Search results for "PROTEIN INTERACTION"

showing 10 items of 228 documents

Mammary-derived growth inhibitor (MDGI) interacts with integrin α-subunits and suppresses integrin activity and invasion

2010

The majority of mortality associated with cancer is due to formation of metastases from the primary tumor. Adhesion mediated by different integrin heterodimers has an important role during cell migration and invasion. Protein interactions with the β1-integrin cytoplasmic tail are known to influence integrin affinity for extracellular ligands, but regulating binding partners for the α-subunit cytoplasmic tails have remained elusive. In this study, we show that mammary-derived growth inhibitor (MDGI) (also known as FABP-3 or H-FABP) binds directly to the cytoplasmic tail of integrin α-subunits and its expression inhibits integrin activity. In breast cancer cell lines, MDGI expression correlat…

Cancer Researchmedicine.disease_causemigrationCD49cCollagen receptor0302 clinical medicineCell Movement0303 health sciencesCell migrationMiddle Agedinvasion3. Good healthCell biologyExtracellular MatrixadhesionIntegrin alpha MMDGI030220 oncology & carcinogenesis/dk/atira/pure/sustainabledevelopmentgoals/good_health_and_well_beingIntegrin beta 6FemaleFatty Acid Binding Protein 3Integrin alpha Chainsmedicine.medical_specialtyintegrinIntegrinMolecular Sequence DataBreast NeoplasmsBiologyFatty Acid-Binding ProteinsCollagen Type IDisease-Free Survival03 medical and health sciencesbreast cancerSDG 3 - Good Health and Well-beingInternal medicineCell Line TumorGeneticsmedicineHumansNeoplasm InvasivenessProtein Interaction Domains and MotifsAmino Acid SequenceMolecular Biology030304 developmental biologyFibronectinsFibronectinEndocrinologybiology.proteinCarcinogenesisOncogene
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Phylostratic Shift of Whole-Genome Duplications in Normal Mammalian Tissues towards Unicellularity Is Driven by Developmental Bivalent Genes and Reve…

2020

Tumours were recently revealed to undergo a phylostratic and phenotypic shift to unicellularity. As well, aggressive tumours are characterized by an increased proportion of polyploid cells. In order to investigate a possible shared causation of these two features, we performed a comparative phylostratigraphic analysis of ploidy-related genes, obtained from transcriptomic data for polyploid and diploid human and mouse tissues using pairwise cross-species transcriptome comparison and principal component analysis. Our results indicate that polyploidy shifts the evolutionary age balance of the expressed genes from the late metazoan phylostrata towards the upregulation of unicellular and early m…

CarcinogenesisCircadian clockAntineoplastic AgentsBiologyGenomeArticleCatalysisBivalent (genetics)Epigenesis Geneticlcsh:ChemistryProto-Oncogene Proteins c-mycInorganic ChemistryTranscriptomeMicePolyploidGene DuplicationNeoplasmsProtein Interaction MappingAnimalsHumanscancerEpigeneticsPhysical and Theoretical Chemistrylcsh:QH301-705.5Molecular BiologyGenepolyploidybivalent genesSpectroscopyGeneticsGenomePloidiesCircadian Rhythm Signaling Peptides and ProteinsOrganic Chemistryearly multicellularityviral-origin oncogenesOncogenesGeneral MedicineembryonalityPhenotypeNeoplasm ProteinsunicellularityComputer Science ApplicationsGene Expression Regulation Neoplasticlcsh:Biology (General)lcsh:QD1-999Drug Resistance NeoplasmMetabolic Networks and PathwaysInternational Journal of Molecular Sciences
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Study of the role of the CDC48 chaperone protein in plant immunity

2018

The chaperone protein CDC48 (Cell division cycle 48) is a major regulator of the quality control of proteins and is involved in various cellular processes in animals and yeast. In contrast, the role of CDC48 in plants is poorly known. In the present work, we investigated the function of CDC48 in plant immunity thanks to the cryptogein/tobacco biological model, cryptogein being produced by the oomycete phytophthora cryptogea.Three strategies were carried out. First, the dynamic of accumulation CDC48 together with intracellular events inherent to the immune response were analyzed in both wild-type and CDC48 overexpressing tobacco cells (CDC48-TAP line). Second, a list if CDC48 partners was es…

