0000000000000022

AUTHOR

Sergi Puig

0000-0002-1856-490x

showing 48 related works from this author

Global translational repression induced by iron deficiency in yeast depends on the Gcn2/eIF2α pathway

2020

Iron is an essential element for all eukaryotic organisms because it participates as a redox active cofactor in a wide range of biological processes, including protein synthesis. Translation is probably the most energy consuming process in cells. Therefore, one of the initial responses of eukaryotic cells to stress or nutrient limitation is the arrest of mRNA translation. In first instance, the budding yeast Saccharomyces cerevisiae responds to iron deficiency by activating iron acquisition and remodeling cellular metabolism in order to prioritize essential over non-essential iron-dependent processes. We have determined that, despite a global decrease in transcription, mRNA translation is a…

Saccharomyces cerevisiae ProteinsMolecular biologyEukaryotic Initiation Factor-2Saccharomyces cerevisiaelcsh:MedicineSaccharomyces cerevisiaeProtein Serine-Threonine KinasesBiochemistryArticleCofactorTranscription (biology)Protein biosynthesislcsh:SciencePsychological repressionMultidisciplinarybiologyChemistrylcsh:RTranslation (biology)Iron Deficienciesbiology.organism_classificationYeastCell biologyProtein BiosynthesisTransfer RNAbiology.proteinlcsh:Q
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Structure and function of the vacuolar Ccc1/VIT1 family of iron transporters and its regulation in fungi

2020

Iron is an essential micronutrient for most living beings since it participates as a redox active cofactor in many biological processes including cellular respiration, lipid biosynthesis, DNA replication and repair, and ribosome biogenesis and recycling. However, when present in excess, iron can participate in Fenton reactions and generate reactive oxygen species that damage cells at the level of proteins, lipids and nucleic acids. Organisms have developed different molecular strategies to protect themselves against the harmful effects of high concentrations of iron. In the case of fungi and plants, detoxification mainly occurs by importing cytosolic iron into the vacuole through the Ccc1/V…

ISC Iron-sulfur lusterCS Consistency scoreCcc1Ribosome biogenesisVacuoleReview ArticleYRE Yap response elementsBiochemistryBiotecnologia0302 clinical medicineStructural BiologyCg Candida glabrata0303 health sciencesMAFFT Multiple Alignment using Fast Fourier TransformNRAMP Natural Resistance-Associated Macrophage ProteinbiologyVIT1ChemistryMBD Metal-binding domainPlantsComputer Science ApplicationsBiochemistry030220 oncology & carcinogenesisCRD Cysteine-rich domainEg Eucalyptus grandisIron detoxificationBiotechnologyCBC CCAAT-binding core complexlcsh:BiotechnologySaccharomyces cerevisiaeVTL Vacuolar iron transporter-likeBiophysicsVIT Vacuolar iron transporterbZIP basic leucine-zipper03 medical and health sciencesFongsLipid biosynthesislcsh:TP248.13-248.65GeneticsFe IronIron transportTranscription factor030304 developmental biologyComputingMethodologies_COMPUTERGRAPHICSBLOSUM BLOcks SUbstitution MatrixTMD Transmembrane domainML Maximum-likelihoodIron regulationDNA replicationFungibiology.organism_classificationYeastYeastMetabolic pathwayH HelixHap Heme activator proteinVacuoleROS Reactive oxygen speciesFerroComputational and Structural Biotechnology Journal
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Soybean Ferritin Expression in Saccharomyces cerevisiae Modulates Iron Accumulation and Resistance to Elevated Iron Concentrations

2016

Fungi, including the yeast Saccharomyces cerevisiae, lack ferritin and use vacuoles as iron storage organelles. This work explored how plant ferritin expression influenced baker's yeast iron metabolism. Soybean seed ferritin H1 (SFerH1) and SFerH2 genes were cloned and expressed in yeast cells. Both soybean ferritins assembled as multimeric complexes, which bound yeast intracellular iron in vivo and, consequently, induced the activation of the genes expressed during iron scarcity. Soybean ferritin protected yeast cells that lacked the Ccc1 vacuolar iron detoxification transporter from toxic iron levels by reducing cellular oxidation, thus allowing growth at high iron concentrations. Interes…

0301 basic medicineIronSaccharomyces cerevisiaeGene ExpressionVacuoleSaccharomyces cerevisiaeBiologymedicine.disease_causeApplied Microbiology and Biotechnology03 medical and health sciencesOrganellemedicineCloning MolecularPlant ProteinsFerritin030102 biochemistry & molecular biologyEcologyIron deficiencyfood and beveragesMetabolismIron deficiencybiology.organism_classificationmedicine.diseaseIron metabolismRecombinant ProteinsYeastYeastFerritinSFerH2SFerH1030104 developmental biologyBiochemistryFerritinsbiology.proteinSoybeansOxidative stressFood ScienceBiotechnology
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Copper and iron homeostasis inArabidopsis: responses to metal deficiencies, interactions and biotechnological applications

2007

Plants have developed sophisticated mechanisms to tightly control the acquisition and distribution of copper and iron in response to environmental fluctuations. Recent studies with Arabidopsis thaliana are allowing the characterization of the diverse families and components involved in metal uptake, such as metal-chelate reductases and plasma membrane transporters. In parallel, emerging data on both intra- and intercellular metal distribution, as well as on long-distance transport, are contributing to the understanding of metal homeostatic networks in plants. Furthermore, gene expression analyses are deciphering coordinated mechanisms of regulation and response to copper and iron limitation…

Regulation of gene expressionchemistry.chemical_classificationbiologyPhysiologychemistry.chemical_elementPlant Sciencebiology.organism_classificationCopperCell biologyMetalIron homeostasischemistryArabidopsisvisual_artBotanyMetalloproteinvisual_art.visual_art_mediumArabidopsis thalianaIron deficiency (plant disorder)Plant, Cell & Environment
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A genome-wide transcriptional study reveals that iron deficiency inhibits the yeast TORC1 pathway

2019

Iron is an essential micronutrient that participates as a cofactor in a broad range of metabolic processes including mitochondrial respiration, DNA replication, protein translation and lipid biosynthesis. Adaptation to iron deficiency requires the global reorganization of cellular metabolism directed to optimize iron utilization. The budding yeast Saccharomyces cerevisiae has been widely used to characterize the responses of eukaryotic microorganisms to iron depletion. In this report, we used a genomic approach to investigate the contribution of transcription rates to the modulation of mRNA levels during adaptation of yeast cells to iron starvation. We reveal that a decrease in the activity…

IronSaccharomyces cerevisiaeBiophysicsRibosome biogenesisSaccharomyces cerevisiaeMechanistic Target of Rapamycin Complex 1Biochemistry03 medical and health sciencesStructural BiologyRibosomal proteinTranscription (biology)Gene Expression Regulation FungalLipid biosynthesisGeneticsHumansRNA MessengerPhosphorylationMolecular BiologyGene030304 developmental biology0303 health sciencesAnemia Iron-Deficiencybiology030306 microbiologyChemistryIron deficiencyRNA polymerasesRNATORbiology.organism_classificationAdaptation PhysiologicalYeastCell biologyDNA-Binding ProteinsGene Expression RegulationProtein BiosynthesisSignal transductionTranscription
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Deregulated High Affinity Copper Transport Alters Iron Homeostasis inArabidopsis

2020

The present work describes the effects on iron homeostasis when copper transport was deregulated in Arabidopsis thaliana by overexpressing high affinity copper transporters COPT1 and COPT3 (COPTOE). A genome-wide analysis conducted on COPT1OE plants, highlighted that iron homeostasis gene expression was affected under both copper deficiency and excess. Among the altered genes were those encoding the iron uptake machinery and their transcriptional regulators. Subsequently, COPTOE seedlings contained less iron and were more sensitive than controls to iron deficiency. The deregulation of copper (I) uptake hindered the transcriptional activation of the subgroup Ib of basic helix-loop-helix (bHL…

