Search results for "Transmembrane protein"

showing 10 items of 186 documents

A Structural Model of the Human α7 Nicotinic Receptor in an Open Conformation

2015

International audience; Nicotinic acetylcholine receptors (nAchRs) are ligand-gated ion channels that regulate chemical transmission at the neuromuscular junction. Structural information is available at low resolution from open and closed forms of an eukaryotic receptor, and at high resolution from other members of the same structural family, two prokaryotic orthologs and an eukary- otic GluCl channel. Structures of human channels however are still lacking. Homology modeling and Molecular Dynamics simulations are valuable tools to predict structures of unknown proteins, however, for the case of human nAchRs, they have been unsuccessful in providing a stable open structure so far. This is du…

Models MolecularHydrogen bondingalpha7 Nicotinic Acetylcholine ReceptorProtein ConformationMolecular Sequence DataMESH: Sequence Alignmentligand gated ion channles molecular dynamics simulation epibatidine waterlcsh:MedicineSequence alignmentMESH: Amino Acid SequenceMolecular Dynamics SimulationMESH: Models Molecular*Molecular dynamicsProtein structureSequence alignmentCationsHumansMESH: Molecular Dynamics SimulationHomology modelingAmino Acid SequenceNicotinic Receptorlcsh:ScienceBiochemical simulationsIon channelAcetylcholine receptorIonsMESH: Protein Conformation*MultidisciplinaryMESH: HumansMESH: Molecular Sequence DataChemistryMESH: Protein Multimerizationlcsh:RMESH: alpha7 Nicotinic Acetylcholine Receptor/chemistry*[SDV.BIBS]Life Sciences [q-bio]/Quantitative Methods [q-bio.QM]Transmembrane proteinSimulation and modelingNicotinic agonistBiochemistryBiophysicsProtein structurelcsh:QProtein MultimerizationResearch ArticleStructural Model
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Transmembrane helix–helix interactions are modulated by the sequence context and by lipid bilayer properties

2012

Abstract Folding of polytopic transmembrane proteins involves interactions of individual transmembrane helices, and multiple TM helix–helix interactions need to be controlled and aligned to result in the final TM protein structure. While defined interaction motifs, such as the GxxxG motif, might be critically involved in transmembrane helix–helix interactions, the sequence context as well as lipid bilayer properties significantly modulate the strength of a sequence specific transmembrane helix–helix interaction. Structures of 11 transmembrane helix dimers have been described today, and the influence of the sequence context as well as of the detergent and lipid environment on a sequence spec…

Models MolecularLateral pressureLipid BilayersMolecular Sequence DataBiophysicsModels BiologicalBiochemistryProtein Structure SecondaryProtein structureAmino Acid SequenceLipid bilayerHydrogen bondGxxxGChemistryHydrogen bondMembrane ProteinsHydrophobic thicknessCell BiologyTransmembrane proteinTransmembrane domainCrystallographyMembraneMembrane proteinMembrane proteinBiophysicsProtein foldingHelix dimerProtein BindingBiochimica et Biophysica Acta (BBA) - Biomembranes
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Pore formation by Vibrio cholerae cytolysin follows the same archetypical mode as beta-barrel toxins from gram-positive organisms.

2009

Vibrio cholerae cytolysin (VCC) forms SDS-stable heptameric beta-barrel transmembrane pores in mammalian cell membranes. In contrast to structurally related pore formers of gram-positive organisms, no oligomeric prepore stage of assembly has been detected to date. In the present study, disulfide bonds were engineered to tie the pore-forming amino acid sequence to adjacent domains. In their nonreduced form, mutants were able to bind to rabbit erythrocytes and to native erythrocyte membranes suspended in PBS solution and form SDS-labile oligomers. These remained nonfunctional and represented the long-sought VCC prepores. Disulfide bond reduction in these oligomers released the pore-forming se…

