Search results for " alpha-Helical"

showing 10 items of 18 documents

rbFOX1/MBNL1 competition for CCUG RNA repeats binding contributes to myotonic dystrophy type 1/type 2 differences

2018

Myotonic dystrophy type 1 and type 2 (DM1, DM2) are caused by expansions of CTG and CCTG repeats, respectively. RNAs containing expanded CUG or CCUG repeats interfere with the metabolism of other RNAs through titration of the Muscleblind-like (MBNL) RNA binding proteins. DM2 follows a more favorable clinical course than DM1, suggesting that specific modifiers may modulate DM severity. Here, we report that the rbFOX1 RNA binding protein binds to expanded CCUG RNA repeats, but not to expanded CUG RNA repeats. Interestingly, rbFOX1 competes with MBNL1 for binding to CCUG expanded repeats and overexpression of rbFOX1 partly releases MBNL1 from sequestration within CCUG RNA foci in DM2 muscle ce…

0301 basic medicineModels MolecularProtein Conformation alpha-Helical[SDV]Life Sciences [q-bio]General Physics and AstronomyGene ExpressionRNA-binding proteinCrystallography X-Raychemistry.chemical_compoundMOLECULAR-BASISGene expressionMBNL1Myotonic DystrophyComputingMilieux_MISCELLANEOUSMultidisciplinaryCHLORIDE CHANNELQRNA-Binding ProteinsRecombinant Proteins3. Good healthCell biologyCONGENITAL HEART-DISEASEDrosophila melanogasterThermodynamicsSKELETAL-MUSCLERNA Splicing FactorsCUG REPEATSProtein BindingRNA Splicing Factorsmusculoskeletal diseasesSTEADY-STATEcongenital hereditary and neonatal diseases and abnormalitiesScienceRBFOX1BiologyMyotonic dystrophyBinding CompetitiveGeneral Biochemistry Genetics and Molecular BiologyArticle03 medical and health sciencesmedicineEscherichia coliAnimalsHumansProtein Interaction Domains and MotifsBinding siteNucleotide MotifsMuscle SkeletalSPLICING REGULATOR RBFOX2MUSCLEBLIND PROTEINSBinding SitesPRE-MESSENGER-RNARNAGeneral Chemistrymedicine.diseaseDisease Models AnimalKinetics030104 developmental biologychemistryTRIPLET REPEATRNAProtein Conformation beta-Strand3111 Biomedicine
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Lunasin is a redox sensitive intrinsically disordered peptide with two transiently populated α-helical regions.

2016

Lunasin is a 43 amino acid peptide with anti-cancer, antioxidant, anti-inflammatory and cholesterol-lowering properties. Although the mechanism of action of lunasin has been characterized to some extent, its exact three-dimensional structure as well as the function of the N-terminal sequence remains unknown. We established a novel method for the production of recombinant lunasin that allows efficient isotope labeling for NMR studies. Initial studies showed that lunasin can exist in a reduced or oxidized state with an intramolecular disulfide bond depending on solution conditions. The structure of both forms of the peptide at pH 3.5 and 6.5 was characterized by CD spectroscopy and multidimen…

0301 basic medicineProtein Conformation alpha-HelicalCircular dichroismPhysiologyBeta sheetPeptideIntrinsically disordered proteinsBiochemistryLunasinAntioxidantsHistones03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineEndocrinologyNeoplasmsAnticarcinogenic AgentsHumansAmino Acid SequenceDisulfidesProtein secondary structureNuclear Magnetic Resonance BiomolecularPlant Proteinschemistry.chemical_classificationChemistryAcetylationNuclear magnetic resonance spectroscopyIntrinsically Disordered Proteins030104 developmental biologyBiochemistry030220 oncology & carcinogenesisBiophysicsSoybean ProteinsPeptidesOxidation-ReductionFunction (biology)Peptides
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In vivo selection of heterotypically interacting transmembrane helices: Complementary helix surfaces, rather than conserved interaction motifs, drive…

