Search results for "Chemostat"

showing 7 items of 7 documents

Kinetics of styrene biodegradation by Pseudomonas sp. E-93486

2011

The research into kinetics of styrene biodegradation by bacterial strain Pseudomonas sp. E-93486 coming from VTT Culture Collection (Finland) was presented in this work. Microbial growth tests in the presence of styrene as the sole carbon and energy source were performed both in batch and continuous cultures. Batch experiments were conducted for initial concentration of styrene in the liquid phase changed in the range of 5–90 g m−3. The Haldane model was found to be the best to fit the kinetic data, and the estimated constants of the equation were: μm = 0.1188 h−1, KS = 5.984 mg l−1, and Ki = 156.6 mg l−1. The yield coefficient mean value \documentclass[12pt]{minimal} \usepackage{amsmath} \…

ChemistryBatch experimentKineticsAnalytical chemistryGeneral MedicineChemostatBacterial growthApplied Microbiology and BiotechnologyBiotechnological Products and Process EngineeringCarbonDilutionStyreneKineticschemistry.chemical_compoundChemostatPseudomonasYield (chemistry)Organic chemistrySensitivity (control systems)Energy sourceStyreneBiotransformationBiotechnologyApplied Microbiology and Biotechnology
researchProduct

Estimation of recombinant protein production in Pichia pastoris base don a constraint-based model

2012

[EN] A previously validated constraint based model and possibilistic MFA have been used to design a simple estimator of protein production rate in Pichia pastoris cultures. A structured model of the yeast P. pastoris metabolism is used to predict the balance of key energetic equivalents such as ATP from available measurements, mainly substrate consumption, gases exchange rates and biomass specific growth. It has been shown that ATP flux can be related to biomass growth and protein productivity specific rates by linear regression. Cross-validation has been applied for robust parameter fitting on the basis of chemostat, steady-state experimental conditions. In this way, protein estimation can…

Constraint-based modelbiologyUncertaintyfood and beveragesEstimatorBiomassProtein productivity predictionChemostatPossibilistic metabolic flux analysisBioinformaticsbiology.organism_classificationIndustrial and Manufacturing EngineeringYeastINGENIERIA DE SISTEMAS Y AUTOMATICAComputer Science ApplicationsPichia pastorisConstraint (information theory)Pichia pastorisControl and Systems EngineeringModeling and SimulationLinear regressionBiological systemFlux (metabolism)Mathematics
researchProduct

Respiratory behaviour of a Zymomonas mobilis adhB::kan(r) mutant supports the hypothesis of two alcohol dehydrogenase isoenzymes catalysing opposite …

2006

AbstractPerturbation of the aerobic steady-state in a chemostat culture of the ethanol-producing bacterium Zymomonas mobilis with a small pulse of ethanol causes a burst of ethanol oxidation, although the reactant ratio of the alcohol dehydrogenase (ADH) reaction ([NADH][acetaldehyde][H+])/([ethanol][NAD+]) remains above the Keq value. Simultaneous catalysis of ethanol synthesis and oxidation by the two ADH isoenzymes, residing in different redox microenvironments, has been proposed previously. In the present study, this hypothesis is verified by construction of an ADH-deficient strain and by demonstration that it lacks the oxidative burst in response to perturbation of its aerobic steady-s…

Kanamycin ResistanceBiophysicsMetabolic channellingChemostatBiochemistryRedoxZymomonas mobilisModels BiologicalCatalysischemistry.chemical_compoundContinuous cultureStructural BiologyGeneticsEthanol metabolismMolecular BiologyAlcohol dehydrogenaseZymomonasEthanolbiologyEthanolChemistryRespirationZymomonas mobilisAcetaldehydeAlcohol DehydrogenaseCell Biologybiology.organism_classificationAerobiosisIsoenzymesKineticsBiochemistrybiology.proteinMutant ProteinsNAD+ kinaseFEBS letters
researchProduct

Extracellular oxidoreduction potential modifies carbon and electron flow in Escherichia coli.

2000

ABSTRACT Wild-type Escherichia coli K-12 ferments glucose to a mixture of ethanol and acetic, lactic, formic, and succinic acids. In anoxic chemostat culture at four dilution rates and two different oxidoreduction potentials (ORP), this strain generated a spectrum of products which depended on ORP. Whatever the dilution rate tested, in low reducing conditions (−100 mV), the production of formate, acetate, ethanol, and lactate was in molar proportions of approximately 2.5:1:1:0.3, and in high reducing conditions (−320 mV), the production was in molar proportions of 2:0.6:1:2. The modification of metabolic fluxes was due to an ORP effect on the synthesis or stability of some fermentation enzy…

