Search results for "Mutant"

showing 10 items of 670 documents

Effect of substitutions of key residues on the stability and the insecticidal activity of Vip3Af from Bacillus thuringiensis

2021

Modern agriculture demands for more sustainable agrochemicals to reduce the environmental and health impact. The whole process of the discovery and development of new active substances or control agents is sorely slow and expensive. Vegetative insecticidal proteins (Vip3) from Bacillus thuringiensis are specific toxins against caterpillars with a potential capacity to broaden the range of target pests. Site-directed mutagenesis is one of the most approaches used to test hypotheses on the role of different amino acids on the structure and function of proteins. To gain a better understanding of the role of key amino acid residues of Vip3A proteins, we have generated 12 mutants of the Vip3Af1 …

0106 biological sciences0301 basic medicineInsecticidesMutantBacillus thuringiensisMothsSpodopteraSpodoptera01 natural sciences03 medical and health sciencesResidue (chemistry)Bacterial ProteinsBacillus thuringiensisAnimalsAmino Acid SequencePest Control BiologicalSite-directed mutagenesisSpodoptera littoralisEcology Evolution Behavior and Systematicschemistry.chemical_classificationbiologyfungiProtein engineeringbiology.organism_classificationAmino acid010602 entomology030104 developmental biologyBiochemistrychemistryMutagenesis Site-DirectedSequence AlignmentJournal of Invertebrate Pathology
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Unravelling the biosynthesis of pyriculol in the rice blast fungus Magnaporthe oryzae

2017

Pyriculol was isolated from the rice blast fungus Magnaporthe oryzae and found to induce lesion formation on rice leaves. These findings suggest that it could be involved in virulence. The gene MoPKS19 was identified to encode a polyketide synthase essential for the production of the polyketide pyriculol in the rice blast fungus M. oryzae. The transcript abundance of MoPKS19 correlates with the biosynthesis rate of pyriculol in a time-dependent manner. Furthermore, gene inactivation of MoPKS19 resulted in a mutant unable to produce pyriculol, pyriculariol and their dihydro derivatives. Inactivation of a putative oxidase-encoding gene MoC19OXR1, which was found to be located in the genome cl…

0106 biological sciences0301 basic medicineMagnaportheMutantSecondary Metabolism01 natural sciencesMicrobiologyMicrobiology03 medical and health sciencesPolyketideGene Expression Regulation FungalPolyketide synthaseAxenicGenePlant DiseasesRegulation of gene expressionbiologyFungal geneticsfood and beveragesOryzabiology.organism_classificationPlant LeavesMagnaporthe030104 developmental biologyBenzaldehydesMultigene FamilyPolyketidesbiology.proteinFatty AlcoholsPolyketide SynthasesTranscription FactorsResearch Article010606 plant biology & botanyMicrobiology
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Overexpression of the triose phosphate translocator (TPT) complements the abnormal metabolism and development of plastidial glycolytic glyceraldehyde…

2017

The presence of two glycolytic pathways working in parallel in plastids and cytosol has complicated the understanding of this essential process in plant cells, especially the integration of the plastidial pathway into the metabolism of heterotrophic and autotrophic organs. It is assumed that this integration is achieved by transport systems, which exchange glycolytic intermediates across plastidial membranes. However, it is unknown whether plastidial and cytosolic pools of 3-phosphoglycerate (3-PGA) can equilibrate in non-photosynthetic tissues. To resolve this question, we employed Arabidopsis mutants of the plastidial glycolytic isoforms of glyceraldehyde-3-phosphate dehydrogenase (GAPCp)…

0106 biological sciences0301 basic medicineMutantArabidopsisDehydrogenasePlant ScienceGlyceric Acids01 natural sciences03 medical and health sciencesGeneticsGlycolysisPlastidsPlastidGlyceraldehyde 3-phosphate dehydrogenasebiologyArabidopsis ProteinsGlyceraldehyde-3-Phosphate DehydrogenasesCell BiologyMetabolismCytosol030104 developmental biologyBiochemistryTriose phosphate translocatorbiology.proteinGlycolysis010606 plant biology & botanyThe Plant journal : for cell and molecular biology
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Phosphoglycerate dehydrogenase genes differentially affect Arabidopsis metabolism and development.