0106 biological sciences0301 basic medicineArabidopsis thalianaPlant Sciencelcsh:Plant culture01 natural sciencesHigh affinity copper importer 103 medical and health sciencesIron homeostasisCopper uptakeArabidopsisIron homeostasisBIOQUIMICA Y BIOLOGIA MOLECULARmedia_common.cataloged_instanceArabidopsis thalianalcsh:SB1-1110European unionmedia_commonbiologyChemistryHigh affinity copper transportbiology.organism_classificationCell biologyMetal mobilization030104 developmental biologyChristian ministryMetal mobilizationMetal interactions010606 plant biology & botany
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The role of post-transcriptional modulators of metalloproteins in response to metal deficiencies

2021

Copper and iron proteins play a wide range of functions in living organisms. Metal assembly into metalloproteins is a complex process, where mismetalation is detrimental and energy-consuming to cells. Under metal deficiency, metal distribution is expected to reach a metalation ranking, prioritizing essential versus dispensable metalloproteins, while avoiding interferences with other metals and protecting metal-sensitive processes. In this review, we propose that posttranscriptional Modulators of Metalloprotein messenger RNA (ModMeR) are good candidates in metal prioritization under metal-limited conditions. ModMeR target high quota or redundant metalloproteins and, by adjusting their synthe…

Arabidopsis thalianaPhysiologyMetalationIronArabidopsischemistry.chemical_elementSaccharomyces cerevisiaePlant ScienceMetalMetalloproteinCth2MetalloproteinsMetalloproteinMetalationAnimalsArabidopsis thalianaIron deficiency (plant disorder)Mammalschemistry.chemical_classificationbiologyIron deficiencyIron DeficienciesCopper deficiencybiology.organism_classificationCopperCell biologyCu-miRNAsMetal flowchemistryMetalsvisual_artvisual_art.visual_art_mediumIRPPosttranscriptional regulationCopperFunction (biology)Journal of Experimental Botany
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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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Deregulated Copper Transport Affects Arabidopsis Development Especially in the Absence of Environmental Cycles    

2010

Abstract Copper is an essential cofactor for key processes in plants, but it exerts harmful effects when in excess. Previous work has shown that the Arabidopsis (Arabidopsis thaliana) COPT1 high-affinity copper transport protein participates in copper uptake through plant root tips. Here, we show that COPT1 protein localizes to the plasma membrane of Arabidopsis cells and the phenotypic effects of transgenic plants overexpressing either COPT1 or COPT3, the latter being another high-affinity copper transport protein family member. Both transgenic lines exhibit increased endogenous copper levels and are sensitive to the copper in the growth medium. Additional phenotypes include decreased hypo…

photoperiodismbiologyPhysiologyMembrane transport proteinPeriod (gene)Circadian clockfood and beveragesPlant Sciencebiology.organism_classificationTransport proteinCell biologyArabidopsisBotanyGeneticsbiology.proteinArabidopsis thalianaCircadian rhythmPlant Physiology
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Evaluation of the use of phase-specific gene promoters for the expression of enological enzymes in an industrial wine yeast strain

1996

Genes as POT1, HSP104 and SSA3, which are late expressed in laboratory culture conditions are expressed only during the first few days in microvinifications in wine yeast cells. This effect is probably due to the different growth conditions and leads to useless levels of enzyme activity for a reporter gene. However the ACT1 promoter, which is constitutively expressed in laboratory conditions, produces sufficient amounts of enzyme activity in late fermentation phases.

Reporter geneSaccharomyces cerevisiaeBioengineeringPromoterGeneral MedicineBiologybiology.organism_classificationApplied Microbiology and BiotechnologyEnzyme assayYeast in winemakingBiochemistryGene expressionbiology.proteinFermentationGeneBiotechnologyBiotechnology Letters
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Responses of Saccharomyces cerevisiae Strains from Different Origins to Elevated Iron Concentrations

2015

ABSTRACT Iron is an essential micronutrient for all eukaryotic organisms. However, the low solubility of ferric iron has tremendously increased the prevalence of iron deficiency anemia, especially in women and children, with dramatic consequences. Baker's yeast Saccharomyces cerevisiae is used as a model eukaryotic organism, a fermentative microorganism, and a feed supplement. In this report, we explore the genetic diversity of 123 wild and domestic strains of S. cerevisiae isolated from different geographical origins and sources to characterize how yeast cells respond to elevated iron concentrations in the environment. By using two different forms of iron, we selected and characterized bot…

0301 basic medicineIronMicroorganismSaccharomyces cerevisiaeAnaemiaSaccharomyces cerevisiaeOxidative phosphorylationBiologymedicine.disease_causeApplied Microbiology and BiotechnologyEnvironmentalMicrobiology03 medical and health sciencesEnvironmental Microbiologymedicine030102 biochemistry & molecular biologyEcologyGene Expression ProfilingQR MicrobiologyIron deficiencymedicine.diseaseMicronutrientbiology.organism_classificationYeastOxidative Stress030104 developmental biologyBiochemistryIron-deficiency anemiaOxidative stressFood ScienceBiotechnologyApplied and Environmental Microbiology
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AtCCS is a functional homolog of the yeast copper chaperone Ccs1/Lys7

2005

AbstractIn plant chloroplasts two superoxide dismutase (SOD) activities occur, FeSOD and Cu/ZnSOD, with reciprocal regulation in response to copper availability. This system presents a unique model to study the regulation of metal-cofactor delivery to an organelle. The Arabidopsis thaliana gene AtCCS encodes a functional homolog to yeast Ccs1p/Lys7p, a copper chaperone for SOD. The AtCCS protein was localized to chloroplasts where it may supply copper to the stromal Cu/ZnSOD. AtCCS mRNA expression levels are upregulated in response to Cu-feeding and senescence. We propose that AtCCS expression is regulated to allow the most optimal use of Cu for photosynthesis.

0106 biological sciencesCu/Zn superoxide dismutaseChloroplastsSaccharomyces cerevisiae ProteinsMolecular Sequence DataArabidopsisBiophysicsSaccharomyces cerevisiaeMetallo chaperoneChloroplastModels Biological01 natural sciencesBiochemistryGreen fluorescent proteinSuperoxide dismutase03 medical and health sciencesDownregulation and upregulationGene Expression Regulation PlantStructural BiologyOrganelleGeneticsAmino Acid SequenceRNA MessengerMolecular BiologyGene030304 developmental biology0303 health sciencesbiologyArabidopsis ProteinsGene Expression ProfilingGenetic Complementation TestCell BiologyYeastChloroplastProtein TransportBiochemistryChaperone (protein)Mutationbiology.proteinSequence AlignmentCopperMolecular Chaperones010606 plant biology & botanyFEBS Letters
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Regulation of yeast fatty acid desaturase in response to iron deficiency

2017

Unsaturated fatty acids (UFA) are essential components of phospholipids that greatly contribute to the biophysical properties of cellular membranes. Biosynthesis of UFAs relies on a conserved family of iron-dependent fatty acid desaturases, whose representative in the model yeast Saccharomyces cerevisiae is Ole1. OLE1 expression is tightly regulated to adapt UFA biosynthesis and lipid bilayer properties to changes in temperature, and in UFA or oxygen availability. Despite iron deficiency being the most extended nutritional disorder worldwide, very little is known about the mechanisms and the biological relevance of fatty acid desaturases regulation in response to iron starvation. In this re…

0301 basic medicineSaccharomyces cerevisiae ProteinsMga2Ole1Saccharomyces cerevisiaeSaccharomyces cerevisiaeGene Expression Regulation Enzymologic03 medical and health scienceschemistry.chemical_compoundBiosynthesisValosin Containing ProteinGene Expression Regulation FungalFatty acidsHypoxiaMolecular BiologyTranscription factorEndosomal Sorting Complexes Required for Transport030102 biochemistry & molecular biologybiologyChemistryIron deficiencyEndoplasmic reticulumMembrane ProteinsUbiquitin-Protein Ligase ComplexesIron DeficienciesCell Biologybiology.organism_classificationYeastYeastUbiquitin ligase030104 developmental biologyFatty acid desaturaseBiochemistryProteasomebiology.proteinStearoyl-CoA DesaturaseTranscription FactorsColdBiochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids
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Placing metal micronutrients in context: transport and distribution in plants

2008

Plants have developed finely tuned mechanisms to efficiently acquire and balance the concentrations of essential metal micronutrients including iron, zinc, copper, and manganese, both at the cellular and systemic levels. The application of new emerging technologies to the study of Arabidopsis thaliana is providing a novel spatiotemporal view of plant metal homeostasis. These advances are uncovering unexpected links of metal homeostasis to central cellular processes, such as compartmentalization, daily redox oscillations, or transcriptional regulation. The intracellular compartmentalization of metals seems essential for optimizing the use of micronutrients during development and in response …

Biological TransportPlant SciencePlantsBiologyPlant biologyMicronutrientRedoxHighly sensitiveMetalNutrientBiochemistryMetalsvisual_artvisual_art.visual_art_mediumBiophysicsProtein foldingMicronutrientsIntracellularCurrent Opinion in Plant Biology
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Higher plants possess two different types of ATX1-like copper chaperones.

