Search results for "Anthraquinones"

showing 10 items of 26 documents

Comparative study of eco- and cytotoxicity during biotransformation of anthraquinone dye Alizarin Blue Black B in optimized cultures of microscopic f…

2017

The aim of this study was to select optimal conditions (C and N sources, initial pH and temperature) for biodecolorization of 0.03% anthraquinone dye Alizarin Blue Black B (ABBB) by microscopic fungi: Haematonectria haematococca BwIII43, K37 and Trichoderma harzianum BsIII33. The phenolic compounds, phytotoxicity (Lepidium sativum L.), biotoxicity (Microtox), cytotoxicity and yeast viability assay were performed to determine the extent of ABBB detoxification. Biodecolorization and detoxification of 0.03% ABBB in H. haematococca BwIII43 and T. harzianum BsIII33 cultures was correlated with extracellular oxidoreductases activity. In turn, secondary products, toxic to human fibroblasts and res…

0301 basic medicineCell SurvivalHealth Toxicology and MutagenesisAnthraquinones010501 environmental sciencesAlizarin01 natural sciencesLepidium sativumCell LineWater Purification03 medical and health scienceschemistry.chemical_compoundBiotransformationYeastsToxicity TestsHumansBiodecolorizationViability assayColoring AgentsCytotoxicityBiotransformationYeast model0105 earth and related environmental sciencesbiologyProoxidative toxicityPublic Health Environmental and Occupational HealthTrichoderma harzianumGeneral Medicinebiology.organism_classificationPollutionYeastHaematonectria haematococcaBiodegradation Environmental030104 developmental biologyBiochemistrychemistryPhytotoxicityDetoxificationOxidoreductasesOxidation-ReductionWater Pollutants ChemicalEcotoxicology and Environmental Safety
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Plasma modified PLA electrospun membranes for actinorhodin production intensification in Streptomyces coelicolor immobilized-cell cultivations

2017

Most of industrially relevant bioproducts are produced by submerged cultivations of actinomycetes. The immobilization of these Gram-positive filamentous bacteria on suitable porous supports may prevent mycelial cell-cell aggregation and pellet formation which usually negatively affect actinomycete submerged cultivations, thus, resulting in an improved biosynthetic capability. In this work, electrospun polylactic acid (PLA) membranes, subjected or not to O2-plasma treatment (PLA-plasma), were used as support for immobilized-cell submerged cultivations of Streptomyces coelicolor M145. This strain produces different bioactive compounds, including the blue-pigmented actinorhodin (ACT) and red-p…

0301 basic medicinePolyestersSegmented filamentous bacteriaS. coelicolor immobilizationAnthraquinonesStreptomyces coelicolor02 engineering and technologySecondary metaboliteSettore BIO/19 - Microbiologia GeneraleActinorhodinMicrobiology03 medical and health scienceschemistry.chemical_compoundColloid and Surface Chemistrystomatognathic systemPolylactic acidmedicinePlasma treatmentPhysical and Theoretical ChemistryIncubationMyceliumbiologyElectrospinningPhotoelectron SpectroscopyProdigiosinStreptomyces coelicolorActinorhodin productiontechnology industry and agricultureSettore ING-IND/34 - Bioingegneria IndustrialePLA membraneSurfaces and InterfacesGeneral Medicine021001 nanoscience & nanotechnologybiology.organism_classificationAnti-Bacterial Agents030104 developmental biologyMembraneSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialichemistryBiochemistryMicroscopy Electron Scanning0210 nano-technologyBiotechnologymedicine.drug
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The SCO1731 methyltransferase modulates actinorhodin production and morphological differentiation of Streptomyces coelicolor A3(2)

2018

AbstractStreptomyces coelicolor is a Gram-positive microorganism often used as a model of physiological and morphological differentiation in streptomycetes, prolific producers of secondary metabolites with important biological activities. In the present study, we analysed Streptomyces coelicolor growth and differentiation in the presence of the hypo-methylating agent 5′-aza-2′-deoxycytidine (5-aza-dC) in order to investigate whether cytosine methylation has a role in differentiation. We found that cytosine demethylation caused a delay in spore germination, aerial mycelium development, sporulation, as well as a massive impairment of actinorhodin production. Thus, we searched for putative DNA…

0301 basic medicineScienceMutantAnthraquinonesStreptomyces coelicolorDecitabineSettore BIO/19 - Microbiologia GeneraleDNA methyltransferaseArticleActinorhodin03 medical and health scienceschemistry.chemical_compoundBacterial ProteinsSpore germinationSpores BacterialRegulation of gene expressionMultidisciplinaryMyceliumbiologyStreptomyces coelicolorfungiQRActinorhodin ProductionCell DifferentiationGene Expression Regulation BacterialMethyltransferasesbiology.organism_classificationTn5 Mutant Strains030104 developmental biologychemistryBiochemistryHypomethylating AgentsStreptomyces coelicolor bacterial differentiation epigenetic cytosine methylationDNA methylationMedicineCytosineCytosine Methylation
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Gephyromycin, the first bridged angucyclinone, from Streptomyces griseus strain NTK 14

2005

The new, highly oxygenated angucyclinone gephyromycin was isolated from an extract of a Streptomyces griseus strain. Its unprecedented ether-bridged structure was elucidated by NMR methods and substantiated by single crystal X-ray analysis. The absolute configuration was evidenced by quantum chemical CD calculations. Gephyromycin exhibits glutaminergic activity towards neuronal cells. Furthermore, the known compounds fridamycin E and dehydrorabelomycin were identified.