2017

Single pass transmembrane proteins make up almost half of the whole transmembrane proteome. Contacts between such bitopic transmembrane proteins are common, and oligomerization of their single transmembrane helix is involved in triggering and regulation of signal transduction across cell membranes. In several recent analyses the distribution of amino acids at helix-helix contact sides has been analyzed, and e.g. a preference of amino acids with small side chains has been identified. Here we select amino acids, amino acid pairings and amino acid motifs, which mediate strong interactions of single-span transmembrane α-helices. Our analysis illustrates an architecture of TM helix dimers that i…

0301 basic medicineProtein Conformation alpha-HelicalDimerAmino Acid MotifsBiophysicsBiologyBiochemistryBordetella pertussisProtein Structure Secondary03 medical and health scienceschemistry.chemical_compoundAmino Acid SequenceAmino Acidschemistry.chemical_classificationCell MembraneMembrane ProteinsCell BiologyTransmembrane proteinAmino acidCrystallographyTransmembrane domain030104 developmental biologyMembrane proteinchemistryProteomeHelixBiophysicsProtein foldingDimerizationBiochimica et biophysica acta. Biomembranes
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Analysis of Vibrational Circular Dichroism Spectra of Peptides

2020

Vibrational circular dichroism (VCD) is one of the major spectroscopic tools to study peptides. Nevertheless, a full understanding of what determines the signs and intensities of VCD bands of these compounds in the amide I and amide II spectral regions is still far from complete. In the present work, we study the origin of these VCD signals using the general coupled oscillator (GCO) analysis, a novel approach that has recently been developed. We apply this approach to the ForValNHMe model peptide in both α-helix and β-sheet configurations. We show that the intense VCD signals observed in the amide I and amide II spectral regions essentially have the same underlying mechanism, namely, the th…

FELIX Condensed Matter PhysicsModels MolecularProtein Conformation alpha-HelicalMaterials science010304 chemical physicsCircular DichroismHydrogen Bonding010402 general chemistry01 natural sciencesMolecular physicsSpectral lineArticle0104 chemical sciencesSurfaces Coatings and Films0103 physical sciencesVibrational circular dichroismSmall peptideMaterials ChemistryProtein Conformation beta-StrandPhysical and Theoretical ChemistryPeptidesJournal of Physical Chemistry B
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Revisiting the cysteine-rich proteins encoded in the 3’-proximal open reading frame of the positive-sense single-stranded RNA of some monopartite fil…

2020

A reexamination of proteins with conserved cysteines and basic amino acids encoded by the 3 '-proximal gene of the positive-sense single-stranded RNA of some monopartite filamentous plant viruses has been carried out. The cysteines are involved in a putative Zn-finger domain, which, together with the basic amino acids, form part of the nuclear or nucleolar localization signals. An in-depth study of one of these proteins, p15 from grapevine B virus (GVB), has shown: (i) a three-dimensional structure with four alpha-helices predicted by two independent in silico approaches, (ii) the nucleolus as the main accumulation site by applying confocal laser microscopy to a fusion between p15 and the g…

Models MolecularProtein Conformation alpha-HelicalGrapevine virus BAgroinfiltrationEvolutionProtein ConformationProtein DomainProtein domainNicotiana benthamianaGene ExpressionBiologyEvolution MolecularOpen Reading Frames03 medical and health sciencesViral ProteinsProtein DomainsPlant CellsVirologyTobaccoGene expressionAmino Acid SequenceCloning MolecularGenePhylogeny030304 developmental biologyGenetics0303 health sciencesSequence Homology Amino Acid030306 microbiologyRNASettore AGR/12 - Patologia VegetaleGeneral Medicinebiology.organism_classificationVirologyRecombinant ProteinsPlant LeavesRNA silencingRNA ViralFlexiviridaeSequence AlignmentModel
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Synthesis and Inhibitory Studies of Phosphonic Acid Analogues of Homophenylalanine and Phenylalanine towards Alanyl Aminopeptidases.