2007

Abstract Copper (Cu) chaperones constitute a family of small Cu+-binding proteins required for Cu homeostasis in eukaryotes. The ATX1 family of Cu chaperones specifically delivers Cu to heavy metal P-type ATPases. The plant Arabidopsis thaliana expresses the ATX1-like Cu chaperone CCH, which exhibits a plant-specific carboxy-terminal domain (CTD) with unique structural properties. We show that CCH homologues from other higher plants contain CTDs with structural properties similar to Arabidopsis CCH. Furthermore, we identify a new ATX1-like Cu chaperone in Arabidopsis, AtATX1, which functionally complements yeast atx1Δ and sod1Δ associated phenotypes, and localizes to the cytosol of Arabidop…

endocrine systemATPaseTwo-hybrid screeningBiophysicsArabidopsischemistry.chemical_elementBiochemistryArabidopsisMolecular BiologyAdenosine TriphosphatasesbiologyArabidopsis ProteinsCell BiologyHistone-Lysine N-Methyltransferasebiology.organism_classificationPhenotypeCopperYeastProtein Structure TertiaryCytosolBiochemistrychemistryChaperone (protein)biology.proteinCopperGenome PlantMolecular ChaperonesTranscription FactorsBiochemical and biophysical research communications
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Dissection of the relative contribution of the Schizosaccharomyces pombe Ctr4 and Ctr5 proteins to the copper transport and cell surface delivery fun…

2011

The Ctr1 family of proteins mediates high-affinity copper (Cu) acquisition in eukaryotic organisms. In the fission yeastSchizosaccharomyces pombe, Cu uptake is carried out by a heteromeric complex formed by the Ctr4 and Ctr5 proteins. Unlike human andSaccharomyces cerevisiaeCtr1 proteins, Ctr4 and Ctr5 are unable to function independently in Cu acquisition. Instead, both proteins physically interact with each other to form a Ctr4–Ctr5 heteromeric complex, and are interdependent for secretion to the plasma membrane and Cu transport activity. In this study, we usedS. cerevisiaemutants that are defective in high-affinity Cu uptake to dissect the relative contribution of Ctr4 and Ctr5 to the Cu…

Amino Acid MotifsMutantSaccharomyces cerevisiaeSaccharomyces cerevisiaeBiologyMicrobiologySchizosaccharomycesHumansSecretionAmino Acid SequenceSLC31 ProteinsCation Transport ProteinsCell MembraneGenetic Complementation Testbiology.organism_classificationFusion proteinYeastProtein Structure TertiaryCell biologyComplementationTransmembrane domainBiochemistryCell and Molecular Biology of MicrobesSchizosaccharomyces pombeSchizosaccharomyces pombe ProteinsSequence AlignmentCopper
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Coordinated remodeling of cellular metabolism during iron deficiency through targeted mRNA degradation.

2004

AbstractIron (Fe) is an essential micronutrient for virtually all organisms and serves as a cofactor for a wide variety of vital cellular processes. Although Fe deficiency is the primary nutritional disorder in the world, cellular responses to Fe deprivation are poorly understood. We have discovered a posttranscriptional regulatory process controlled by Fe deficiency, which coordinately drives widespread metabolic reprogramming. We demonstrate that, in response to Fe deficiency, the Saccharomyces cerevisiae Cth2 protein specifically downregulates mRNAs encoding proteins that participate in many Fe-dependent processes. mRNA turnover requires the binding of Cth2, an RNA binding protein conser…

Untranslated regionSaccharomyces cerevisiae ProteinsTranscription GeneticIronSaccharomyces cerevisiaeMolecular Sequence DataDown-RegulationRNA-binding proteinSaccharomyces cerevisiaeBiologyGeneral Biochemistry Genetics and Molecular BiologyCofactorTristetraprolinGene Expression Regulation FungalMRNA degradationmedicineRNA MessengerRNA Processing Post-TranscriptionalMessenger RNABase SequenceBiochemistry Genetics and Molecular Biology(all)Mechanism (biology)Iron deficiencybiology.organism_classificationmedicine.diseaseDNA-Binding ProteinsBiochemistryMutationbiology.proteinPlasmidsCell
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The Arabidopsis heavy metal P-type ATPase HMA5 interacts with metallochaperones and functions in copper detoxification of roots

2005

*† ‡ § Summary Since copper (Cu) is essential in key physiological oxidation reactions, organisms have developed strategies for handling Cu while avoiding its potentially toxic effects. Among the tools that have evolved to cope with Cu is a network of Cu homeostasis factors such as Cu-transporting P-type ATPases that play a key role in transmembrane Cu transport. In this work we present the functional characterization of an Arabidopsis Cutransporting P-type ATPase, denoted heavy metal ATPase 5 (HMA5), and its interaction with Arabidopsis metallochaperones. HMA5 is primarily expressed in roots, and is strongly and specifically induced by Cu in whole plants. We have identified and characteriz…

ATPaseMolecular Sequence DataMutantArabidopsisPlant ScienceGenes PlantPlant RootsMetallochaperonesArabidopsisGeneticsAmino Acid SequenceRNA MessengerDNA PrimersAdenosine TriphosphatasesBase SequenceSequence Homology Amino AcidbiologyArabidopsis ProteinsCell BiologyCompartmentalization (fire protection)biology.organism_classificationTransmembrane proteinCell biologyBiochemistryChaperone (protein)biology.proteinP-type ATPaseCopperMolecular ChaperonesThe Plant Journal
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The intracellular Arabidopsis COPT5 transport protein is required for photosynthetic electron transport under severe copper deficiency

2011

Copper is an essential micronutrient that functions as a redox cofactor in multiple plant processes, including photosynthesis. Arabidopsis thaliana possesses a conserved family of CTR-like high-affinity copper transport proteins denoted as COPT1-5. COPT1, the only family member that is functionally characterized, participates in plant copper acquisition. However, little is known about the function of the other Arabidopsis COPT proteins in the transport and distribution of copper. Here, we show that a functional fusion of COPT5 to the green fluorescent protein localizes in Arabidopsis cells to the prevacuolar compartment. Plants defective in COPT5 do not exhibit any significant phenotype und…

biologyMutantchemistry.chemical_elementCell BiologyPlant Sciencebiology.organism_classificationmedicine.diseasePhotosynthesisCopperTransport proteinCell biologyGreen fluorescent proteinBiochemistrychemistryArabidopsisGeneticsmedicineArabidopsis thalianaCopper deficiencyThe Plant Journal
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Iron regulatory mechanisms in Saccharomyces cerevisiae

2020

Iron is an essential micronutrient for all eukaryotic organisms because it participates as a redox cofactor in many cellular processes. However, excess iron can damage cells since it promotes the generation of reactive oxygen species. The budding yeast Saccharomyces cerevisiae has been used as a model organism to study the adaptation of eukaryotic cells to changes in iron availability. Upon iron deficiency, yeast utilizes two transcription factors, Aft1 and Aft2, to activate the expression of a set of genes known as the iron regulon, which are implicated in iron uptake, recycling and mobilization. Moreover, Aft1 and Aft2 activate the expression of Cth2, an mRNA-binding protein that limits t…