Bridged-Ring CompoundsModels MolecularCell SurvivalStereochemistryAnthraquinonesPlant ScienceHorticultureBiochemistryStreptomycesAnimalsMoleculeMolecular BiologyCells CulturedNeuronsMolecular StructurebiologyStrain (chemistry)ChemistryStreptomycetaceaeStreptomyces griseusAbsolute configurationBiological activityGeneral Medicinebiology.organism_classificationRatsCalciumActinomycetalesStreptomyces griseusPhytochemistry
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Cardioprotective effects of phytopigments via multiple signaling pathways.

2021

Abstract Background Cardiovascular diseases (CVDs) are among the deadliest non-communicable diseases, and millions of dollars are spent every year to combat CVDs. Unfortunately, the multifactorial etiology of CVDs complicates the development of efficient therapeutics. Interestingly, phytopigments show significant pleiotropic cardioprotective effects both in vitro and in vivo. Purpose This review gives an overview of the cardioprotective effects of phytopigments based on in vitro and in vivo studies as well as clinical trials. Methods A literature-based survey was performed to collect the available data on cardioprotective activities of phytopigments via electronic search engines such as Pub…

Cardiotonic AgentsPharmaceutical ScienceAnthraquinonesXanthophyllsBioinformaticsstatAntioxidantsAnthocyaninsDrug DiscoveryMedicineAnimalsHumansClinical efficacyProtein kinase BPharmacologyFlavonoidsbusiness.industryNF-kappa BAMPKCarotenoidsClinical trialComplementary and alternative medicineCardiotoxicitiesCardiac hypertrophyMolecular MedicineSignal transductionbusinessSignal TransductionPhytomedicine : international journal of phytotherapy and phytopharmacology
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Induction of Secondary Metabolites from the Marine-Derived Fungus Aspergillus versicolor through Co-cultivation with Bacillus subtilis

2019

AbstractA new cyclic pentapeptide, cotteslosin C (1), a new aflaquinolone, 22-epi-aflaquinolone B (3), and two new anthraquinones (9 and 10), along with thirty known compounds (2, 4 – 8, 11 – 34) were isolated from a co-culture of the sponge-associated fungus Aspergillus versicolor with Bacillus subtilis. The new metabolites were only detected in the co-culture extract, but not when the fungus was grown under axenic conditions. Furthermore, the co-culture extract exhibited an enhanced accumulation of the known constituents versicolorin B (14), averufin (16), and sterigmatocyctin (19) by factors of 1.5, 2.0, and 4.7, respectively, compared to the axenic fungal culture. The structures of the …

Circular dichroismMagnetic Resonance SpectroscopyStereochemistryPharmaceutical ScienceAnthraquinonesMicrobial Sensitivity TestsBacillus subtilisQuinolonesGram-Positive BacteriaPeptides CyclicMass SpectrometryAnalytical ChemistryMicechemistry.chemical_compoundTermészettudományokCell Line TumorDrug DiscoveryAnthraquinonesAnimalsKémiai tudományokAxenicPharmacologyDose-Response Relationship DrugbiologyCytotoxinsChemistryCircular DichroismOrganic ChemistryAbsolute configurationbiology.organism_classificationCoculture TechniquesAnti-Bacterial AgentsAspergillusComplementary and alternative medicineMolecular MedicineAspergillus versicolorAntibacterial activityBacteriaBacillus subtilisPlanta Medica
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Isolation and identification of new anthraquinones from Rhamnus alaternus L and evaluation of their free radical scavenging activity

2018

From the butanolic and the ethyl acetate extracts of Rhamnus alaternus L root bark and leaves, three new anthraquinone glycosides, alaternosides A-C (1,4,6,8 tetrahydroxy-3 methyl anthraquinone 1-O-ß-D-glucopyranosyl-4,6-di-O-α-L-rhamnopyranoside (1); 1,2,6,8 tetrahydroxy-3 methyl anthraquinone 8-O-ß-D-glucopyranoside (2) and 1, 6 dihydroxy-3 methyl 6 [2′-Me (heptoxy)] anthraquinone (3)) were isolated and elucidated together with the two known anthraquinone glycosides, Physcion-8-O-rutinoside (4) and emodin-6-O-α-L-rhamnoside (5) as well as with the known kaempferol-7-methylether (6), β-sitosterol (7) and β-sitosterol-3-O-glycoside (8). Their chemical structures were elucidated using spectr…

DPPHRadicalEthyl acetateAnthraquinonesPlant Science01 natural sciencesBiochemistryAnthraquinoneMedicinal chemistryAnalytical Chemistrychemistry.chemical_compoundRhamnus alaternusAnthraquinonesGlycosidesKaempferolschemistry.chemical_classificationbiologyMolecular Structure010405 organic chemistryPlant ExtractsOrganic ChemistryGlycosideFree Radical Scavengersbiology.organism_classification0104 chemical sciences010404 medicinal & biomolecular chemistryRhamnuschemistryvisual_artvisual_art.visual_art_mediumBark
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Biotransformation and toxicity effect of monoanthraquinone dyes during Bjerkandera adusta CCBAS 930 cultures.

