusPhytochromeProtein BindingPhysical chemistry chemical physics : PCCP
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Oleanane-type glycosides from the roots of Weigela florida “rumba” and evaluation of their antibody recognition

2018

Three triterpene glycosides were isolated from the roots of Weigela florida "rumba" (Bunge) A. DC.: two previously undescribed 3-O-β-d-xylopyranosyl-(1→2)-[β-d-xylopyranosyl-(1→4)]-β-d-xylopyranosyl-(1→4)-β-d-xylopyranosyl-(1→3)-α-L-rhamnopyranosyl-(1→2)-α-l-arabinopyranosyloleanolic acid (1) and 3-O-β-d-xylopyranosyl-(1→2)-[β-d-glucopyranosyl-(1→4)]-β-d-xylopyranosyl-(1→4)-β-d-xylopyranosyl-(1→3)-α-l-rhamnopyranosyl-(1→2)-α-L-arabinopyranosyloleanolic acid (2), and one isolated for the first time from a natural source 3-O-β-d-xylopyranosyl-(1→3)-α-l-rhamnopyranosyl-(1→2)-α-l-arabinopyranosyloleanolic acid (3). Their structures were elucidated mainly by 2D NMR spectroscopic analysis (COSY, …

0301 basic medicineMultiple SclerosisStereochemistryEnzyme-Linked Immunosorbent AssayCaprifoliaceaePlant Roots01 natural sciences03 medical and health scienceschemistry.chemical_compoundTriterpeneDrug DiscoveryHumansGlycosidesOleanolic AcidCaprifoliaceaeOleanolic acidOleananePharmacologychemistry.chemical_classificationMolecular Structurebiology010405 organic chemistryGlycosideGeneral Medicinebiology.organism_classification0104 chemical sciences030104 developmental biologyImmunoglobulin MchemistryImmunoglobulin Mbiology.proteinAntibodyTwo-dimensional nuclear magnetic resonance spectroscopyFitoterapia
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Molecular docking-based design and development of a highly selective probe substrate for UDP-glucuronosyltransferase 1A10

2018

Intestinal and hepatic glucuronidation by the UDP-glucuronosyltransferases (UGTs) greatly affect the bioavailability of phenolic compounds. UGT1A10 catalyzes glucuronidation reactions in the intestine, but not in the liver. Here, our aim was to develop selective, fluorescent substrates to easily elucidate UGT1A10 function. To this end, homology models were constructed and used to design new substrates, and subsequently, six novel C3-substituted (4-fluorophenyl, 4-hydroxyphenyl, 4-methoxyphenyl, 4-(dimethylamino)phenyl, 4-methylphenyl, or triazole) 7-hydroxycoumarin derivatives were synthesized from inexpensive starting materials. All tested compounds could be glucuronidated to nonfluorescen…

0301 basic medicineMutantGlucuronidationPharmaceutical ScienceUGT1A10030226 pharmacology & pharmacySubstrate Specificity7-hydroxycoumarin derivativechemistry.chemical_compound0302 clinical medicineDrug DiscoveryCRYSTAL-STRUCTUREGlucuronosyltransferaseta116ta317AFFINITYchemistry.chemical_classificationChemistry3. Good healthMolecular ImagingMolecular Docking Simulation7-hydroxycoumarin317 Pharmacyin silicoMolecular MedicinefluorescenceUDP-glucuronosyltransferaseEXPRESSIONENZYMEStereochemistryIn silicoKineticsFLUORESCENT-PROBETriazoleta311103 medical and health sciencesGlucuronidesMicrosomesXENOBIOTICSHumansUmbelliferonesFluorescent DyesGLUCURONIDATIONta1182glucuronidationfluoresenssiSubstrate (chemistry)drug metabolism030104 developmental biologyEnzymeDRUG-METABOLISMDrug DesignMolecular ProbesMutationMutagenesis Site-DirectedORAL BIOAVAILABILITYDrug metabolism
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Nrf2 expression driven by Foxp3 specific deletion of Keap1 results in loss of immune tolerance in mice

2020

European journal of immunology 50(4), 515-524 (2020). doi:10.1002/eji.201948285

0301 basic medicineNF-E2-Related Factor 2T cellImmunologyAutoimmunitychemical and pharmacologic phenomenaBiologyLymphocyte ActivationT-Lymphocytes Regulatorydigestive systemenvironment and public healthImmune toleranceImmunomodulationMice03 medical and health sciences0302 clinical medicineImmune systemImmune TolerancemedicineAnimalsHomeostasisImmunology and AllergyTranscription factorPI3K/AKT/mTOR pathwayInflammationMice KnockoutKelch-Like ECH-Associated Protein 1ChimeraEffectorTOR Serine-Threonine KinasesPeripheral toleranceFOXP3Forkhead Transcription Factorshemic and immune systemsrespiratory systemCell biologyMice Inbred C57BLOxidative Stress030104 developmental biologymedicine.anatomical_structure030215 immunology
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2017