Microbiology (medical)DNA damageSaccharomyces cerevisiaelcsh:QR1-502Saccharomyces cerevisiaeMicroorganismesyeastMicrobiologylcsh:Microbiology03 medical and health sciencesTranscriptional regulationiron deficiencyFongsiron metabolismPost-transcriptional regulationTranscription factorGene030304 developmental biology0303 health sciencesbiology030306 microbiologyChemistryPost-transcriptional regulationiron excessbiology.organism_classificationYeastCell biologyCytosolReguloniron homeostasisFerro
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Mitotic Recombination and Genetic Changes in Saccharomyces cerevisiae during Wine Fermentation

2000

Natural strains of Saccharomyces cerevisiae are prototrophic homothallic yeasts that sporulate poorly, are often heterozygous, and may be aneuploid. This genomic constitution may confer selective advantages in some environments. Different mechanisms of recombination, such as meiosis or mitotic rearrangement of chromosomes, have been proposed for wine strains. We studied the stability of the URA3 locus of a URA3/ura3 wine yeast in consecutive grape must fermentations. ura3/ura3 homozygotes were detected at a rate of 1 x 10(-5) to 3 x 10(-5) per generation, and mitotic rearrangements for chromosomes VIII and XII appeared after 30 mitotic divisions. We used the karyotype as a meiotic marker an…

Mitotic crossoverSaccharomyces cerevisiaeMitosisGenetics and Molecular BiologyWineSaccharomyces cerevisiaeApplied Microbiology and BiotechnologyGenetic recombinationFungal ProteinsMeiosisFermentacióDNA FungalMitosisGeneticsFermentation in winemakingRecombination GeneticEcologybiologyHomozygotefood and beveragesvinificationSpores Fungalbiology.organism_classificationElectrophoresis Gel Pulsed-FieldYeast in winemakingMeiosiswine fermentationKaryotypingFermentationMitotic recombinationChromosomes FungalHomologous recombinationFood ScienceBiotechnology
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Yeast Cth2 protein represses the translation of ARE-containing mRNAs in response to iron deficiency

2018

In response to iron deficiency, the budding yeast Saccharomyces cerevisiae undergoes a metabolic remodeling in order to optimize iron utilization. The tandem zinc finger (TZF)-containing protein Cth2 plays a critical role in this adaptation by binding and promoting the degradation of multiple mRNAs that contain AU-rich elements (AREs). Here, we demonstrate that Cth2 also functions as a translational repressor of its target mRNAs. By complementary approaches, we demonstrate that Cth2 protein inhibits the translation of SDH4, which encodes a subunit of succinate dehydrogenase, and CTH2 mRNAs in response to iron depletion. Both the AREs within SDH4 and CTH2 transcripts, and the Cth2 TZF are es…

0301 basic medicineCancer ResearchRNA StabilityAdaptation BiologicalGene ExpressionBiochemistryGene Expression Regulation FungalGene expressionMedicine and Health SciencesExpressió genèticaGenetics (clinical)Regulation of gene expressionZinc fingerbiologyMessenger RNANutritional DeficienciesEukaryotaTranslation (biology)Iron DeficienciesCell biologyNucleic acidsDNA-Binding ProteinsCellular Structures and OrganellesResearch ArticleSaccharomyces cerevisiae Proteinslcsh:QH426-470IronProtein subunitSaccharomyces cerevisiaeSaccharomyces cerevisiaeDNA constructionRegulatory Sequences Ribonucleic Acid03 medical and health sciencesExtraction techniquesTristetraprolinPolysomeGeneticsRNA MessengerMolecular BiologyEcology Evolution Behavior and SystematicsNutritionAU Rich ElementsAU-rich elementBiology and life sciencesOrganismsFungiCell Biologybiology.organism_classificationYeastRNA extractionResearch and analysis methodslcsh:GeneticsMolecular biology techniques030104 developmental biologyPolyribosomesPlasmid ConstructionIron DeficiencyRNAProtein TranslationRibosomesTranscription Factors
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Regulation of ribonucleotide reductase in response to iron deficiency

2011

Ribonucleotide reductase (RNR) is an essential enzyme required for DNA synthesis and repair. Although iron is necessary for class Ia RNR activity, little is known about the mechanisms that control RNR in response to iron deficiency. In this work, we demonstrate that yeast cells control RNR function during iron deficiency by redistributing the Rnr2–Rnr4 small subunit from the nucleus to the cytoplasm. Our data support a Mec1/Rad53-independent mechanism in which the iron-regulated Cth1/Cth2 mRNA-binding proteins specifically interact with the WTM1 mRNA in response to iron scarcity, and promote its degradation. The resulting decrease in the nuclear-anchoring Wtm1 protein levels leads to the re…

CytoplasmSaccharomyces cerevisiae ProteinsDeoxyribonucleoside triphosphateRibonucleoside Diphosphate ReductaseRNA StabilityProtein subunitSaccharomyces cerevisiaeCell Cycle ProteinsSaccharomyces cerevisiaeProtein Serine-Threonine KinasesBiologyResponse ElementsArticleTristetraprolinGene Expression Regulation FungalRibonucleotide ReductasesHumansRNA MessengerMolecular BiologyTranscription factorCell NucleusDNA synthesisIntracellular Signaling Peptides and ProteinsFungal geneticsRNA-Binding ProteinsRNA FungalIron DeficienciesCell Biologybiology.organism_classificationDNA-Binding ProteinsRepressor ProteinsCheckpoint Kinase 2Protein SubunitsProtein TransportRibonucleotide reductaseBiochemistryCytoplasmTranscription Factors
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Negative feedback regulation of the yeast CTH1 and CTH2 mRNA binding proteins is required for adaptation to iron deficiency and iron supplementation.

2013

Iron (Fe) is an essential element for all eukaryotic organisms because it functions as a cofactor in a wide range of biochemical processes. Cells have developed sophisticated mechanisms to tightly control Fe utilization in response to alterations in cellular demands and bioavailability. In response to Fe deficiency, the yeast Saccharomyces cerevisiae activates transcription of the CTH1 and CTH2 genes, which encode proteins that bind to AU-rich elements (AREs) within the 3′ untranslated regions (3′UTRs) of many mRNAs, leading to metabolic reprogramming of Fe-dependent pathways and decreased Fe storage. The precise mechanisms underlying Cth1 and Cth2 function and regulation are incompletely u…

Untranslated regionSaccharomyces cerevisiae ProteinsIronRNA StabilitySaccharomyces cerevisiaeMolecular Sequence DataSaccharomyces cerevisiaeBiologyCofactorTristetraprolinIn vivoTranscription (biology)Gene Expression Regulation FungalAutoregulationRNA MessengerMolecular BiologyGene3' Untranslated RegionsAU Rich ElementsBase SequenceCell BiologyArticlesbiology.organism_classificationMolecular biologyAdaptation PhysiologicalYeastCell biologyDNA-Binding Proteinsbiology.proteinTranscription FactorsMolecular and cellular biology
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Yeast Dun1 Kinase Regulates Ribonucleotide Reductase Inhibitor Sml1 in Response to Iron Deficiency

2014

Iron is an essential micronutrient for all eukaryotic organisms because it participates as a redox-active cofactor in many biological processes, including DNA replication and repair. Eukaryotic ribonucleotide reductases (RNRs) are Fe-dependent enzymes that catalyze deoxyribonucleoside diphosphate (dNDP) synthesis. We show here that the levels of the Sml1 protein, a yeast RNR large-subunit inhibitor, specifically decrease in response to both nutritional and genetic Fe deficiencies in a Dun1-dependent but Mec1/Rad53- and Aft1-independent manner. The decline of Sml1 protein levels upon Fe starvation depends on Dun1 forkhead-associated and kinase domains, the 26S proteasome, and the vacuolar pr…

Iron-Sulfur ProteinsProteasome Endopeptidase ComplexSaccharomyces cerevisiae ProteinsDeoxyribonucleoside triphosphateRibonucleotideIronDeoxyribonucleotidesGenes FungalSaccharomyces cerevisiaeCell Cycle ProteinsSaccharomyces cerevisiaeRibonucleotide reductase inhibitorProtein Serine-Threonine KinasesBiologyProtein degradationchemistry.chemical_compoundTristetraprolinRibonucleotide ReductasesAspartic Acid EndopeptidasesPhosphorylationMolecular BiologyCheckpoint Kinase 2Binding SitesKinaseIntracellular Signaling Peptides and ProteinsArticlesCell Biologybiology.organism_classificationDNA-Binding ProteinsDeoxyribonucleosideCheckpoint Kinase 2chemistryBiochemistryProteolysisGene DeletionTranscription FactorsMolecular and Cellular Biology
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Iron Regulatory Mechanisms in Saccharomyces cerevisiae

