Search results for "Biosynthesi"

showing 10 items of 526 documents

Comparative Genomics Analysis of Keratin-Degrading Chryseobacterium Species Reveals Their Keratinolytic Potential for Secondary Metabolite Production

2021

A promising keratin-degrading strain from the genus Chryseobacterium (Chryseobacterium sp. KMC2) was investigated using comparative genomic tools against three publicly available reference genomes to reveal the keratinolytic potential for biosynthesis of valuable secondary metabolites. Genomic features and metabolic potential of four species were compared, showing genomic differences but similar functional categories. Eleven different secondary metabolite gene clusters of interest were mined from the four genomes successfully, including five common ones shared across all genomes. Among the common metabolites, we identified gene clusters involved in biosynthesis of flexirubin-type pigment, m…

Microbiology (medical)SiderophoreGene clustersgene clustersQH301-705.5[SDV]Life Sciences [q-bio]keratinous materialsSecondary metaboliteBiologyMicrobiologyGenome03 medical and health scienceschemistry.chemical_compoundBiosynthesisVirologyGenome mininggenome miningmedicineBiology (General)GeneDegradation pathways030304 developmental biologyComparative genomicsdegradation pathways0303 health sciences030306 microbiologyKeratinous materialsmetabolic potentialCitric acid cycleMetabolic pathwayBiochemistrychemistryMetabolic potentialmedicine.drugMicroorganisms
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Molecular evidence for ongoing complementarity and horizontal gene transfer in endosymbiotic systems of mealybugs

2014

[EN] Intracellular bacterial supply of essential amino acids is common among sap-feeding insects, thus complementing the scarcity of nitrogenous compounds in plant phloem. This is also the role of the two mealybug endosymbiotic systems whose genomes have been sequenced. In the nested endosymbiotic system from Planococcus citri (Pseudococcinae), “Candidatus Tremblaya princeps” and “Candidatus Moranella endobia” cooperate to synthesize essential amino acids, while in Phenacoccus avenae (Phenacoccinae) this function is performed by its single endosymbiont “Candidatus Tremblaya phenacola.” However, little is known regarding the evolution of essential amino acid supplementation strategies in oth…

Microbiology (medical)SubfamilyECOSISTEMAS AGROFORESTALES (UPV)“Candidatus Tremblaya phenacola”lcsh:QR1-502Amino acidbiosynthesisGenomeMicrobiologyCandidatus Tremblayaphenacolalcsh:MicrobiologyCandidatus Tremblayaprincepscandidatus tremblaya phenacolaBotanyPlanococcus citriPRODUCCION VEGETALOriginal Research Articlecandidatus tremblaya princepsMealybugAmino acid synthesischemistry.chemical_classificationGeneticsmealybugsendosymbiosisEndosymbiosisEndosymbiosisbiologyamino acid biosynthesisfungiHorizontal gene transferbiochemical phenomena metabolism and nutritionbiology.organism_classificationAmino acidMealybugschemistryHorizontal gene transferhorizontal gene transfer“Candidatus Tremblaya princeps”Frontiers in Microbiology
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Iron in Translation: From the Beginning to the End

2021

Iron is an essential element for all eukaryotes, since it acts as a cofactor for many enzymes involved in basic cellular functions, including translation. While the mammalian iron-regulatory protein/iron-responsive element (IRP/IRE) system arose as one of the first examples of translational regulation in higher eukaryotes, little is known about the contribution of iron itself to the different stages of eukaryotic translation. In the yeast Saccharomyces cerevisiae, iron deficiency provokes a global impairment of translation at the initiation step, which is mediated by the Gcn2-eIF2α pathway, while the post-transcriptional regulator Cth2 specifically represses the translation of a subgroup of…

Microbiology (medical)TRNA modificationQH301-705.5Saccharomyces cerevisiaetranslationReviewSaccharomyces cerevisiaeyeastMicrobiology<i>Saccharomyces cerevisiae</i>03 medical and health sciencesiron deficiency0302 clinical medicineEukaryotic translationVirologyTranslational regulationProtein biosynthesisBiology (General)030304 developmental biology0303 health sciencesbiologyTranslation (biology)biology.organism_classificationCell biologyABCE1Codon usage biasbiology.proteintRNA modification030217 neurology & neurosurgeryMicroorganisms
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Specific adduction of plant lipid transfer protein by an allene oxide generated by 9-lipoxygenase and allene oxide synthase

2006

International audience; Lipid transfer proteins (LTPs) are ubiquitous plant lipid-binding proteins that have been associated with multiple developmental and stress responses. Although LTPs typically bind fatty acids and fatty acid derivatives in a non-covalent way, studies on the LTPs of barley seeds have identified an abundantly occurring covalently modified form, LTP1b, the lipid ligand of which has resisted clarification. In the present study, this adduct was identified as the {alpha}-ketol 9-hydroxy-10-oxo-12(Z)-octadecenoic acid. Further studies on the formation of LTP1b demonstrated that the ligand was introduced by nucleophilic attack of the free carboxylate group of the Asp-7 residu…