Cdc48Protein-Protein interaction networkImmunité des plantes[SDV.SA] Life Sciences [q-bio]/Agricultural sciencesPlant immunityRéseau d'interaction protéine-ProtéineBiochimieBiochemistryCapx
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Etude du rôle de la protéine CDC48 dans l'immunité des plantes

2018

The chaperone protein CDC48 (Cell division cycle 48) is a major regulator of the quality control of proteins and is involved in various cellular processes in animals and yeast. In contrast, the role of CDC48 in plants is poorly known. In the present work, we investigated the function of CDC48 in plant immunity thanks to the cryptogein/tobacco biological model, cryptogein being produced by the oomycete phytophthora cryptogea.Three strategies were carried out. First, the dynamic of accumulation CDC48 together with intracellular events inherent to the immune response were analyzed in both wild-type and CDC48 overexpressing tobacco cells (CDC48-TAP line). Second, a list if CDC48 partners was es…

Cdc48[SDV.SA]Life Sciences [q-bio]/Agricultural sciencesProtein-Protein interaction networkImmunité des plantesPlant immunityRéseau d'interaction protéine-ProtéineBiochimieBiochemistryCapx
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Concepts to Reveal Parvovirus–Nucleus Interactions

2021

Parvoviruses are small single-stranded (ss) DNA viruses, which replicate in the nucleoplasm and affect both the structure and function of the nucleus. The nuclear stage of the parvovirus life cycle starts at the nuclear entry of incoming capsids and culminates in the successful passage of progeny capsids out of the nucleus. In this review, we will present past, current, and future microscopy and biochemical techniques and demonstrate their potential in revealing the dynamics and molecular interactions in the intranuclear processes of parvovirus infection. In particular, a number of advanced techniques will be presented for the detection of infection-induced changes, such as DNA modification…

Cell Nucleusanalysis of virus–chromatin interactionsHost Microbial InteractionsviruksetparvovirusesvirusesnucleusReviewmikroskopiaanalysis of protein–protein interactionsVirus ReplicationinfektiotMicrobiologyimaging of viral interactions and dynamicsQR1-502Parvoviridae InfectionsParvovirusMicekuvantaminentumaAnimalsHumansCapsid ProteinsproteiinitparvoviruksetViruses
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Quantitative characterization of tetraspanin 8 homointeractions in the plasma membrane

2021

The spatial distribution of proteins in cell membranes is crucial for signal transduction, cell communication and membrane trafficking. Members of the Tetraspanin family organize functional protein clusters within the plasma membrane into so-called Tetraspanin-enriched microdomains (TEMs). Direct interactions between Tetraspanins are believed to be important for this organization. However, studies thus far have utilized mainly co-immunoprecipitation methods that cannot distinguish between direct and indirect, through common partners, interactions. Here we study Tetraspanin 8 homointeractions in living cells via quantitative fluorescence microscopy. We demonstrate that Tetraspanin 8 exists i…

Cell signalingTetraspaninsLipoylationDimerTransfectionBiochemistryArticleProtein–protein interactionchemistry.chemical_compoundMembrane MicrodomainsTetraspaninFluorescence Resonance Energy TransferHumansMolecular BiologyChemistryCell BiologyDissociation constantHEK293 CellsMembraneMicroscopy FluorescenceMembrane proteinembryonic structuresBiophysicsThermodynamicsProtein MultimerizationSignal transductionSignal TransductionBiochemical Journal
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Kinetics of rat CSD-C2 binding to H3.3 RNA

2017

Cold-shock domain containing protein C2 (CSD-C2; also known as PIPPin) is an RNA-binding protein conserved in the evolution that interacts with the 3’-untranslated region (3’-UTR) of rat H1.0 and H3.3 histone messengers. Biolayer interferometry (BLI) is a technique that measures changes in an interference pattern generated from visible light, reflected from an optical layer, and a biolayer which contains molecules of interest. In this study, we used the BLI methodology in order to analyze and describe the binding properties of CSD-C2 and the mRNA encoding the rat brain histone protein H3.3. Recombinant CSD-C2 was incubated with in vitro transcribed, and biotinylated H3.3 RNA fragments bound…