2021

[EN] Unlike animals, plants possess diverse L-serine (Ser) biosynthetic pathways. One of them, the Phosphorylated Pathway of Serine Biosynthesis (PPSB) has been recently described as essential for embryo, pollen and root development, and required for ammonium and sulfur assimilation. The first and rate limiting step of PPSB is the reaction catalyzed by the enzyme phosphoglycerate dehydrogenase (PGDH). In Arabidopsis, the PGDH family consists of three genes, PGDH1, PGDH2 and PGDH3. PGDH1 is characterized as being the essential gene of the family. However, the biological significance of PGDH2 and PGDH3 remains unknown. In this manuscript, we have functionally characterized PGDH2 and PGDH3. Ph…

0106 biological sciences0301 basic medicineMutantArabidopsisPlant ScienceGenes Plant01 natural sciencesGene Expression Regulation EnzymologicSerine03 medical and health scienceschemistry.chemical_compoundSulfur assimilationBiosynthesisGene Expression Regulation PlantArabidopsisGeneticsSerinePhosphoglycerate dehydrogenaseGenePhosphoglycerate DehydrogenasePSPbiologyGeneral MedicinePhosphorylated pathway of serine biosynthesisbiology.organism_classificationBiosynthetic Pathways030104 developmental biologyPGDHBiochemistrychemistryEssential geneFISIOLOGIA VEGETALPhosphoserine phosphataseAgronomy and Crop Science010606 plant biology & botanyPlant science : an international journal of experimental plant biology
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Expression of the Intracellular COPT3-Mediated Cu Transport Is Temporally Regulated by the TCP16 Transcription Factor

2018

[EN] Copper is an essential element in plants. When scarce, copper is acquired from extracellular environment or remobilized from intracellular sites, through members of the high affinity copper transporters family COPT located at the plasma membrane and internal membrane, respectively. Here, we show that COPT3 is an intracellular copper transporter, located at a compartment of the secretory pathway, that is mainly expressed in pollen grains and vascular bundles. Contrary to the COPT1 plasma membrane member, the expression of the internal COPT3 membrane transporter was higher at 12 h than at 0 h of a neutral photoperiod day under copper deficiency. The screening of a library of conditionall…

0106 biological sciences0301 basic medicineMutantchemistry.chemical_elementPlant Sciencelcsh:Plant culture01 natural sciencesTCP1603 medical and health sciencesTranscriptional regulationGene expressionBIOQUIMICA Y BIOLOGIA MOLECULARExtracellularmedicinelcsh:SB1-1110COPT3transcriptional regulationheavy metalsTranscription factorSecretory pathwayOriginal ResearchCopper transportmedicine.diseaseCopperCell biology030104 developmental biologyHeavy metalschemistrycopper transportCopper deficiencyIntracellular010606 plant biology & botanyFrontiers in Plant Science
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An Arabidopsis Mutant Over-Expressing Subtilase SBT4.13 Uncovers the Role of Oxidative Stress in the Inhibition of Growth by Intracellular Acidificat…

2020

Intracellular acid stress inhibits plant growth by unknown mechanisms and it occurs in acidic soils and as consequence of other stresses. In order to identify mechanisms of acid toxicity, we screened activation-tagging lines of Arabidopsis thaliana for tolerance to intracellular acidification induced by organic acids. A dominant mutant, sbt4.13-1D, was isolated twice and shown to over-express subtilase SBT4.13, a protease secreted into endoplasmic reticulum. Activity measurements and immuno-detection indicate that the mutant contains less plasma membrane H+-ATPase (PMA) than wild type, explaining the small size, electrical depolarization and decreased cytosolic pH of the mutant but not orga…

0106 biological sciences0301 basic medicineMutantmedicine.disease_cause01 natural sciencesCatalysisInorganic Chemistrylcsh:ChemistryH<sup>+</sup>-ATPase03 medical and health sciencesorganic acidsmedicinePhysical and Theoretical ChemistryMolecular Biologylcsh:QH301-705.5Spectroscopychemistry.chemical_classificationReactive oxygen speciesNADPH oxidasebiologyNADPH oxidaseEndoplasmic reticulumOrganic ChemistryWild typeROSGeneral MedicineComputer Science ApplicationsCell biology030104 developmental biologychemistrylcsh:Biology (General)lcsh:QD1-999biology.proteinactivation-taggingIntracellularOxidative stress010606 plant biology & botanyOrganic acidInternational Journal of Molecular Sciences
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NMD-Based Gene Regulation—A Strategy for Fitness Enhancement in Plants?

2019

Abstract Post-transcriptional RNA quality control is a vital issue for all eukaryotes to secure accurate gene expression, both on a qualitative and quantitative level. Among the different mechanisms, nonsense-mediated mRNA decay (NMD) is an essential surveillance system that triggers degradation of both aberrant and physiological transcripts. By targeting a substantial fraction of all transcripts for degradation, including many alternative splicing variants, NMD has a major impact on shaping transcriptomes. Recent progress on the transcriptome-wide profiling and physiological analyses of NMD-deficient plant mutants revealed crucial roles for NMD in gene regulation and environmental response…

0106 biological sciences0301 basic medicinePhysiologyNonsense-mediated decayMutantMRNA DecayPlant ScienceComputational biologyBiology01 natural sciencesTranscriptome03 medical and health sciencesSpecies SpecificityGene Expression Regulation PlantGene expressionPlant Physiological PhenomenaRegulation of gene expressionRNA quality controlGene Expression ProfilingAlternative splicingCell BiologyGeneral MedicinePlantsNonsense Mediated mRNA DecayAlternative Splicing030104 developmental biologyTranscriptome010606 plant biology & botanyPlant and Cell Physiology
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Sorting Motifs Involved in the Trafficking and Localization of the PIN1 Auxin Efflux Carrier

