Search results for "DUP"

showing 10 items of 499 documents

The DNA-binding subunit p140 of replication factor C is upregulated in cycling cells and associates with G 1 phase cell cycle regulatory proteins

1999

The DNA-binding subunit of replication factor C (RFCp140) plays an important role in both DNA replication and DNA repair. The mechanisms regulating activation of RFCp140 thereby controlling replication and cellular proliferation are largely unknown. We analyzed protein expression of RFCp140 during cell cycle progression and investigated the association of RFCp140 with cell cycle regulatory proteins in cell lines of various tissue origin and in primary hematopoietic cells. Western and Northern blot analyses of RFCp140 from synchronized cells showed downregulation of RFCp140 when cells enter a G0-like quiescent state and upregulation of RFCp140 in cycling cells. Translocation from the cytopla…

CytoplasmSaccharomyces cerevisiae ProteinsT-LymphocytesCyclin ACell Cycle ProteinsEukaryotic DNA replicationCell LineMinor Histocompatibility AntigensDNA replication factor CDT1MiceReplication factor CControl of chromosome duplicationDrug DiscoveryAnimalsHumansReplication Protein CGenetics (clinical)Cell NucleusHomeodomain ProteinsbiologyG1 PhaseS-phase-promoting factor3T3 CellsCell cycleMolecular biologyUp-RegulationCell biologyDNA-Binding ProteinsRepressor ProteinsProto-Oncogene Proteins c-bcl-2biology.proteinMolecular MedicineOrigin recognition complexJournal of Molecular Medicine
researchProduct

Preservation of genetic and regulatory robustness in ancient gene duplicates of Saccharomyces cerevisiae

2014

[EN] Biological systems remain robust against certain genetic and environmental challenges. Robustness allows the exploration of ecological adaptations. It is unclear what factors contribute to increasing robustness. Gene duplication has been considered to increase genetic robustness through functional redundancy, accelerating the evolution of novel functions. However, recent findings have questioned the link between duplication and robustness. In particular, it remains elusive whether ancient duplicates still bear potential for innovation through preserved redundancy and robustness. Here we have investigated this question by evolving the yeast Saccharomyces cerevisiae for 2200 generations …

DNA Mutational AnalysisGenes FungalSaccharomyces cerevisiaeSaccharomyces cerevisiaeBiologyPolymorphism Single NucleotideGenome03 medical and health sciences0302 clinical medicineINDEL MutationStress PhysiologicalGene DuplicationGene duplicationDNA Mutational AnalysisGeneticsBiologyGeneGenetics (clinical)030304 developmental biologyGenetics0303 health sciencesModels GeneticResearchFungal geneticsRobustness (evolution)biology.organism_classificationAdaptation PhysiologicalPhenotypeEvolutionary biologyMutationChromosomes FungalDirected Molecular EvolutionGenome FungalAlgorithms030217 neurology & neurosurgeryGenome Research
researchProduct

The Physcomitrella genome reveals evolutionary insights into the conquest of land by plants

2008

We report the draft genome sequence of the model moss Physcomitrella patens and compare its features with those of flowering plants, from which it is separated by more than 400 million years, and unicellular aquatic algae. This comparison reveals genomic changes concomitant with the evolutionary movement to land, including a general increase in gene family complexity; loss of genes associated with aquatic environments (e.g., flagellar arms); acquisition of genes for tolerating terrestrial stresses (e.g., variation in temperature and water availability); and the development of the auxin and abscisic acid signaling pathways for coordinating multicellular growth and dehydration response. The …

DNA RepairRetroelementsPhyscomitrellaArabidopsisPhyscomitrella patensGenes PlantGenomeMagnoliopsidaPhylogeneticsGene DuplicationGene familyAnimalsGenePhylogenyPlant ProteinsRepetitive Sequences Nucleic AcidGeneticsWhole genome sequencingMultidisciplinarybiologyDehydrationfood and beveragesComputational BiologyOryzaSequence Analysis DNAbiology.organism_classificationAdaptation PhysiologicalBiological EvolutionBryopsidaMulticellular organismMultigene FamilyChlamydomonas reinhardtiiGenome PlantMetabolic Networks and PathwaysSignal Transduction
researchProduct

The high rate of endoreduplication in the repair deficient CHO mutant EM9 parallels a reduced level of methylated deoxycytidine in DNA