Chemistry0206 medical engineeringKineticsRNA02 engineering and technology021001 nanoscience & nanotechnology020601 biomedical engineeringSettore BIO/10 - BiochimicaAutomotive EngineeringBiophysicsRNA-protein interactions CSD-C2 Histone H3.3 RNA Biolayer interferometry.Settore BIO/06 - Anatomia Comparata E Citologia0210 nano-technology
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Cholesterol–Protein Interaction: Methods and Cholesterol Reporter Molecules

2010

Cholesterol is a major constituent of the plasma membrane in eukaryotic cells. It regulates the physical state of the phospholipid bilayer and is crucially involved in the formation of membrane microdomains. Cholesterol also affects the activity of several membrane proteins, and is the precursor for steroid hormones and bile acids. Here, methods are described that are used to explore the binding and/or interaction of proteins to cholesterol. For this purpose, a variety of cholesterol probes bearing radio-, spin-, photoaffinity- or fluorescent labels are currently available. Examples of proven cholesterol binding molecules are polyene compounds, cholesterol-dependent cytolysins, enzymes acce…

Cholesterolmedicine.medical_treatmentCholesterol bindingSteroidProtein–protein interactionchemistry.chemical_compoundchemistryMembrane proteinBiochemistryMembrane fluiditymedicinelipids (amino acids peptides and proteins)Cholesterol 24-hydroxylaseLipid bilayer
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Reverse engineering a mouse embryonic stem cell-specific transcriptional network reveals a new modulator of neuronal differentiation

2012

Gene expression profiles can be used to infer previously unknown transcriptional regulatory interaction among thousands of genes, via systems biology 'reverse engineering' approaches. We 'reverse engineered' an embryonic stem (ES)-specific transcriptional network from 171 gene expression profiles, measured in ES cells, to identify master regulators of gene expression ('hubs'). We discovered that E130012A19Rik (E13), highly expressed in mouse ES cells as compared with differentiated cells, was a central 'hub' of the network. We demonstrated that E13 is a protein-coding gene implicated in regulating the commitment towards the different neuronal subtypes and glia cells. The overexpression and …

Chromosomal Proteins Non-HistoneCellular differentiationNeurogenesisNerve Tissue ProteinsBiologyCell LineMiceGene expressionProtein Interaction MappingGeneticsTranscriptional regulationmedicineAnimalsGene Regulatory NetworksTransgenesEmbryonic Stem CellsGene Expression ProfilingSystems BiologyNeurogenesisBrainComputational BiologyEmbryonic stem cellCell biologyGene expression profilingmedicine.anatomical_structurenervous systemNeuron differentiationNeurogliaTranscriptome
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Carnosine Inhibits Aβ42Aggregation by Perturbing the H-Bond Network in and around the Central Hydrophobic Cluster

2013

Aggregation of the amyloid-β peptide (Aβ) into fibrillar structures is a hallmark of Alzheimer's disease. Thus, preventing self-assembly of the Aβ peptide is an attractive therapeutic strategy. Here, we used experimental techniques and atomistic simulations to investigate the influence of carnosine, a dipeptide naturally occurring in the brain, on Aβ aggregation. Scanning force microscopy, circular dichroism and thioflavin T fluorescence experiments showed that carnosine does not modify the conformational features of Aβ42 but nonetheless inhibits amyloid growth. Molecular dynamics (MD) simulations indicated that carnosine interacts transiently with monomeric Aβ42 by salt bridges with charge…

Circular dichroismMagnetic Resonance Spectroscopy1303 BiochemistryStereochemistryStatic ElectricityCarnosinePeptideMolecular Dynamics SimulationBiochemistryproteinprotein interactionsProtein–protein interactionchemistry.chemical_compoundMolecular dynamicsnutraceutical compounds10019 Department of Biochemistry1312 Molecular BiologyMolecular Biologychemistry.chemical_classificationAmyloid beta-PeptidesDipeptideHydrogen bondOrganic ChemistryIntermolecular forceTemperatureneuroprotective agentHydrogen BondingAlzheimer's diseasePeptide Fragmentsmolecular dynamicscarnosinechemistry1313 Molecular Medicine570 Life sciences; biologyMolecular MedicineHydrophobic and Hydrophilic Interactionsprotein aggregation fibrillogenesis carnosine AFM1605 Organic ChemistryChemBioChem
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