2020

A library of novel phosphonic acid analogues of homophenylalanine and phenylalanine, containing fluorine and bromine atoms in the phenyl ring, have been synthesized. Their inhibitory properties against two important alanine aminopeptidases, of human (hAPN, CD13) and porcine (pAPN) origin, were evaluated. Enzymatic studies and comparison with literature data indicated the higher inhibitory potential of the homophenylalanine over phenylalanine derivatives towards both enzymes. Their inhibition constants were in the submicromolar range for hAPN and the micromolar range for pAPN, with 1-amino-3-(3-fluorophenyl) propylphosphonic acid (compound 15c) being one of the best low-molecular inhibitors …

Models MolecularProtein Conformation alpha-HelicalMolecular modelStereochemistryPhosphorous AcidsSwinePhenylalaninelcsh:QR1-502PhenylalanineCD13 Antigenscomputer-aided simulationsInhibitory postsynaptic potential01 natural sciencesBiochemistrylcsh:MicrobiologyArticlePhenylalanine derivativesSubstrate SpecificitySmall Molecule Libraries03 medical and health sciencesStructure-Activity RelationshipAnimalsHumansProtein Interaction Domains and MotifsEnzyme Inhibitorsphosphonic acid inhibitorsMolecular Biology030304 developmental biologyAlaninechemistry.chemical_classification0303 health sciencesInhibitory potentialBinding Sites010405 organic chemistryChemistryAminobutyratesFluorineBromine0104 chemical sciencesIsoenzymesKineticsEnzymehuman and porcine alanine aminopeptidasefluorine and bromine substitutionThermodynamicsProtein Conformation beta-StrandProtein BindingBiomolecules
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The Protein Structure Context of PolyQ Regions.

2016

Proteins containing glutamine repeats (polyQ) are known to be structurally unstable. Abnormal expansion of polyQ in some proteins exceeding a certain threshold leads to neurodegenerative disease, a symptom of which are protein aggregates. This has led to extensive research of the structure of polyQ stretches. However, the accumulation of contradictory results suggests that protein context might be of importance. Here we aimed to evaluate the structural context of polyQ regions in proteins by analysing the secondary structure of polyQ proteins and their homologs. The results revealed that the secondary structure in polyQ vicinity is predominantly random coil or helix. Importantly, the region…

Models MolecularProtein Conformation alpha-HelicalProtein Structure ComparisonProtein StructureSaccharomyces cerevisiae ProteinsGlutaminelcsh:MedicineNerve Tissue ProteinsSaccharomyces cerevisiaePlant ScienceResearch and Analysis MethodsBiochemistryPlant Roots570 Life sciencesDatabase and Informatics MethodsProtein Structure DatabasesMacromolecular Structure AnalysisHumansProtein Interaction Domains and MotifsAmino AcidsDatabases ProteinProtein Interactionslcsh:ScienceMolecular BiologyMediator ComplexOrganic CompoundsPlant AnatomyAcidic Amino AcidsOrganic Chemistrylcsh:RChemical CompoundsBiology and Life SciencesProteinsRoot StructureChemistryBiological DatabasesProtein-Protein InteractionsPhysical Scienceslcsh:QStructural ProteinsProtein Structure DeterminationPeptidesResearch Article570 BiowissenschaftenPLoS ONE
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Solution NMR structure of Borrelia burgdorferi outer surface lipoprotein BBP28, a member of the mlp protein family.

2020

Lyme disease is the most widespread vector‐transmitted disease in North America and Europe, caused by infection with Borrelia burgdorferi sensu lato complex spirochetes. We report the solution NMR structure of the B. burgdorferi outer surface lipoprotein BBP28, a member of the multicopy lipoprotein (mlp) family. The structure comprises a tether peptide, five α‐helices and an extended C‐terminal loop. The fold is similar to that of Borrelia tunicate outer surface protein BTA121, which is known to bind lipids. These results contribute to the understanding of Lyme disease pathogenesis by revealing the molecular structure of a protein from the widely found mlp family. This article is protected …

