Search results for "Metabolic engineering"

showing 10 items of 26 documents

Recent advancements in lactic acid production - a review.

2017

Abstract Lactic acid, as an organic acid, has essential roles in industrial applications ranging from the food industry to life-sciences. Conventional fermentation methods have been well-studied since late 18th century, but are unable to achieve consumers' expectations regarding both quality and quantity. Therefore, novel technological developments of lactic acid production to increase yield and decrease over-all cost have become the primary goal. Genetic and metabolic engineering are great tools to overcome problems associated with product inhibition, undesired by-product formation, the negative effect of extreme culture conditions and most importantly inefficient use of expensive substrat…

0106 biological sciences0301 basic medicineFood industryGenotype01 natural sciencesMetabolic engineering03 medical and health scienceschemistry.chemical_compoundIndustrial MicrobiologyBioreactors010608 biotechnologyProduction (economics)Lactic AcidProductivitychemistry.chemical_classificationBacteriabusiness.industryEquipment DesignLactic acid030104 developmental biologyPhenotypechemistryFermentationFermentationBiochemical engineeringbusinessGenetic EngineeringFood ScienceOrganic acidFood research international (Ottawa, Ont.)
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Reconstruction and analysis of genome-scale metabolic model of a photosynthetic bacterium

2010

Abstract Background Synechocystis sp. PCC6803 is a cyanobacterium considered as a candidate photo-biological production platform - an attractive cell factory capable of using CO2 and light as carbon and energy source, respectively. In order to enable efficient use of metabolic potential of Synechocystis sp. PCC6803, it is of importance to develop tools for uncovering stoichiometric and regulatory principles in the Synechocystis metabolic network. Results We report the most comprehensive metabolic model of Synechocystis sp. PCC6803 available, iSyn669, which includes 882 reactions, associated with 669 genes, and 790 metabolites. The model includes a detailed biomass equation which encompasses…

0106 biological sciencesSystems biologyIn silicoMetabolic networkComputational biologyBiologyModels Biological01 natural sciencesMetabolic engineeringGene Knockout Techniques03 medical and health sciencesStructural BiologyModelling and Simulation010608 biotechnologyBotanyBiomassPhotosynthesislcsh:QH301-705.5Molecular Biology030304 developmental biologyAutotrophic Processes0303 health sciencesGene Expression ProfilingApplied MathematicsSynechocystisSynechocystisGenomicsDarknessbiology.organism_classificationComputer Science ApplicationsFlux balance analysislcsh:Biology (General)Genes BacterialAutotrophic ProcessesModeling and SimulationEnergy sourceGenome BacterialResearch ArticleBMC Systems Biology
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Metabolic and process engineering for biodesulfurization in Gram-negative bacteria

2017

32 p.-2 fig.-1 tab.

0301 basic medicineFossil FuelsGram-negative bacteriaScale-up030106 microbiologychemistry.chemical_elementBioengineeringThiophenesBiologyApplied Microbiology and BiotechnologyMetabolic engineering03 medical and health scienceschemistry.chemical_compoundPseudomonasOperonProcess engineering2. Zero hungerSulfur Compoundsbusiness.industryPseudomonasGeneral Medicinebiology.organism_classificationSulfurEnvironmentally friendly6. Clean waterKineticsBiodesulfurizationBiodegradation EnvironmentalchemistryDibenzothiopheneGram-negative bacteriaGenetic engineeringbusinessOrganosulfur compoundsMetabolic engineeringBacteriaMetabolic Networks and PathwaysDibenzothiopheneBiotechnology
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Histone macroH2A1.2 promotes metabolic health and leanness by inhibiting adipogenesis

2016

Background Obesity has tremendous impact on the health systems. Its epigenetic bases are unclear. MacroH2A1 is a variant of histone H2A, present in two alternatively exon-spliced isoforms macroH2A1.1 and macroH2A1.2, regulating cell plasticity and proliferation, during pluripotency and tumorigenesis. Their role in adipose tissue plasticity is unknown. Results Here, we show evidence that macroH2A1.1 protein levels in the visceral adipose tissue of obese humans positively correlate with BMI, while macroH2A1.2 is nearly absent. We thus introduced a constitutive GFP-tagged transgene for macroH2A1.2 in mice, and we characterized their metabolic health upon being fed a standard chow diet or a hig…