2008

It has been recently proposed that hypomethylation of DNA induced by 5-azacytidine (5-azaC) leads to reduced chromatid decatenation that ends up in endoreduplication, most likely due to a failure in topo II function [S. Mateos, I. Domínguez, N. Pastor, G. Cantero, F. Cortés, The DNA demethylating 5-azaC induces endoreduplication in cultured Chinese hamster cells, Mutat. Res. 578 (2005) 33-42]. The Chinese hamster mutant cell line EM9 has a high spontaneous frequency of endoreduplication as compared to its parental line AA8. In order to see if this is related to the degree of DNA methylation, we have investigated the basal levels of both endpoints in AA8 and EM9, as well as the effect of ext…

DNA ReplicationDNA RepairHealth Toxicology and MutagenesisMutantCHO CellsChromosome segregationamedicine.disease_causeDeoxycytidineChromosomesChinese hamsterHypomethylation of DNAchemistry.chemical_compoundCricetulusCricetinaeGeneticsmedicineAnimalsEndoreduplicationMolecular BiologyMutationbiologyChinese hamster ovary cellEndoreduplicationDNA Methylationbiology.organism_classificationTopoisomerase IIMolecular biologychemistryMutationDNA methylationAzacitidineChromatidDNAMutation Research/Fundamental and Molecular Mechanisms of Mutagenesis
researchProduct

Replication origins and pause sites in sea urchin mitochondrial DNA

1992

We have used a combination of one- and two-dimensional agarose gel electrophoresis, and solution hybridization to strand-specific probes, to map the replication origin of sea urchin mitochondrial DNA and to investigate the structure of replication intermediates. These assays are consistent with replication initiating unidirectionally from the D-loop region by D-loop expansion, as in vertebrates. A prominent site of initiation of lagging-strand synthesis lies at, or near to, the boundary between the genes for ATPase 6 and COIII, which is also close to a pause site for leading-strand synthesis. These findings suggest a role for pause sites in the regulation of mitochondrial transcription and …

DNA ReplicationMitochondrial DNAMacromolecular SubstancesRestriction MappingEukaryotic DNA replicationBiologyOrigin of replicationPre-replication complexDNA MitochondrialDNA RibosomalGeneral Biochemistry Genetics and Molecular BiologyElectron Transport Complex IVRNA TransferControl of chromosome duplicationAnimalsElectrophoresis Gel Two-DimensionalGeneral Environmental ScienceElectrophoresis Agar GelGeneral Immunology and MicrobiologyTer proteinChromosome MappingNADH DehydrogenaseGeneral MedicineMolecular biologyCell biologyRNA RibosomalSea UrchinsNucleic Acid ConformationOrigin recognition complexSolution hybridizationGeneral Agricultural and Biological SciencesProceedings of the Royal Society of London. Series B: Biological Sciences
researchProduct

Multiple roles for ISWI in transcription, chromosome organization and DNA replication.

2003

ISWI functions as the ATPase subunit of multiple chromatin-remodeling complexes. These complexes use the energy of ATP hydrolysis to slide nucleosomes and increase chromatin fluidity, thereby modulating the access of transcription factors and other regulatory proteins to DNA. Here we discuss recent progress toward understanding the biological functions of ISWI, with an emphasis on its roles in transcription, chromosome organization and DNA replication.

DNA ReplicationTranscriptional ActivationHMG-boxTranscription GeneticBiophysicsBiologyBiochemistryATP-dependent chromatin remodeling ISWI Transcription Replication Chromosome structureChromatin remodelingChromosomesAdenosine TriphosphateControl of chromosome duplicationStructural BiologyGeneticsNucleosomeAnimalsHumansTranscription factorGeneticsAdenosine TriphosphatasesDNA replicationChromatin Assembly and DisassemblyChromatinSettore BIO/18 - GeneticaGene Expression RegulationOrigin recognition complexTranscription FactorsBiochimica et biophysica acta
researchProduct

Cisplatin-induced endoreduplication in CHO cells: DNA damage and inhibition of topoisomerase II.

2006

It has been proposed that polyploid cells that arise during a variety of pathological conditions and as a result of exposure to genotoxicants, typically in the liver, become aneuploid through genetic instability. Aneuploidy contributes to, or even drives, tumour development. We have assessed the capacity of the drug cisplatin, one of the most commonly used compounds for the treatment of malignancies, to induce endoreduplication, a particular type of polyploidy, in cultured Chinese hamster AA8 cells. Taking into account that any interference with DNA topoisomerase II (topo II) function leads to endoreduplication, we have found that treatment of the cells with this platinum compound results i…

DNA damageHealth Toxicology and MutagenesisAntineoplastic AgentsCHO CellsPolyploidychemistry.chemical_compoundCricetinaeGeneticsmedicineEndoreduplicationAnimalsHumansTopoisomerase II InhibitorsEnzyme InhibitorsMolecular BiologyCisplatinbiologySettore BIO/16 - Anatomia UmanaTopoisomeraseChinese hamster ovary cellNeoplasms Second PrimaryCell cycleAneugensAneuploidyMolecular biologychemistryTopoisomerase II cisplatinbiology.proteinCancer researchTopoisomerase-II InhibitorCisplatinDNAmedicine.drugDNA Damage
researchProduct