Models MolecularPore Forming Cytotoxic ProteinsMutantBiologyIn Vitro Techniquesmedicine.disease_causeGram-Positive BacteriaBiochemistryModels Biologicalchemistry.chemical_compoundProtein structureGeneticsmedicineAnimalsCysteineProtein Structure QuaternaryMolecular BiologyPeptide sequenceVibrio choleraeCytotoxinsErythrocyte MembraneTransmembrane proteinRecombinant ProteinsMonomerMembraneBiochemistrychemistryVibrio choleraeMutagenesis Site-DirectedCytolysinRabbitsBiotechnologyFASEB journal : official publication of the Federation of American Societies for Experimental Biology
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A Ser residue influences the structure and stability of a Pro-kinked transmembrane helix dimer

2012

AbstractWhen localized adjacent to a Pro-kink, Thr and Ser residues can form hydrogen bonds between their polar hydroxyl group and a backbone carbonyl oxygen and thereby modulate the actual bending angle of a distorted transmembrane α-helix. We have used the homo-dimeric transmembrane cytochrome b559′ to analyze the potential role of a highly conserved Ser residue for assembly and stabilization of transmembrane proteins. Mutation of the conserved Ser residue to Ala resulted in altered heme binding properties and in increased stability of the holo-protein, most likely by tolerating subtle structural rearrangements upon heme binding. The results suggest a crucial impact of an intrahelical Ser…

Models MolecularProlineHeme bindingStereochemistryDimerMolecular ConformationBiophysicsCofactor bindingHemeBiochemistryProtein Structure Secondarychemistry.chemical_compoundProtein structureProtein stabilitySerineProtein foldingCofactor bindingHydrogen bondCell MembranePhotosystem II Protein ComplexHydrogen BondingCell BiologyCytochrome b GroupTransmembrane proteinProtein Structure TertiaryOxygenTransmembrane domainHelix interactionchemistrySpectrophotometryMembrane proteinMutationTransmembrane helixProtein foldingDimerizationProtein BindingBiochimica et Biophysica Acta (BBA) - Biomembranes
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Membrane insertion and topology of the TRanslocating chain-Associating Membrane protein (TRAM)

2011

The translocating chain-associating membrane protein (TRAM) is a glycoprotein involved in the translocation of secreted proteins into the endoplasmic reticulum (ER) lumen and in the insertion of integral membrane proteins into the lipid bilayer. As a major step toward elucidating the structure of the functional ER translocation/insertion machinery, we have characterized the membrane integration mechanism and the transmembrane topology of TRAM using two approaches: photocross-linking and truncated C-terminal reporter tag fusions. Our data indicate that TRAM is recognized by the signal recognition particle and translocon components, and suggest a membrane topology with eight transmembrane seg…

Models MolecularProtein ConformationEndoplasmic ReticulumModels BiologicalProtein Structure SecondaryMiceMembranes (Biologia)Structural BiologyAnimalsMolecular BiologyIntegral membrane proteinSignal recognition particleMembrane GlycoproteinsbiologyMembrane transport proteinPeripheral membrane proteinProteïnes de membranaIntracellular MembranesTransloconTransmembrane proteinProtein Structure TertiaryMembrane proteinBiochemistryMembrane topologybiology.proteinBiophysics
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Structural basis for the sheddase function of human meprin β metalloproteinase at the plasma membrane.

2012

Ectodomain shedding at the cell surface is a major mechanism to regulate the extracellular and circulatory concentration or the activities of signaling proteins at the plasma membrane. Human meprin β is a 145-kDa disulfide-linked homodimeric multidomain type-I membrane metallopeptidase that sheds membrane-bound cytokines and growth factors, thereby contributing to inflammatory diseases, angiogenesis, and tumor progression. In addition, it cleaves amyloid precursor protein (APP) at the β-secretase site, giving rise to amyloidogenic peptides. We have solved the X-ray crystal structure of a major fragment of the meprin β ectoprotein, the first of a multidomain oligomeric transmembrane sheddase…

Models MolecularProtein ConformationPlasma protein bindingCell membrane03 medical and health sciencesProtein structureZymogenAmyloid precursor proteinmedicineHumans030304 developmental biology0303 health sciencesMultidisciplinaryCrystallographybiologyChemistry030302 biochemistry & molecular biologyCell MembraneMetalloendopeptidasesSheddaseBiological SciencesTransmembrane protein3. Good healthCell biologyProtein Structure Tertiarymedicine.anatomical_structureBiochemistryEctodomainbiology.proteinDimerizationProtein BindingProceedings of the National Academy of Sciences of the United States of America
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Influence of proline residues in transmembrane helix packing