MESH : Models Chemical0106 biological sciencesMESH: Oxidation-ReductionMESH : Acetic AcidMESH : Escherichia coliMESH : NADFormatesOxaloacetatesMESH: Phosphoenolpyruvate CarboxylaseSuccinic AcidMESH: Alcohol DehydrogenaseMESH : CarbonMESH : EthanolMESH: Carbon Dioxide01 natural sciencesPhosphoenolpyruvatechemistry.chemical_compoundModels[INFO.INFO-BT]Computer Science [cs]/BiotechnologyAcetic Acid0303 health sciencesbiologyMESH: Escherichia coliMESH: Models ChemicalMESH : Acetyl Coenzyme AMESH: NADLactic acidMESH : Carbon DioxideBiochemistryFormic AcidsMESH: PhosphoenolpyruvateMESH: Acetic AcidMESH: Pyruvate KinaseMESH : Phosphoenolpyruvate CarboxylaseMESH: Oxaloacetic AcidsOxidation-Reduction[ INFO.INFO-BT ] Computer Science [cs]/BiotechnologyMESH: EthanolPhysiology and MetabolismPyruvate KinaseElectronsChemicalMESH: CarbonMESH : Formic AcidsChemostatMicrobiologyMESH: Fermentation03 medical and health sciencesAcetic acidMESH : Alcohol DehydrogenaseAcetyl Coenzyme AMESH : Fermentation010608 biotechnology[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular BiologyEscherichia coliFormate[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyLactic Acid[ SDV.BBM ] Life Sciences [q-bio]/Biochemistry Molecular BiologyMolecular Biology030304 developmental biologyAlcohol dehydrogenaseMESH : Oxidation-ReductionMESH: ElectronsEthanolEthanolMESH : Succinic AcidAlcohol DehydrogenaseCarbon DioxideNADMESH: Formic AcidsMESH : Pyruvate KinaseCarbonOxaloacetic AcidsPhosphoenolpyruvate CarboxylaseMESH: Succinic Acid[INFO.INFO-BT] Computer Science [cs]/BiotechnologychemistryModels ChemicalSuccinic acidMESH : Lactic AcidMESH : Oxaloacetic AcidsFermentationbiology.proteinFermentationMESH: Lactic AcidMESH : ElectronsMESH : PhosphoenolpyruvateMESH: Acetyl Coenzyme A
researchProduct

Ethanol cycle in an ethanologenic bacterium

2002

AbstractA novel redox cycle is suggested, performing interconversion between acetaldehyde and ethanol in aerobically growing ethanologenic bacterium Zymomonas mobilis. It is formed by the two alcohol dehydrogenase (ADH) isoenzymes simultaneously catalyzing opposite reactions. ADH I is catalyzing acetaldehyde reduction. The local reactant ratio at its active site probably is shifted towards ethanol synthesis due to direct channeling of NADH from glycolysis. ADH II is oxidizing ethanol. The net result of the cycle operation is NADH shuttling from glycolysis to the membrane respiratory chain, and ensuring flexible distribution of reducing equivalents between the ADH reaction and respiration.

NADH channelingBiophysicsRespiratory chainBiochemistryZymomonas mobilischemistry.chemical_compoundStructural BiologyGeneticsGlycolysisEthanol metabolismMolecular BiologyAlcohol dehydrogenaseZymomonasEthanolEthanolbiologyFutile cycleRespirationZymomonas mobilisAlcohol dehydrogenaseAcetaldehydeCell BiologyNADbiology.organism_classificationAerobiosisIsoenzymeschemistryBiochemistryFutile cycleChemostatbiology.proteinOxidation-Reductionhormones hormone substitutes and hormone antagonistsFEBS Letters
researchProduct

Modeling in Microbial Ecology

2014

SPE IPM; International audience; The bases and the principles of modeling in microbial community ecology and biogeochemistry are presented and discussed. Several examples are given. Among them, the fermentation process is largely developed, thus demonstrating how the model allows determining the microbial population growth rate, the death rate, and the maintenance rate. More generally, these models have been used to increase the development of bioenergetic formulations which are presently used in biogeochemical models (Monod, Droop, DEB models). Different types of interactions (competition, predation, and virus–bacteria) are also developed. For each topic, a complete view of the models used…

Population dynamicsComputer science[SDV]Life Sciences [q-bio][SDE.MCG]Environmental Sciences/Global ChangesEcology (disciplines)media_common.quotation_subjectBiotic interactionsFermenter modelsChemostatCompetition (biology)Microbial Ecology03 medical and health sciences[SDV.EE.ECO]Life Sciences [q-bio]/Ecology environment/EcosystemsMicrobial ecology[SDV.BV]Life Sciences [q-bio]/Vegetal Biology030304 developmental biologymedia_common0303 health sciences030306 microbiologyBiogeochemistryBiofilm modelsChemostatMicrobial population biologyMetabolic models[SDE]Environmental SciencesBiochemical engineering[SDE.BE]Environmental Sciences/Biodiversity and Ecology
researchProduct

Differential proteomic analysis highlights metabolic strategies associated with balhimycin production in Amycolatopsis balhimycina chemostat cultivat…

2010

Abstract Background Proteomics was recently used to reveal enzymes whose expression is associated with the production of the glycopeptide antibiotic balhimycin in Amycolatopsis balhimycina batch cultivations. Combining chemostat fermentation technology, where cells proliferate with constant parameters in a highly reproducible steady-state, and differential proteomics, the relationships between physiological status and metabolic pathways during antibiotic producing and non-producing conditions could be highlighted. Results Two minimal defined media, one with low Pi (0.6 mM; LP) and proficient glucose (12 g/l) concentrations and the other one with high Pi (1.8 mM) and limiting (6 g/l; LG) glu…

Proteomemedicine.drug_classlcsh:QR1-502BioengineeringChemostatBiologyGlycopeptide antibioticProteomicsSettore BIO/19 - Microbiologia GeneraleApplied Microbiology and Biotechnologylcsh:Microbiology03 medical and health sciencesBacterial ProteinsVancomycinantibioticActinomycetalesmedicineElectrophoresis Gel Two-DimensionalBalhimycinproteomic030304 developmental biology2. Zero hungerchemistry.chemical_classification0303 health sciences030306 microbiologyResearchFatty AcidsCarbonAnti-Bacterial AgentsMetabolic pathwayglycopeptideEnzymeGlucosechemistryBiochemistryAmycolatopsis balhimycinaProtein BiosynthesisFermentationBiotechnologyMicrobial Cell Factories
researchProduct