0301 basic medicineGenetically modified mouseCyclin-Dependent Kinase Inhibitor p21macroh2a1.2TransgeneAdipose tissueAdipose tissueMice TransgenicBiologyCarbohydrate metabolismDiet High-FatBody Mass IndexCell LineHistones03 medical and health sciencesMiceHistone variantGeneticsAnimalsHumansInsulinEpigeneticsAdipose tissue Histone variants Obesity macroh2a1.2ObesityTranscription factorPancreasMolecular BiologyUncoupling Protein 1SkinHistone variantsAdipogenesisResearchCell DifferentiationGlucose Tolerance TestMolecular biologyCell biologyMice Inbred C57BL030104 developmental biologyPhenotypeLiverMetabolic EngineeringAdipogenesisDNA methylationAdipose tissue; Histone variants; macroh2a1.2; Obesity; Molecular Biology; Genetics
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Metabolic Engineering of Bacterial Respiration: High vs. Low P/O and the Case of Zymomonas mobilis

2019

Respiratory chain plays a pivotal role in the energy and redox balance of aerobic bacteria. By engineering respiration, it is possible to alter the efficiency of energy generation and intracellular redox state, and thus affect the key bioprocess parameters: cell yield, productivity and stress resistance. Here we summarize the current metabolic engineering and synthetic biology approaches to bacterial respiratory metabolism, with a special focus on the respiratory chain of the ethanologenic bacterium Zymomonas mobilis. Electron transport in Z. mobilis can serve as a model system of bacterial respiration with low oxidative phosphorylation efficiency. Its application for redox balancing and re…

0301 basic medicineHistologyAerobic bacterialcsh:Biotechnologyrespiratory chainBiomedical EngineeringRespiratory chainBioengineering02 engineering and technologyOxidative phosphorylationZymomonas mobilisMetabolic engineeringredox balance03 medical and health scienceslcsh:TP248.13-248.65RespirationBioprocessstress resistencebiologyenergy couplingChemistryZymomonas mobilis021001 nanoscience & nanotechnologybiology.organism_classificationElectron transport chain030104 developmental biologyBiochemistry0210 nano-technologymetabolic engineeringBiotechnologyFrontiers in Bioengineering and Biotechnology
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High-Performance Biocomputing in Synthetic Biology-Integrated Transcriptional and Metabolic Circuits

2019

Biocomputing uses molecular biology parts as the hardware to implement computational devices. By following pre-defined rules, often hard-coded into biological systems, these devices are able to process inputs and return outputs-thus computing information. Key to the success of any biocomputing endeavor is the availability of a wealth of molecular tools and biological motifs from which functional devices can be assembled. Synthetic biology is a fabulous playground for such purpose, offering numerous genetic parts that allow for the rational engineering of genetic circuits that mimic the behavior of electronic functions, such as logic gates. A grand challenge, as far as biocomputing is concer…

0301 basic medicineHistologyComputer scienceProcess (engineering)lcsh:BiotechnologyBiomedical EngineeringBioengineering02 engineering and technologyField (computer science)Metabolic engineering03 medical and health sciencesSynthetic biologygenetic circuitslcsh:TP248.13-248.65ConceptualizationIntersection (set theory)business.industryBioengineering and Biotechnologybiocomputing021001 nanoscience & nanotechnologyboolean logic030104 developmental biologyPerspectiveKey (cryptography)metabolic networkssynthetic biology0210 nano-technologySoftware engineeringbusinessmetabolic engineeringHost (network)Biotechnology
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Pirin: A novel redox-sensitive modulator of primary and secondary metabolism in Streptomyces