2020

Iron is an essential micronutrient for all eukaryotic organisms because it participates as a redox cofactor in many cellular processes. However, excess iron can damage cells since it promotes the generation of reactive oxygen species. The budding yeast Saccharomyces cerevisiae has been used as a model organism to study the adaptation of eukaryotic cells to changes in iron availability. Upon iron deficiency, yeast utilizes two transcription factors, Aft1 and Aft2, to activate the expression of a set of genes known as the iron regulon, which are implicated in iron uptake, recycling and mobilization. Moreover, Aft1 and Aft2 activate the expression of Cth2, an mRNA-binding protein that limits t…

Transcriptional regulationPost-transcriptional regulationIron deficiencyIron homeostasisSaccharomyces cerevisiaeIron metabolismIron excessYeast
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Cooperation of Two mRNA-Binding Proteins Drives Metabolic Adaptation to Iron Deficiency

2008

Summary Iron (Fe) is an essential cofactor for a wide range of cellular processes. We have previously demonstrated in yeast that Cth2 is expressed during Fe deficiency and promotes degradation of a battery of mRNAs leading to reprogramming of Fe-dependent metabolism and Fe storage. We report here that the Cth2-homologous protein Cth1 is transiently expressed during Fe deprivation and participates in the response to Fe deficiency through the degradation of mRNAs primarily involved in mitochondrially localized activities including respiration and amino acid biosynthesis. In parallel, wild-type cells, but not cth1 Δ cth2 Δ cells, accumulate mRNAs encoding proteins that function in glucose impo…

Saccharomyces cerevisiae ProteinsPhysiologySaccharomyces cerevisiaeHUMDISEASERNA-binding proteinSaccharomyces cerevisiaeProtein Serine-Threonine KinasesDNA-binding proteinArticlechemistry.chemical_compoundTristetraprolinGlucose importRNA MessengerPhosphorylationProtein kinase AMolecular BiologybiologyGlycogenRNA-Binding ProteinsIron DeficienciesCell BiologyMetabolismbiology.organism_classificationAdaptation PhysiologicalDNA-Binding ProteinsMetabolismBiochemistrychemistryPhosphorylationTranscription FactorsCell Metabolism
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Molecular strategies to increase yeast iron accumulation and resistance.

2018

All eukaryotic organisms rely on iron as an essential micronutrient for life because it participates as a redox-active cofactor in multiple biological processes. However, excess iron can generate reactive oxygen species that damage cellular macromolecules. The low solubility of ferric iron at physiological conditions increases the prevalence of iron deficiency anemia. A common strategy to treat iron deficiency consists of dietary iron supplementation. The baker’s yeast Saccharomyces cerevisiae is used as a model eukaryotic organism, but also as a feed supplement. In response to iron deficiency, the yeast Aft1 transcription factor activates cellular iron acquisition. However, when constituti…

0301 basic medicineSaccharomyces cerevisiae ProteinsTranscription GeneticIronSaccharomyces cerevisiaeBiophysicsSaccharomyces cerevisiaeBiochemistryCofactorBiomaterials03 medical and health sciencesFet3Gene Expression Regulation FungalCth2medicineBaker’s yeastYpk1Transcription factorAlleleschemistry.chemical_classificationReactive oxygen speciesbiologyKinaseIron deficiencyRespirationMetals and AlloysIron deficiencybiology.organism_classificationmedicine.diseaseYeastCell biologyIron toxicity030104 developmental biologychemistryIron-deficiency anemiaChemistry (miscellaneous)biology.proteinAft1Metallomics : integrated biometal science
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Transcriptional and Structural Study of a Region of Two Convergent Overlapping Yeast Genes

1999

The exceptionally close packing of many yeast genes and other chromosomal elements raises the question of how those elements are functionally insulated. All published work shows that natural insulators are very effective, but transcriptional interference (TI) occurs if they are mutated or if their natural context is altered. Mechanisms to avoid TI are poorly understood, but are thought to involve an interplay of cis sequences and trans factors in a chromatin context. We have studied the case of two convergent closely packed ORFs (56 bp of separation) in chromosome IX of Saccharomyces cerevisiae. mRNAs from POT1 and YIL161w overlap by up to 115 nt. Convergent transcription causes a small but…

GeneticsTranscription GeneticbiologyGenes FungalSaccharomyces cerevisiaeSaccharomyces cerevisiaeGeneral Medicinebiology.organism_classificationApplied Microbiology and BiotechnologyMicrobiologyNucleosomesChromatinFungal ProteinsOpen reading frameTranscription (biology)Gene Expression Regulation FungalGenes OverlappingNucleosomeORFSPromoter Regions GeneticGeneGene DeletionGenomic organizationCurrent Microbiology
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The yeast Aft1 transcription factor activates ribonucleotide reductase catalytic subunit RNR1 in response to iron deficiency

2020

Eukaryotic ribonucleotide reductases are iron-dependent enzymes that catalyze the rate-limiting step in the de novo synthesis of deoxyribonucleotides. Multiple mechanisms regulate the activity of ribonucleotide reductases in response to genotoxic stresses and iron deficiency. Upon iron starvation, the Saccharomyces cerevisiae Aft1 transcription factor specifically binds to iron-responsive cis elements within the promoter of a group of genes, known as the iron regulon, activating their transcription. Members of the iron regulon participate in iron acquisition, mobilization and recycling, and trigger a genome-wide metabolic remodeling of iron-dependent pathways. Here, we describe a mechanism …

Transcriptional ActivationRibonucleotideSaccharomyces cerevisiae ProteinsProtein subunitIronSaccharomyces cerevisiaeDeoxyribonucleotidesBiophysicsSaccharomyces cerevisiaeResponse ElementsBiochemistry03 medical and health sciencesStructural BiologyTranscription (biology)Gene Expression Regulation FungalRibonucleotide ReductasesGeneticsMolecular BiologyTranscription factorRibonucleotide reductase030304 developmental biologychemistry.chemical_classification0303 health sciencesbiologyChemistryIron deficiency030302 biochemistry & molecular biologyHigh Mobility Group ProteinsIron Deficienciesbiology.organism_classificationCell biologyDNA-Binding ProteinsRibonucleotide reductaseRegulonEnzymeYeast/TranscriptionProtein BindingTranscription Factors
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The elemental role of iron in DNA synthesis and repair

2017

Iron is an essential redox element that functions as a cofactor in many metabolic pathways. Critical enzymes in DNA metabolism, including multiple DNA repair enzymes (helicases, nucleases, glycosylases, demethylases) and ribonucleotide reductase, use iron as an indispensable cofactor to function. Recent striking results have revealed that the catalytic subunit of DNA polymerases also contains conserved cysteine-rich motifs that bind iron–sulfur (Fe/S) clusters that are essential for the formation of stable and active complexes. In line with this, mitochondrial and cytoplasmic defects in Fe/S cluster biogenesis and insertion into the nuclear iron-requiring enzymes involved in DNA synthesis a…

Iron-Sulfur Proteins0301 basic medicineDNA RepairDNA polymeraseDNA damageDNA repairIronBiophysicsDNA repairEukaryotic DNA replicationSaccharomyces cerevisiaeBiochemistryDNA GlycosylasesBiomaterials03 medical and health sciencesRibonucleotide ReductasesHumansProtein–DNA interactionRibonucleotide reductaseReplication protein Achemistry.chemical_classificationDNA ligaseDeoxyribonucleasesDNA synthesis030102 biochemistry & molecular biologybiologyIron deficiencyDNA HelicasesMetals and AlloysHelicaseDNAYeast030104 developmental biologyIron cofactorBiochemistrychemistryChemistry (miscellaneous)biology.proteinIron-sulfur clusterMetallomics
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Arabidopsis copper transport protein COPT2 participates in the crosstalk between iron deficiency responses and low phosphate signaling