The side product of the cyclocondensation reaction between ethyl benzimidazole-2-carboxylate and the nitrile imine of the corresponding hydrazonyl chloride, C20H11BrClN5O, crystallized in two crystal forms. Form (1) is a co-crystal of the target compound (without any chlorine substituent) and a side product containing a Cl atom in position 2 of the bromophenyl group, C20H12BrN5O·0.143C20H11BrClN5O. (2) contains the pure side product. The slightly different conformation of the ring systems leads to a different packing of (1) and (2), but both crystal structures are dominated by π–π interactions.

0301 basic medicineNitrileStereochemistryImineGeneral ChemistryCrystal structureCondensed Matter PhysicsRing (chemistry)Medicinal chemistryChlorideD-1Crystal03 medical and health scienceschemistry.chemical_compound030104 developmental biologychemistryPyridinemedicineGeneral Materials Sciencemedicine.drugActa Crystallographica Section E Crystallographic Communications
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Inhibited fatty acid β-oxidation impairs stress resistance ability in Nile tilapia (Oreochromis niloticus)

2017

Energy metabolism plays important roles in stress resistance and immunity in mammals, however, such functions have not been established in fish. In the present study, Nile tilapia (Oreochromis niloticus) was fed with mildronate, an inhibitor of mitochondrial fatty acid (FA) β-oxidation, for six weeks subsequently challenged with Aeromonas hydrophila and ammonia nitrogen exposure. Mildronate treatment reduced significantly l-carnitine concentration and mitochondrial FA β-oxidation efficiency, while it increased lipid accumulation in liver. The fish with inhibited hepatic FA catabolism had lower survival rate when exposed to Aeromonas hydrophila and ammonia nitrogen. Moreover, fish fed mildro…

0301 basic medicineNitrogenAquatic ScienceMitochondrionFish DiseasesRandom Allocation03 medical and health sciencesNile tilapiaImmune systemAmmoniaStress PhysiologicalCarnitinemedicineAnimalsEnvironmental ChemistryCarnitinechemistry.chemical_classificationbiologyCatabolismFatty AcidsFatty acidCichlids04 agricultural and veterinary sciencesGeneral Medicinebiology.organism_classificationAnimal FeedAeromonas hydrophilaDietMitochondriaOreochromisAeromonas hydrophila030104 developmental biologychemistryBiochemistryDietary Supplements040102 fisheries0401 agriculture forestry and fisheriesGram-Negative Bacterial InfectionsOxidation-ReductionMethylhydrazinesmedicine.drugFish & Shellfish Immunology
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Identification of noncovalent proteasome inhibitors with high selectivity for chymotrypsin-like activity by a multistep structure-based virtual scree…

2016

Noncovalent proteasome inhibitors introduce an alternative mechanism of inhibition to that of covalent inhibitors, e.g. carfilzomib, used in cancer therapy. A multistep hierarchical structure-based virtual screening (SBVS) of the 65,375 NCI lead-like compound library led to the identification of two compounds (9 and 28) which noncovalently inhibited the chymotrypsin-like (ChT-L) activity (Ki = 2.18 and 2.12 μM, respectively) with little or no effects on the other two major proteasome proteolytic activities, trypsin-like (T-L) and post-glutamyl peptide hydrolase (PGPH) activities. A subsequent hierarchical similarity search over the full NCI database with the most active tripeptide-based inh…

0301 basic medicineNon-covalentVirtual screeningProteasome Endopeptidase ComplexStereochemistryProtein ConformationProteolysisDrug Evaluation PreclinicalTripeptideSubstrate Specificity03 medical and health scienceschemistry.chemical_compoundStructure-Activity RelationshipUser-Computer Interface0302 clinical medicineProtein structureCell Line TumorDrug DiscoverymedicineStructure–activity relationshipChymotrypsinHumansProteasome inhibitorCell ProliferationPharmacologyVirtual screeningmedicine.diagnostic_testOrganic ChemistryGeneral MedicineCarfilzomibPeptide scaffoldMolecular Docking SimulationProteasome inhibitors; Non-covalent; Peptide scaffold; Docking studies; Virtual screening030104 developmental biologyProteasomechemistryBiochemistryDocking (molecular)030220 oncology & carcinogenesisDocking studieProteolysisProteasome InhibitorsEuropean journal of medicinal chemistry
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