2016

In contrast with the wealth of recent reports about the function of μ-adaptins and clathrin adaptor protein (AP) complexes, there is very little information about the motifs that determine the sorting of membrane proteins within clathrin-coated vesicles in plants. Here, we investigated putative sorting signals in the large cytosolic loop of the Arabidopsis (Arabidopsis thaliana) PIN-FORMED1 (PIN1) auxin transporter, which are involved in binding μ-adaptins and thus in PIN1 trafficking and localization. We found that Phe-165 and Tyr-280, Tyr-328, and Tyr-394 are involved in the binding of different μ-adaptins in vitro. However, only Phe-165, which binds μA(μ2)- and μD(μ3)-adaptin, was found …

0106 biological sciences0301 basic medicinePhysiologyPhenylalanineGreen Fluorescent ProteinsMutantArabidopsisPlant ScienceProtein Sorting SignalsEndoplasmic ReticulumEndocytosis01 natural sciencesClathrin03 medical and health sciencesCytosolGeneticsGuanine Nucleotide Exchange FactorsSecretory pathwaybiologyArabidopsis ProteinsEndoplasmic reticulumMembrane Transport ProteinsSignal transducing adaptor proteinArticlesPlants Genetically ModifiedClathrinEndocytosisAdaptor Protein Complex mu SubunitsTransport proteinCell biologyProtein Transport030104 developmental biologyProtein Sorting SignalsMutationbiology.protein010606 plant biology & botanyPlant Physiology
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Phosphoglycerate Kinases Are Co-Regulated to Adjust Metabolism and to Optimize Growth

2017

[EN] In plants, phosphoglycerate kinase (PGK) converts 1,3-bisphosphoglycerate into 3-phosphoglycerate in glycolysis but also participates in the reverse reaction in gluconeogenesis and the Calvin-Benson cycle. In the databases, we found three genes that encode putative PGKs. Arabidopsis (Arabidopsis thaliana) PGK1 was localized exclusively in the chloroplasts of photosynthetic tissues, while PGK2 was expressed in the chloroplast/plastid of photosynthetic and nonphotosynthetic cells. PGK3 was expressed ubiquitously in the cytosol of all studied cell types. Measurements of carbohydrate content and photosynthetic activities in PGK mutants and silenced lines corroborated that PGK1 was the phot…

0106 biological sciences0301 basic medicinePhysiologyResearch Articles - Focus IssueMutantArabidopsisPlant ScienceGlyceric AcidsPlant Roots01 natural sciencesChloroplastGene03 medical and health sciencesCytosolGene Expression Regulation PlantArabidopsisGeneticsBIOQUIMICA Y BIOLOGIA MOLECULARMetabolomicsArabidopsis thalianaBamboo-Mosaic-VirusPlastidPhosphoglycerate kinaseGas-ChromatographybiologyArabidopsis ProteinsWild typefood and beveragesMetabolismArabidopsis-ThalianaPlant Components AerialPlants Genetically Modifiedbiology.organism_classificationHelianthus-Annuus L.3-Phosphoglycerate kinaseChloroplastPhosphoglycerate Kinase030104 developmental biologyBiochemistryMultigene FamilyMutationNicotiana-BenthamianaFISIOLOGIA VEGETALPlastics010606 plant biology & botanyPhosphorylating glyceraldehyde-3-phosphate dehydrogenaseGastric-Cancer
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ß-COP mutants show specific high sensitivity to chloride ions.

2021

Coat Protein I (COPI) consists of a complex (coatomer) formed by seven subunits (α-, β-, β’-, γ-, δ-, ε-, and ζ-COP) that is recruited to Golgi membranes to form vesicles that shuttle from the Golgi apparatus to the ER and between Golgi stacks. Recently, it has been described that loss of function mutants of the two Arabidopsis β-COP genes, β1-COP and β2-COP, showed increased sensitivity to salt stress (NaCl). Using a mixture of either Na(+) or Cl(−) salts, we have now found that β-COP mutants are specifically and highly sensitive to chloride ions.

0106 biological sciences0301 basic medicineShort CommunicationMutantArabidopsisSalt (chemistry)Plant ScienceBiology01 natural sciencesChlorideCoatomer Protein03 medical and health sciencessymbols.namesakeChloridesArabidopsismedicinechemistry.chemical_classificationIonsVesicleCOPIGolgi apparatusbiology.organism_classificationhumanitiesProtein Subunits030104 developmental biologyPhenotypechemistryCoatomerMutationsymbolsBiophysics010606 plant biology & botanymedicine.drugProtein BindingPlant signalingbehavior
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