Models Molecular0106 biological sciencesMagnetic Resonance SpectroscopyTime FactorsLIPID TRANSFER PROTEINAlleneLipoxygenaseLigands01 natural sciencesBiochemistrySubstrate SpecificityMiceLipoxygenasechemistry.chemical_compoundJasmonate2. Zero hungerchemistry.chemical_classificationALLENE OXIDE SYNTHASEMice Inbred BALB C0303 health sciencesbiologyfood and beveragesLIPID TRANSFER PROTEIN;LTP;ALLENE OXIDE SYNTHASE;PROTEINE DE TRANSFERT DE LIPIDE;REPONSE DE LA PLANTEIntramolecular OxidoreductasessynthaseBiochemistryprotéineLTPPlant lipid transfer proteinsLinoleic acidGas Chromatography-Mass Spectrometry03 medical and health sciencesprotéine végétaleréaction de défenseBiosynthesisAnimals[SDV.BBM.BC]Life Sciences [q-bio]/Biochemistry Molecular Biology/Biochemistry [q-bio.BM]Molecular Biologymécanisme de défense030304 developmental biologyHybridomasFatty acidHordeumCell BiologyOxylipinenzymeoxylipineModels Chemicalchemistrybiology.proteinREPONSE DE LA PLANTEPROTEINE DE TRANSFERT DE LIPIDECarrier Proteins010606 plant biology & botany
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High-yield Production of Amyloid-β Peptide Enabled by a Customized Spider Silk Domain

2020

AbstractDuring storage in the silk gland, the N-terminal domain (NT) of spider silk proteins (spidroins) keeps the aggregation-prone repetitive region in solution at extreme concentrations. We observe that NTs from different spidroins have co-evolved with their respective repeat region, and now use an NT that is distantly related to previously used NTs, for efficient recombinant production of the amyloid-β peptide (Aβ) implicated in Alzheimer’s disease. A designed variant of NT from Nephila clavipes flagelliform spidroin, which in nature allows production and storage of β-hairpin repeat segments, gives exceptionally high yields of different human Aβ variants as a solubility tag. This tool e…

Models Molecular0301 basic medicineProtein domainBiophysicslcsh:MedicinePeptideBiosynthesis010402 general chemistryBiochemistry01 natural sciencesArticlelaw.invention03 medical and health sciencesProtein DomainslawAnimalsSpider silkAmino Acid SequenceNeurodegenerationlcsh:SciencePeptide sequencechemistry.chemical_classificationAmyloid beta-PeptidesMultidisciplinarybiologySpidroinlcsh:RNeurodegenerative diseasesNephila clavipesProteinsbiology.organism_classification0104 chemical sciences030104 developmental biologyBiochemistrychemistryYield (chemistry)Recombinant DNAlcsh:QPeptidesFibroinsScientific Reports
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Digitalis purpurea P5 beta R2, encoding steroid 5 beta-reductase, is a novel defense-related gene involved in cardenolide biosynthesis.

2009

The stereospecific 5 beta-reduction of progesterone is a required step for cardiac glycoside biosynthesis in foxglove plants. Recently, we have isolated the gene P5 beta R, and here we investigate the function and regulation of P5 beta R2, a new progesterone 5 beta-reductase gene from Digitalis purpurea. P5 beta R2 cDNA was isolated from a D. purpurea cDNA library and further characterized at the biochemical, structural and physiological levels. Like P5 beta R, P5 beta R2 catalyzes the 5 beta-reduction of the Delta(4) double bond of several steroids and is present in all plant organs. Under stress conditions or on treatment with chemical elicitors, P5 beta R expression does not vary, wherea…

Models MolecularDNA ComplementaryPhysiologyMolecular Sequence DataPlant ScienceBiologyGenes Plantchemistry.chemical_compoundBiosynthesisGene Expression Regulation PlantComplementary DNACardenolidemedicineAmino Acid SequenceRNA MessengerCloning MolecularBeta (finance)Cardiac glycosideRegulation of gene expressionDigitaliscDNA libraryReverse Transcriptase Polymerase Chain ReactionGene Expression ProfilingDigitalis purpureaSequence Analysis DNAbiology.organism_classificationCardenolidesKineticschemistryBiochemistryOxidoreductasesMetabolic Networks and Pathwaysmedicine.drugThe New phytologist
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A multifunctional bicupin serves as precursor for a chromosomal protein of Pisum sativum seeds.