2013

[EN] Copper and iron are essential micronutrients for most living organisms because they participate as cofactors in biological processes, including respiration, photosynthesis, and oxidative stress protection. In many eukaryotic organisms, including yeast (Saccharomyces cerevisiae) and mammals, copper and iron homeostases are highly interconnected; yet, such interdependence is not well established in higher plants. Here, we propose that COPT2, a high-affinity copper transport protein, functions under copper and iron deficiencies in Arabidopsis (Arabidopsis thaliana). COPT2 is a plasma membrane protein that functions in copper acquisition and distribution. Characterization of the COPT2 expr…

PhysiologyArabidopsisPlant SciencePlant RootsMembranes Transport and BioenergeticsGene Expression Regulation PlantArabidopsisThalianaHomeostasisArabidopsis thalianaSLC31 ProteinsGene-expressionCation Transport ProteinsChlorosisbiologyRevealsIron DeficienciesMetal homeostasisPlantsPlants Genetically ModifiedUp-RegulationTransport proteinPhenotypeBiochemistrySignal TransductionIronRecombinant Fusion ProteinsSaccharomyces cerevisiaechemistry.chemical_elementSaccharomyces cerevisiaeModels BiologicalPhosphatesEthyleneGeneticsmedicineBIOQUIMICA Y BIOLOGIA MOLECULARFamilyIron deficiency (plant disorder)Arabidopsis ProteinsBiological TransportRoot elongationSequence Analysis DNAbiology.organism_classificationmedicine.diseaseCopperPlant LeavesAcquisitionchemistrySeedlingsStarvationMutationCopper deficiencyCopper
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Sequential recruitment of the mRNA decay machinery to the iron-regulated protein Cth2 in Saccharomyces cerevisiae

2020

Post-transcriptional factors importantly contribute to the rapid and coordinated expression of the multiple genes required for the adaptation of living organisms to environmental stresses. In the model eukaryote Saccharomyces cerevisiae, a conserved mRNA-binding protein, known as Cth2, modulates the metabolic response to iron deficiency. Cth2 is a tandem zinc-finger (TZF)-containing protein that co-transcriptionally binds to adenine/uracil-rich elements (ARE) present in the 3′-untranslated region of iron-related mRNAs to promote their turnover. The nuclear binding of Cth2 to mRNAs via its TZFs is indispensable for its export to the cytoplasm. Although Cth2 nucleocytoplasmic transport is ess…

Exonuclease:YeastSaccharomyces cerevisiae ProteinsIronRNA StabilitySaccharomyces cerevisiaeAdaptation BiologicalBiophysicsSaccharomyces cerevisiaeBiochemistryDEAD-box RNA Helicases03 medical and health sciencesTristetraprolinStructural BiologyGene Expression Regulation FungalGene expressionGenetics[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyRNA MessengerMolecular BiologyPost-transcriptional regulationGene030304 developmental biology0303 health sciencesbiologyChemistryPost-transcriptional regulationIron deficiency030302 biochemistry & molecular biologyIron-Regulatory ProteinsIron Deficienciesbiology.organism_classificationRNA Helicase AYeast3. Good healthCell biology[SDV.BBM.BP]Life Sciences [q-bio]/Biochemistry Molecular Biology/BiophysicsCytoplasmbiology.proteinGene expressionFunction (biology)
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mRNA-binding protein tristetraprolin is essential for cardiac response to iron deficiency by regulating mitochondrial function

2018

Cells respond to iron deficiency by activating iron-regulatory proteins to increase cellular iron uptake and availability. However, it is not clear how cells adapt to conditions when cellular iron uptake does not fully match iron demand. Here, we show that the mRNA-binding protein tristetraprolin (TTP) is induced by iron deficiency and degrades mRNAs of mitochondrial Fe/S-cluster-containing proteins, specifically Ndufs1 in complex I and Uqcrfs1 in complex III, to match the decrease in Fe/S-cluster availability. In the absence of TTP, Uqcrfs1 levels are not decreased in iron deficiency, resulting in nonfunctional complex III, electron leakage, and oxidative damage. Mice with deletion of Ttp …

0301 basic medicineCardiac responseCardiac function curveIron-Sulfur ProteinsTristetraprolinMitochondria HeartCell Line03 medical and health sciencesElectron Transport Complex IIIMiceTristetraprolinmedicineAnimalschemistry.chemical_classificationMice KnockoutReactive oxygen speciesMultidisciplinaryNDUFS1MyocardiumNADH DehydrogenaseIron deficiencyIron Deficienciesmedicine.diseaseCell biology030104 developmental biologychemistryPNAS PlusCoenzyme Q – cytochrome c reductaseOxidation-ReductionFunction (biology)
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Comparison of global responses to mild deficiency and excess copper levels in Arabidopsis seedlings

2013

[EN] Copper is an essential micronutrient in higher plants, but it is toxic in excess. The fine adjustments required to fit copper nutritional demands for optimal growth are illustrated by the diverse, severe symptoms resulting from copper deficiency and excess. Here, a differential transcriptomic analysis was done between Arabidopsis thaliana plants suffering from mild copper deficiency and those with a slight copper excess. The effects on the genes encoding cuproproteins or copper homeostasis factors were included in a CuAt database, which was organised to collect additional information and connections to other databases. The categories overrepresented under copper deficiency and copper e…

ArabidopsisBiophysicsFunctional homologchemistry.chemical_elementCircadian clockTransporterBiochemistryBiomaterialsTranscriptomeSuperoxide dismutaseStomatal closureGene Expression Regulation PlantIron homeostasisArabidopsisThalianamedicineHomeostasisArabidopsis thalianaGeneOligonucleotide Array Sequence AnalysisGeneticsDose-Response Relationship DrugbiologyArabidopsis ProteinsReverse Transcriptase Polymerase Chain ReactionSuperoxide DismutaseProteinMetals and AlloysBindingMicronutrientbiology.organism_classificationmedicine.diseaseCopperDNA-Binding ProteinschemistryBiochemistrySeedlingsChemistry (miscellaneous)biology.proteinFeedback loopTranscription factorTranscriptomeCopper deficiencyCopperTranscription FactorsMetallomics
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Post-Transcriptional Regulation of Iron Homeostasis in Saccharomyces cerevisiae

2013

Iron is an essential micronutrient for all eukaryotic organisms because it participates as a redox cofactor in a wide variety of biological processes. Recent studies in Saccharomyces cerevisiae have shown that in response to iron deficiency, an RNA-binding protein denoted Cth2 coordinates a global metabolic rearrangement that aims to optimize iron utilization. The Cth2 protein contains two Cx8Cx5Cx3H tandem zinc fingers (TZFs) that specifically bind to adenosine/uridine-rich elements within the 3&#039; untranslated region of many mRNAs to promote their degradation. The Cth2 protein shuttles between the nucleus and the cytoplasm. Once inside the nucleus, Cth2 binds target mRNAs and stimulate…

572 Biochemistryalternative 3&#039; end processingSaccharomyces cerevisiae ProteinsIronTristetraprolinSaccharomyces cerevisiaeSaccharomyces cerevisiaeReviewyeastCatalysisInorganic Chemistrylcsh:ChemistryCth1TristetraprolinmRNA decayGene Expression Regulation FungalCth2medicineRNA MessengerRnt1Physical and Theoretical Chemistry3' Untranslated RegionsMolecular BiologyTranscription factorlcsh:QH301-705.5SpectroscopyMessenger RNAalternative 3′ end processingbiologyThree prime untranslated regionOrganic ChemistryQR MicrobiologyGeneral MedicineIron deficiencymedicine.diseasebiology.organism_classificationComputer Science ApplicationsDNA-Binding ProteinsRibonucleotide reductaseBiochemistrylcsh:Biology (General)lcsh:QD1-999Cytoplasmalternative 3' end processingTranscription Factorspost-transcriptional regulationInternational Journal of Molecular Sciences
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The Arabidopsis COPT6 Transport Protein Functions in Copper Distribution Under Copper-Deficient Conditions