2020

Abstract The aim of this study was to evaluate of possibility of biotransformation and toxicity effect of monoanthraquinone dyes in cultures of Bjerkandera adusta CCBAS 930. Phenolic compounds, free radicals, phytotoxicity (Lepidium sativum L.), ecotoxicity (Vibrio fischeri) and cytotoxicity effect were evaluated to determine the toxicity of anthraquinone dyes before and after the treatment with B. adusta CCBAS 930. More than 80% of ABBB and AB129 was removed by biodegradation (decolorization) and biosorption, but biodegradation using oxidoreductases was the main dye removing mechanism. Secondary products toxic to plants and bacteria were formed in B. adusta strain CCBAS 930 cultures, despi…

Health Toxicology and Mutagenesis0211 other engineering and technologiesAnthraquinones02 engineering and technology010501 environmental sciences01 natural sciencesAnthraquinoneLepidium sativumchemistry.chemical_compoundBjerkandera adustaBiotransformationPhenolsHumansColoring AgentsBiotransformation0105 earth and related environmental sciences021110 strategic defence & security studiesbiologyChemistryPublic Health Environmental and Occupational HealthBiosorptionGeneral MedicineBiodegradationbiology.organism_classificationPollutionAliivibrio fischeriBiodegradation EnvironmentalBiochemistryToxicityPhytotoxicityEcotoxicityCoriolaceaeEcotoxicology and environmental safety
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Synthesis of Soluble Donor-Acceptor Double-Cable polymers based on polythiophene and tetracyanoanthraquinodimethane (TCAQ).

2003

[structure: see text] Novel suitably functionalized tetracyanoanthraquinodimethane (TCAQ) derivatives covalently linked to thiophene moieties have been synthesized. The thiophene-based monomers have been chemically polymerized and copolymerized to yield new and soluble donor-acceptor double-cable polymers. The absorption and emission data reveal that the optical properties can be finely tuned by modifying the ratio of monomers in the copolymerization process.

Magnetic Resonance SpectroscopyFotoricettoriPolymersAnthraquinonesThiophenesmacromolecular substancesBiochemistryIndicators and Reagentchemistry.chemical_compoundSpettroscopiaThiophenePolymer chemistryCopolymerThiophenePhysical and Theoretical ChemistryPolymerPolimerichemistry.chemical_classificationOrganic Chemistrytechnology industry and agriculturePolymerSettore CHIM/06 - Chimica OrganicaMonomerchemistryPolymerizationCovalent bondLuminescent MeasurementLuminescent MeasurementsPolythiopheneMolecular MedicineAnthraquinoneIndicators and ReagentsSpectrophotometry UltravioletAbsorption (chemistry)Celle solariSintesi
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Effect of PCL/PEG-Based Membranes on Actinorhodin Production in Streptomyces coelicolor Cultivations

2015

The actinomycetes, Gram-positive filamentous bacteria, are the most prolific source of natural occurring antibiotics. At an industrial level, antibiotics from actinomycete strains are produced by means of submerged fermentations, where one of the major factors negatively affecting bioproductivity is the pellet-shaped biomass growth. The immobilization of microorganisms on properly chosen supports prevents cell-cell aggregation resulting in improving the biosynthetic capability. Thus, novel porous biopolymer-based devices are developed by combining melt mixing and particulate leaching. In particular, polycaprolactone (PCL), polyethylene glycol (PEG), and sodium chloride (NaCl) with different…

Materials Chemistry2506 Metals and AlloysPCL/PEG membranePolymers and PlasticsPolyestersParticulate leachingS. coelicolor immobilizationAnthraquinonesStreptomyces coelicolorBioengineering02 engineering and technologyPolyethylene glycolengineering.material010402 general chemistry01 natural sciencesActinorhodinPolyethylene GlycolsBiomaterialschemistry.chemical_compoundMelt mixingPEG ratioBotanyMaterials ChemistryCell AggregationPolymers and PlasticbiologyChemistryStreptomyces coelicolorActinorhodin productiontechnology industry and agriculture021001 nanoscience & nanotechnologybiology.organism_classificationBiomaterialCell aggregationAnti-Bacterial Agents0104 chemical sciencesBlue coloredMembraneChemical engineeringFermentationengineeringBiopolymer0210 nano-technologyBiotechnology
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