2018

Pirins are evolutionarily conserved iron-containing proteins that are found in all kingdoms of life, and have been implicated in diverse molecular processes, mostly associated with cellular stress. In the present study, we started from the evidence that the insertional inactivation of pirin-like gene SAM23877_RS18305 (pirA) by Phi C31 Att/Int system-based vectors in spiramycin-producing strain Streptomyces ambofaciens ATCC 23877 resulted in marked effects on central carbon and energy metabolism gene expression, high sensitivity to oxidative injury and repression of polyketide antibiotic production. By using integrated transcriptomic, proteomic and metabolite profiling, together with genetic…

0301 basic medicineIn silico030106 microbiologyBioengineeringStreptomycesApplied Microbiology and Biotechnology03 medical and health sciencesPolyketideBacterial ProteinsIron-Binding ProteinsGene expressionActinomycetes; Antibiotics; Beta-oxidation of fatty acids; Pirin; Secondary metabolismSecondary metabolismGenePsychological repressionbiologyChemistryActinomyceteAntibioticbiology.organism_classificationStreptomycesComplementation030104 developmental biologyMetabolic EngineeringBiochemistryPirinPolyketidesSecondary metabolismOxidation-ReductionBeta-oxidation of fatty acidBiotechnology
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FLYCOP: metabolic modeling-based analysis and engineering microbial communities

2018

10 p.-5 fig.-2 tab.

0301 basic medicineStatistics and ProbabilityComputer scienceMetaboliteAuxotrophy030106 microbiologyMicrobial ConsortiaEccb 2018: European Conference on Computational Biology ProceedingsEvolutionary engineeringmedicine.disease_causeBiochemistry03 medical and health scienceschemistry.chemical_compoundmedicineEscherichia coliMetabolic modelingMolecular BiologyEscherichia coli2. Zero hungerbiologyMicrobiotaSystemsBiological evolutionSynechococcusbiology.organism_classificationComputer Science ApplicationsComputational MathematicsMulticellular organism030104 developmental biologyComputational Theory and MathematicschemistryMetabolic EngineeringBiochemical engineeringSoftwareBioinformatics
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Nature versus design: synthetic biology or how to build a biological non-machine.

2015

The engineering ideal of synthetic biology presupposes that organisms are composed of standard, interchangeable parts with a predictive behaviour. In one word, organisms are literally recognized as machines. Yet living objects are the result of evolutionary processes without any purposiveness, not of a design by external agents. Biological components show massive overlapping and functional degeneracy, standard-free complexity, intrinsic variation and context dependent performances. However, although organisms are not full-fledged machines, synthetic biologists may still be eager for machine-like behaviours from artificially modified biosystems.

0301 basic medicinebusiness.industrySystems biologySystems BiologyBiophysicsInterchangeable partsBioengineeringBiological evolutionBiologyBiochemistryBiological Evolutionlaw.invention03 medical and health sciencesSynthetic biology030104 developmental biologyMetabolic EngineeringlawEscherichia coliAnimalsHumansDegeneracy (biology)Synthetic BiologyArtificial intelligencebusinessBiotechnology
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Métabolisme sucre-citrate chez Leuconostoc mesenteroides

2001

Sugar citrate cometabolism in Leuconostoc mesenteroides. Bacteria from the genus Leuconostocplay roles in the dairy industry. The most important functions of this bacteria are their ability to produce CO 2 and flavour compounds through lactose heterofermentation and citrate uti- lization. Although the biotechnological role of the citrate metabolism is very important and widely appreciated, little is known about the genetic properties of Leuconostoc spp. In our laboratory, we cloned the genes responsible for citrate metabolism ( clyR mae citCDEFGOPcluster), for D-lactate dehydrogenase (ldhD) and for phosphotransacetylase ( pta). In addition we have planned to con- struct new vectors and we h…

2. Zero hunger[SDV.SA]Life Sciences [q-bio]/Agricultural sciences[SDV.SA] Life Sciences [q-bio]/Agricultural sciences0303 health sciencesbiology030306 microbiologyNucleic acid sequencebiology.organism_classificationMicrobiologyMetabolic engineering03 medical and health sciencesPlasmidBiochemistryLeuconostoc mesenteroidesLeuconostocFermentationBacteriaComputingMilieux_MISCELLANEOUS030304 developmental biologyFood ScienceTransformation efficiency
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