2013

Copper (Cu), an essential redox active cofactor, participates in fundamental biological processes, but it becomes highly cytotoxic when present in excess. Therefore, living organisms have established suitable mechanisms to balance cellular and systemic Cu levels. An important strategy to maintain Cu homeostasis consists of regulating uptake and mobilization via the conserved family of CTR/COPT Cu transport proteins. In the model plant Arabidopsis thaliana, COPT1 protein mediates root Cu acquisition, whereas COPT5 protein functions in Cu mobilization from intracellular storage organelles. The function of these transporters becomes critical when environmental Cu bioavailability diminishes. Ho…

PhysiologyMolecular Sequence DataSaccharomyces cerevisiaeMutantArabidopsisSaccharomyces cerevisiaePlant SciencePlant RootsCofactorCell membraneGene Expression Regulation PlantArabidopsisOrganellemedicineHomeostasisAmino Acid SequenceSLC31 ProteinsbiologyArabidopsis ProteinsMembrane transport proteinCell MembraneGenetic Complementation TestMembrane Transport ProteinsBiological TransportCell BiologyGeneral MedicinePlants Genetically Modifiedbiology.organism_classificationUp-RegulationTransport proteinCell biologyPlant LeavesMutagenesis Insertionalmedicine.anatomical_structureBiochemistrySeedsbiology.proteinPlant Vascular BundleSequence AlignmentCopperPlant ShootsPlant and Cell Physiology
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Adaptation to iron deficiency in human pathogenic fungi

2020

Iron is an essential micronutrient for virtually all eukaryotic organisms and plays a central role during microbial infections. Invasive fungal diseases are associated with strikingly high rates of mortality, but their impact on human health is usually underestimated. Upon a fungal infection, hosts restrict iron availability in order to limit the growth and virulence of the pathogen. Here, we use two model yeasts, Saccharomyces cerevisiae and Schizosaccharomyces pombe, to delve into the response to iron deficiency of human fungal pathogens, such as Candida glabrata, Candida albicans, Aspergillus fumigatus and Cryptococcus neoformans. Fungi possess common and species-specific mechanisms to a…

VirulenceSiderophoresBiologyMicrobiologyAspergillus fumigatusFungal Proteins03 medical and health sciencesTranscriptional regulationmedicineHumansCandida albicansIron transportMolecular BiologyPathogen030304 developmental biologyCryptococcus neoformans0303 health sciencesCandida glabrataVirulence030306 microbiologyIron deficiencyFungiBiological TransportCell BiologyIron deficiencyIron Deficienciesmedicine.diseasebiology.organism_classificationIron metabolismAdaptation PhysiologicalYeastYeast
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Stress response and expression patterns in wine fermentations of yeast genes induced at the diauxic shift

2000

During wine fermentation yeasts quickly reach a stationary phase, where cells are metabolically active by consuming sugars present in grape must. It is, consequently, of great interest at this stage to identify suitable gene promoters that may be used to induce the expression of genes with enological applications. With this aim, we have studied a group of genes showing an induction peak at the diauxic shift, and possessing stress response elements (STRE) at their promoters. We have determined their induction levels under individualized stress conditions, such as carbon source starvation or high salt concentrations. In all the cases studied, the activation and/or basal transcription are depe…

WineFermentation in winemakingSPI1General transcription factorSaccharomyces cerevisiaeBioengineeringPromoterBiologybiology.organism_classificationApplied Microbiology and BiotechnologyBiochemistryYeastBiochemistryGeneticsGeneBiotechnologyYeast
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The Cth2 ARE-binding protein recruits the Dhh1 helicase to promote the decay of succinate dehydrogenase SDH4 mRNA in response to iron deficiency

2008

Iron is an essential nutrient that participates as a redox co-factor in a broad range of cellular processes. In response to iron deficiency, the budding yeast Saccharomyces cerevisiae induces the expression of the Cth1 and Cth2 mRNA-binding proteins to promote a genome-wide remodeling of cellular metabolism that contributes to the optimal utilization of iron. Cth1 and Cth2 proteins bind to specific AU-rich elements within the 3'-untranslated region of many mRNAs encoding proteins involved in iron-dependent pathways, thereby promoting their degradation. Here, we show that the DEAD box Dhh1 helicase plays a crucial role in the mechanism of Cth2-mediated mRNA turnover. Yeast two-hybrid experim…

Untranslated regionCytoplasmSaccharomyces cerevisiae ProteinsDEAD boxIronSaccharomyces cerevisiaeSaccharomyces cerevisiaeRNA-Mediated Regulation and Noncoding RnasModels BiologicalBiochemistryDEAD-box RNA HelicasesTristetraprolinGene Expression Regulation FungalTwo-Hybrid System TechniquesP-bodiesRNA MessengerMolecular BiologyMessenger RNAbiologySuccinate dehydrogenaseBinding proteinGalactoseHelicaseCell Biologybiology.organism_classificationProtein Structure TertiarySuccinate DehydrogenaseGlucoseBiochemistryMutationbiology.proteinPlasmids
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The Arabidopsis Copper Transporter COPT1 Functions in Root Elongation and Pollen Development

2004

Copper plays a dual role in aerobic organisms, as both an essential and a potentially toxic element. To ensure copper availability while avoiding its toxic effects, organisms have developed complex homeostatic networks to control copper uptake, distribution, and utilization. In eukaryotes, including yeasts and mammals, high affinity copper uptake is mediated by the Ctr family of copper transporters. This work is the first report on the physiological function of copper transport in Arabidopsis thaliana. We have studied the expression pattern of COPT1 in transgenic plants expressing a reporter gene under the control of the COPT1 promoter. The reporter gene is highly expressed in embryos, tric…

TransgeneArabidopsisDown-Regulationchemistry.chemical_elementPlant RootsBiochemistrychemistry.chemical_compoundGenes ReporterArabidopsisArabidopsis thalianaRNA MessengerTransgenesMolecular BiologyCopper Transporter 1Reporter geneDose-Response Relationship DrugbiologyArabidopsis ProteinsReverse Transcriptase Polymerase Chain ReactionMembrane Transport ProteinsBiological TransportTransporterCell BiologyOligonucleotides AntisensePlants Genetically Modifiedbiology.organism_classificationCopperTrichomeUp-RegulationBiochemistrychemistryMicroscopy Electron ScanningPollenGrowth inhibitionCopperPhenanthrolinesPlasmidsJournal of Biological Chemistry
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Identification and molecular characterization of the high-affinity copper transporters family in Solanum lycopersicum

2021

Copper (Cu) plays a key role as cofactor in the plant proteins participating in essential cellular processes, such as electron transport and free radical scavenging. Despite high-affinity Cu transporters (COPTs) being key participants in Cu homeostasis maintenance, very little is known about COPTs in tomato (Solanum lycopersicum) even though it is the most consumed fruit worldwide and this crop is susceptible to suboptimal Cu conditions. In this study, a six-member family of COPT (SlCOPT1-6) was identified and characterized. SlCOPTs have a conserved architecture consisting of three transmembrane domains and β-strains. However, the presence of essential methionine residues, a methionine-enri…

0106 biological sciencesATPaseBiotecnologia agrícolaMolecular ConformationGene ExpressionCOPT01 natural sciencesBiochemistryTomatoStructure-Activity Relationship03 medical and health scienceschemistry.chemical_compoundCopper Transport ProteinsSolanum lycopersicumStructural BiologyGene expressionTomàquetsAmino Acid SequenceHeavy metal stressMolecular BiologyConserved SequencePhylogenyPlant Proteins030304 developmental biology0303 health sciencesMethioninebiologyChemistryfood and beveragesGeneral MedicinePeroxisomeYeastComplementationTransmembrane domainBiochemistryMultigene Familybiology.proteinCopper010606 plant biology & botanyCysteineInternational Journal of Biological Macromolecules
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Molecular Characterization of a Chromosomal Rearrangement Involved in the Adaptive Evolution of Yeast Strains