The DNA topoisomerase II catalytic inhibitor merbarone is genotoxic and induces endoreduplication

2012

Abstract In the last years a number of reports have shown that the so-called topoisomerase II (topo II) catalytic inhibitors are able to induce DNA and chromosome damage, an unexpected result taking into account that they do not stabilize topo II-DNA cleavable complexes, a feature of topo II poisons such as etoposide and amsacrine. Merbarone inhibits the catalytic activity of topo II by blocking DNA cleavage by the enzyme. While it was first reported that merbarone does not induce genotoxic effects in mammalian cells, this has been challenged by reports showing that the topo II inhibitor induces efficiently chromosome and DNA damage, and the question as to a possible behavior as a topo II p…

DNA damageHealth Toxicology and MutagenesisTopoisomerase II; Catalytic inhibitor; Merbarone; DNA damage; Clastogens; EndoreduplicationCatalytic inhibitorCell Linechemistry.chemical_compoundCricetulusCricetinaeGeneticsmedicineEndoreduplicationAnimalsTopoisomerase II InhibitorsClastogenMolecular BiologyAmsacrineCell ProliferationbiologyDNA synthesisCell growthTopoisomeraseMerbaroneCell cycleEndoreduplicationThiobarbituratesMolecular biologyTopoisomerase IIchemistrybiology.proteinDNAmedicine.drugDNA Damage
researchProduct

Fitness drift of an atrazine-degrading population under atrazine selection pressure.

2008

International audience; Pseudomonas sp. ADP harbouring the atrazine catabolic plasmid ADP1 was subcultured in liquid medium containing atrazine as sole source of nitrogen. After approximately 320 generations, a new population evolved which replaced the initial population. This newly evolved population grew faster and degraded atrazine more rapidly than the initial population. Plasmid profiles and Southern blot analyses revealed that the evolved strain, unlike the ancestral strain, presented a tandem duplication of the atzB gene encoding the second enzyme of the atrazine catabolic pathway responsible for the transformation of hydroxyatrazine to N-isopropylammelide. This duplication resulted …

DNA BacterialPopulationBiologyMicrobiologyPSEUDOMONAS SP03 medical and health scienceschemistry.chemical_compoundPlasmidGene DuplicationPseudomonasGene duplicationELEMENTSDirect repeatAtrazineInsertion sequenceSelection GeneticADAPTATIONeducationEcology Evolution Behavior and Systematics030304 developmental biologyGenetics0303 health scienceseducation.field_of_study030306 microbiologySALMONELLA-TYPHIMURIUMSTRAIN ADPCATABOLISM GENESTransformation (genetics)Blotting Southern[SDV.MP]Life Sciences [q-bio]/Microbiology and ParasitologychemistryGenes BacterialBACTERIADNA Transposable ElementsGROWTHAtrazineTandem exon duplicationPLASMIDRESISTANCEPlasmidsEnvironmental microbiology
researchProduct

Comparative sequence analysis of the Clostridium difficile toxins A and B.

1992

The six clones pTB112, pTB324, pTBs12, pCd122, pCd14 and pCd13 cover the tox locus of Clostridium difficile VPI 10463. This region of 19 kb of chromosomal DNA contains four open reading frames including the complete toxB and toxA genes. The two toxins show 63% amino acid (aa) homology, a relatedness that had been predicted by the cross-reactivity of some monoclonal antibodies (mAb) but that is in contrast to the toxin specificity of polyclonal antisera. A special feature of ToxA and ToxB is their repetitive C-termini. We define herein 19 individual CROPs (combined repetitive oligopeptides of 20-50 aa length) in the ToxB C-terminus, which are separable into five homologous groups. Comparison…

DNA BacterialSequence analysisBacterial ToxinsBlotting WesternMolecular Sequence DataRestriction MappingDNA RecombinantLocus (genetics)Cross ReactionsHomology (biology)EnterotoxinsBacterial ProteinsSequence Homology Nucleic AcidGene duplicationGeneticsAmino Acid SequenceMolecular BiologyGeneRepetitive Sequences Nucleic AcidGeneticsbiologyBase SequenceClostridioides difficileNucleic acid sequenceAntibodies MonoclonalNucleic Acid HybridizationMolecular biologyRecombinant ProteinsOpen reading framePolyclonal antibodiesbiology.proteinMoleculargeneral genetics : MGG
researchProduct