2005

The fact that the psp54 gene codes for p16, a seed chromatin protein of Pisum sativum, has been described previously. In the present paper it is shown that p54, the p16 precursor, also exists as a free polypeptide in pea and that it also yields p38, a second polypeptide from the N-terminal region of p54, which is co-localized at a subcellular level with p16. By using antibodies against pea p16 and p38, it was found that these proteins are present in the members of the tribe Viciae examined. Sequence analysis and 3D modelling indicates that p54 proteins belong to the cupin superfamily, and that they are related to sucrose binding proteins and, to a lesser extent, to vicilin-type seed storage…

Models MolecularPhysiologySequence analysisChromosomal Proteins Non-HistoneMolecular Sequence DataPlant ScienceResponse ElementsDNA-binding proteinPisumSativumGene Expression Regulation PlantSequence Analysis ProteinGene expressionStorage proteinAmino Acid SequenceRNA MessengerProtein PrecursorsPromoter Regions GeneticGenePlant Proteinschemistry.chemical_classificationMessenger RNAbiologyPeasfood and beveragesbiology.organism_classificationBiochemistrychemistryMultigene FamilyProtein BiosynthesisSeedsProtein Processing Post-TranslationalSequence AlignmentAbscisic AcidJournal of experimental botany
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RNA nucleotide methylation

2011

Methylation of RNA occurs at a variety of atoms, nucleotides, sequences and tertiary structures. Strongly related to other posttranscriptional modifications, methylation of different RNA species includes tRNA, rRNA, mRNA, tmRNA, snRNA, snoRNA, miRNA, and viral RNA. Different catalytic strategies are employed for RNA methylation by a variety of RNA-methyltransferases which fall into four superfamilies. This review outlines the different functions of methyl groups in RNA, including biophysical, biochemical and metabolic stabilization of RNA, quality control, resistance to antibiotics, mRNA reading frame maintenance, deciphering of normal and altered genetic code, selenocysteine incorporation,…

Models MolecularRNA methylationRNA-dependent RNA polymeraseRNA ArchaealBiologyMethylationBiochemistryRNA TransferDrug Resistance BacterialRNA Processing Post-TranscriptionalMolecular BiologyGeneticstRNA MethyltransferasesBinding SitesIntronRNANon-coding RNARNA BacterialRNA silencingRNA RibosomalRNA editingProtein BiosynthesisBiocatalysisNucleic Acid ConformationRNARNA ViralSmall nuclear RNAWIREs RNA
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Asymmetric synthesis of α,β-diamino acid derivatives with an aziridine-, azetidine- and γ-lactone-skeleton via Mannich-type additions across α-chloro…

2012

The efficient asymmetric synthesis of new chiral γ-chloro-α,β-diamino acid derivatives via highly diastereoselective Mannich-type reactions of N-(diphenylmethylene) glycine esters across a chiral α-chloro-N-p-toluenesulfinylimine was developed. The influence of the base, LDA or LiHMDS, used for the formation of the glycine enolates, was of great importance for the anti-/syn-diastereoselectivity of the Mannich-type reaction. The γ-chloro-α,β-diamino acid derivatives proved to be excellent building blocks for ring closure towards optically pure anti- and syn-β,γ-aziridino-α-amino esters, and subsequent ring transformation into trans-3-aminoazetidine-2-carboxylic acid derivatives and α,β-diami…

Models MolecularStereochemistryAziridinesAzetidineDiamino acidRing (chemistry)BiochemistryLactoneschemistry.chemical_compoundBiosynthesisAmino AcidsPhysical and Theoretical Chemistryta116chemistry.chemical_classificationMolecular StructureSulfur CompoundsOrganic ChemistryEnantioselective synthesisStereoisomerismAziridinechemistryGlycineAzetidinesIminesChlorine CompoundsLactoneOrganic &amp; Biomolecular Chemistry
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Molecular Architecture of Strictosidine Glucosidase: The Gateway to the Biosynthesis of the Monoterpenoid Indole Alkaloid Family[W]

2007

Abstract Strictosidine β-d-glucosidase (SG) follows strictosidine synthase (STR1) in the production of the reactive intermediate required for the formation of the large family of monoterpenoid indole alkaloids in plants. This family is composed of ∼2000 structurally diverse compounds. SG plays an important role in the plant cell by activating the glucoside strictosidine and allowing it to enter the multiple indole alkaloid pathways. Here, we report detailed three-dimensional information describing both native SG and the complex of its inactive mutant Glu207Gln with the substrate strictosidine, thus providing a structural characterization of substrate binding and identifying the amino acids …

Models MolecularStrictosidine synthaseGlutamineGlutamic AcidPlant ScienceCrystallography X-RayLigandsCatalysisProtein Structure SecondaryRauwolfiaIndole AlkaloidsSubstrate Specificitychemistry.chemical_compoundBiosynthesisHydrolaseVinca AlkaloidsResearch ArticlesBinding SitesbiologyATP synthaseIndole alkaloidActive siteCell BiologySecologanin Tryptamine AlkaloidsKineticsBiochemistrychemistryStrictosidinebiology.proteinMutagenesis Site-DirectedMutant ProteinsGlucosidasesGlucosidases
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