2002

Wine yeast strains show a high level of chromosome length polymorphism. This polymorphism is mainly generated by illegitimate recombination mediated by Ty transposons or subtelomeric repeated sequences. We have found, however, that the SSU1-R allele, which confers sulfite resistance to yeast cells, is the product of a reciprocal translocation between chromosomes VIII and XVI due to unequal crossing-over mediated by microhomology between very short sequences on the 5' upstream regions of the SSU1 and ECM34 genes. We also show that this translocation is only present in wine yeast strains, suggesting that the use for millennia of sulfite as a preservative in wine production could have favored …

Genetic MarkersSaccharomyces cerevisiae ProteinsLetterChromosomal rearrangementsAnion Transport ProteinsGenes FungalMolecular Sequence DataSaccharomyces cerevisiaeSaccharomyces cerevisiaeChromosomal rearrangementSaccharomycesGenètica molecularTranslocation GeneticEvolution MolecularSaccharomycesGene FrequencySpecies SpecificityGeneticsVinificationDNA FungalGeneGenetics (clinical)Wine yeastsGene RearrangementRecombination GeneticGeneticsBase SequencebiologyGene rearrangementbiology.organism_classificationYeastYeast in winemakingChromosomes FungalGenome FungalPloidyGenome Research
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Characterization of the Copper Transporters from Lotus spp. and Their Involvement under Flooding Conditions

2019

Forage legumes are an important livestock nutritional resource, which includes essential metals, such as copper. Particularly, the high prevalence of hypocuprosis causes important economic losses to Argentinian cattle agrosystems. Copper deficiency in cattle is partially due to its low content in forage produced by natural grassland, and is exacerbated by flooding conditions. Previous results indicated that incorporation of Lotus spp. into natural grassland increases forage nutritional quality, including higher copper levels. However, the biological processes and molecular mechanisms involved in copper uptake by Lotus spp. remain poorly understood. Here, we identify four genes that encode p…

0106 biological sciences0301 basic medicineBiologíalegumesLotusCOPPERFLOODING01 natural scienceslcsh:ChemistryCopper transportersProtein-fragment complementation assayCation Transport Proteinslcsh:QH301-705.5SpectroscopyPlant Proteinsbiologyfood and beveragesGeneral MedicinePhenotypeComputer Science ApplicationsLEGUMESSaccharomyces cerevisiaechemistry.chemical_elementCatalysisArticleInorganic Chemistry03 medical and health sciencesfloodingStress PhysiologicalFORAGEBotanymedicineCiencias AgrariasPhysical and Theoretical ChemistryMolecular BiologyGeneOrganic Chemistryfungiforagebiology.organism_classificationmedicine.disease//purl.org/becyt/ford/4.5 [https]CopperTRANSPORTERScopper transportersYeastFloods030104 developmental biologychemistrylcsh:Biology (General)lcsh:QD1-999CIENCIAS AGRÍCOLASLotusOtras Ciencias AgrícolasCopper deficiency//purl.org/becyt/ford/4 [https]Copper010606 plant biology & botanyInternational Journal of Molecular Sciences
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Phosphorylation and proteasome recognition of the mRNA- binding protein Cth2 facilitates yeast adaptation to iron deficiency

2018

Iron is an indispensable micronutrient for all eukaryotic organisms due to its participation as a redox cofactor in many metabolic pathways. Iron imbalance leads to the most frequent human nutritional deficiency in the world. Adaptation to iron limitation requires a global reorganization of the cellular metabolism directed to prioritize iron utilization for essential processes. In response to iron scarcity, the conserved Saccharomyces cerevisiae mRNA-binding protein Cth2, which belongs to the tristetraprolin family of tandem zinc finger proteins, coordinates a global remodeling of the cellular metabolism by promoting the degradation of multiple mRNAs encoding highly iron-consuming proteins.…

0301 basic medicineProteasome Endopeptidase ComplexSaccharomyces cerevisiae ProteinsIronPosttranslational regulationSaccharomyces cerevisiaeMrna bindingMicrobiology03 medical and health sciencesProtein stabilityTristetraprolinGene Expression Regulation FungalVirologyPolitical scienceProtein stabilitySerineRNA MessengerPhosphorylationIron deficiencyAdaptation PhysiologicalQR1-502Yeast030104 developmental biologyMutagenesisChristian ministryProtein Processing Post-TranslationalHumanities
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A new chromosomal rearrangement improves the adaptation of wine yeasts to sulfite

2019

Sulfite‐generating compounds are widely used during winemaking as preservatives because of its antimicrobial and antioxidant properties. Thus, wine yeast strains have developed different genetic strategies to increase its sulfite resistance. The most efficient sulfite detoxification mechanism in Saccharomyces cerevisiae uses a plasma membrane protein called Ssu1 to efflux sulfite. In wine yeast strains, two chromosomal translocations (VIIItXVI and XVtXVI) involving the SSU1 promoter region have been shown to upregulate SSU1 expression and, as a result, increase sulfite tolerance. In this study, we have identified a novel chromosomal rearrangement that triggers wine yeast sulfite adaptation.…

Saccharomyces cerevisiae ProteinsChromosomal rearrangementsWine yeastSaccharomyces cerevisiaeWineSaccharomyces cerevisiaeChromosomal rearrangementBiologyMicrobiology03 medical and health scienceschemistry.chemical_compoundSulfiteSulfitesPromoter Regions GeneticSSU1Ecology Evolution Behavior and Systematics030304 developmental biologyWinemakingGene RearrangementWine0303 health sciences030306 microbiologyInversionPromoterbiology.organism_classificationAdaptation PhysiologicalYeast in winemakingBiochemistrychemistryRegulatory sequenceFermentationChromosomes FungalSulfite resistanceEnvironmental Microbiology
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Expression of a Truncated Yeast Ccc1 Vacuolar Transporter Increases the Accumulation of Endogenous Iron

2021

Iron is an essential micronutrient for all eukaryotic organisms because it participates as a redox cofactor in multiple metabolic processes. Iron bioavailability is highly restricted due to the low solubility of its oxidized form, frequently leading to iron deficiency anemia. The baker’s yeast Saccharomyces cerevisiae is used as a model organism for iron homeostasis studies, but also as a food supplement and fermentative microorganism in the food industry. Yeast cells use the vacuolar Ccc1 transporter to detoxify and store excess iron in the vacuoles. Here, we modulate CCC1 expression and properties to increase iron extraction from the environment. We show that constitutive expression of fu…

Saccharomyces cerevisiae ProteinsIronSaccharomyces cerevisiaeCcc1EndogenyVacuoleSaccharomyces cerevisiaeyeastQH426-470CofactorArticle<i>Saccharomyces cerevisiae</i>03 medical and health sciencesironWestern blotGene Expression Regulation FungalmedicineGeneticsTranscription factorCation Transport ProteinsGenetics (clinical)030304 developmental biology0303 health sciencesmedicine.diagnostic_testbiology030306 microbiologyChemistryBiological Transportbiology.organism_classificationYeastYeastCell biologyCytosolVacuolesbiology.proteinGenes
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The Altered Expression of microRNA408 Influences the Arabidopsis Response to Iron Deficiency

2019

MicroRNAs contribute to the adaptation of plants to varying environmental conditions by affecting systemic mineral nutrient homeostasis. Copper and iron deficiencies antagonistically control the expression of Arabidopsis thaliana microRNA408 (miR408), which post-transcriptionally regulates laccase-like multicopper oxidase family members LAC3, LAC12, and LAC13. In this work, we used miR408 T-DNA insertion mutants (408-KO1 and 408-KO2) and a previously characterized transgenic line overexpressing miR408 (35S:408-14) to explore how miR408 influences copper- and iron-dependent metabolism. We observed that the altered expression of miR408 diminished plant performance and the activation of the ir…

0106 biological sciences0301 basic medicineTransgeneArabidopsisligninhydrogen peroxidePlant Sciencelcsh:Plant cultureMulticopper oxidase01 natural sciencesLignin03 medical and health sciencesiron deficiencyMicroRNA408ArabidopsisArabidopsis thalianalcsh:SB1-1110Iron deficiency (plant disorder)Original ResearchLaccasebiologyChemistryIron deficiencybiology.organism_classificationVascular bundleHydrogen peroxideCell biologymicroRNA408030104 developmental biologybiology.proteinCeruloplasmin010606 plant biology & botany
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