Models MolecularProtein Conformation alpha-HelicalProtein familyLipoproteinsGenetic VectorsGene ExpressionPeptideBiochemistryMicrobiologyPathogenesis03 medical and health sciencesLyme diseaseStructural BiologyBorreliamedicineEscherichia coliHumansProtein Interaction Domains and MotifsAmino Acid SequenceBorrelia burgdorferiCloning MolecularMolecular BiologyNuclear Magnetic Resonance Biomolecular030304 developmental biologychemistry.chemical_classification0303 health sciencesLyme DiseasebiologySequence Homology Amino AcidBorrelia030302 biochemistry & molecular biologybacterial infections and mycosesbiology.organism_classificationmedicine.diseaseRecombinant ProteinsProtein Structure TertiaryOuter surface proteinchemistryBorrelia burgdorferiProtein Conformation beta-StrandSequence AlignmentLipoproteinBacterial Outer Membrane ProteinsProteinsREFERENCES
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Mass Spectrometry and Structural Biology Techniques in the Studies on the Coronavirus-Receptor Interaction

2020

Mass spectrometry and some other biophysical methods, have made substantial contributions to the studies on severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) and human proteins interactions. The most interesting feature of SARS-CoV-2 seems to be the structure of its spike (S) protein and its interaction with the human cell receptor. Mass spectrometry of spike S protein revealed how the glycoforms are distributed across the S protein surface. X-ray crystallography and cryo-electron microscopy made huge impact on the studies on the S protein and ACE2 receptor protein interaction, by elucidating the three-dimensional structures of these proteins and their conformational changes. The…

Models MolecularProtein Conformation alpha-HelicalvirusesGene ExpressionPharmaceutical ScienceReviewPlasma protein bindingSevere Acute Respiratory Syndromemedicine.disease_causeAnalytical Chemistry0302 clinical medicineDrug Discovery030212 general & internal medicineReceptorPeptide sequenceCoronavirus0303 health sciencesChemistrySevere acute respiratory syndrome-related coronavirusBiochemistryChemistry (miscellaneous)Host-Pathogen InteractionsSpike Glycoprotein CoronavirusReceptors VirusMolecular MedicineAngiotensin-Converting Enzyme 2Coronavirus InfectionsProtein BindingglycosylationSARS coronavirusPneumonia Viralstructural techniquesSequence alignmentPeptidyl-Dipeptidase AMass spectrometrylcsh:QD241-441Betacoronavirus03 medical and health scienceslcsh:Organic chemistryspike protein-ACE2 interactionmedicineHumansProtein Interaction Domains and MotifsAmino Acid SequencePhysical and Theoretical ChemistryBinding sitePandemics030304 developmental biologyBinding SitesSARS-CoV-2Organic ChemistryCOVID-19MSStructural biologyProtein Conformation beta-StrandSequence AlignmentMolecules
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The Role of Low Complexity Regions in Protein Interaction Modes: An Illustration in Huntingtin

2021

Low complexity regions (LCRs) are very frequent in protein sequences, generally having a lower propensity to form structured domains and tending to be much less evolutionarily conserved than globular domains. Their higher abundance in eukaryotes and in species with more cellular types agrees with a growing number of reports on their function in protein interactions regulated by post-translational modifications. LCRs facilitate the increase of regulatory and network complexity required with the emergence of organisms with more complex tissue distribution and development. Although the low conservation and structural flexibility of LCRs complicate their study, evolutionary studies of proteins …

Protein Conformation alpha-Helical0301 basic medicineNetwork complexityHuntingtinintrinsically disordered regionsAmino Acid MotifsComputational biologyBiologyprotein interactionsArticlecompositionally biased regionsCatalysisProtein–protein interactionlcsh:ChemistryEvolution MolecularInorganic ChemistryLow complexity03 medical and health sciencesProtein DomainsProtein Interaction MappingAnimalsHumansp300-CBP Transcription FactorsAmino Acid SequenceProtein Interaction MapsHuntingtinTissue distributionPhysical and Theoretical Chemistrylcsh:QH301-705.5Molecular BiologySpectroscopyHuntingtin Protein030102 biochemistry & molecular biologyOrganic ChemistryNuclear Proteinsp120 GTPase Activating ProteinGeneral MedicineMultiple modesSynapsinslow complexity regionsComputer Science ApplicationshomorepeatsMicroscopy Electron030104 developmental biologylcsh:Biology (General)lcsh:QD1-999Sequence AlignmentFunction (biology)Protein BindingInternational Journal of Molecular Sciences
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