2003

Integral membrane proteins often contain proline residues in their alpha-helical transmembrane (TM) fragments, which may strongly influence their folding and association. Pro-scanning mutagenesis of the helical domain of glycophorin A (GpA) showed that replacement of the residues located at the center abrogates helix packing while substitution of the residues forming the ending helical turns allows dimer formation. Synthetic TM peptides revealed that a point mutation of one of the residues of the dimerization motif (L75P) located at the N-terminal helical turn of the GpA TM fragment, adopts a secondary structure and oligomeric state similar to the wild-type sequence in detergents. In additi…

Models MolecularProtein FoldingGlycosylationProlineStereochemistryProtein ConformationCollagen helixRecombinant Fusion ProteinsMolecular Sequence DataEndoplasmic ReticulumProtein Structure SecondaryComputers MolecularProtein structureStructural BiologyAmino Acid SequenceGlycophorinsMolecular BiologyIntegral membrane proteinProtein secondary structureChemistryCell MembraneProteïnes de membranaWaterLipidsTransmembrane proteinPeptide FragmentsCrystallographyTransmembrane domainMembrane proteinHelixMutagenesis Site-DirectedDimerization
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The NMR structure of the sensory domain of the membranous two-component fumarate sensor (histidine protein kinase) DcuS of Escherichia coli

2003

The structure of the water-soluble, periplasmic domain of the fumarate sensor DcuS (DcuS-pd) has been determined by NMR spectroscopy in solution. DcuS is a prototype for a sensory histidine kinase with transmembrane signal transfer. DcuS belongs to the CitA family of sensors that are specific for sensing di- and tricarboxylates. The periplasmic domain is folded autonomously and shows helices at the N and the C terminus, suggesting direct linking or connection to helices in the two transmembrane regions. The structure constitutes a novel fold. The nearest structural neighbor is the Per-Arnt-Sim domain of the photoactive yellow protein that binds small molecules covalently. Residues Arg107, H…

Models MolecularProtein FoldingMagnetic Resonance SpectroscopyProtein ConformationStereochemistryMolecular Sequence DataReceptors Cell SurfaceBiologyArginineBiochemistryProtein Structure SecondaryBacterial ProteinsFumaratesEscherichia coliTransferaseHistidineAmino Acid SequenceProtein kinase AMolecular BiologyHistidineBinding SitesEscherichia coli ProteinsC-terminusCell MembraneHistidine kinaseCell BiologyNuclear magnetic resonance spectroscopyPeriplasmic spaceChemoreceptor CellsTransmembrane proteinProtein Structure TertiaryCrystallographyMutationPeriplasmProtein KinasesSignal Transduction
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Folding and stability of the aquaglyceroporin GlpF: Implications for human aqua(glycero)porin diseases

2015

AbstractAquaporins are highly selective polytopic transmembrane channel proteins that facilitate the permeation of water across cellular membranes in a large diversity of organisms. Defects in aquaporin function are associated with common diseases, such as nephrogenic diabetes insipidus, congenital cataract and certain types of cancer. In general, aquaporins have a highly conserved structure; from prokaryotes to humans. The conserved structure, together with structural dynamics and the structural framework for substrate selectivity is discussed. The folding pathway of aquaporins has been a topic of several studies in recent years. These studies revealed that a conserved protein structure ca…

Models MolecularProtein activityAmino Acid MotifsMolecular Sequence DataBiophysicsGene ExpressionPorinsAquaporinDiabetes Insipidus NephrogenicEndoplasmic-reticulum-associated protein degradationAquaporinsBiochemistryCataractProtein Structure SecondaryProtein structureNeoplasmsEscherichia coliGlpFHumansProtein foldingConserved SequenceProtein StabilityChemistryurogenital systemEscherichia coli ProteinsAquaporinWaterCell BiologyTransmembrane proteinCell biologyFolding (chemistry)Membrane proteinBiochemistryMembrane proteinPorinProtein foldingBiochimica et Biophysica Acta (BBA) - Biomembranes
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Canonical azimuthal rotations and flanking residues constrain the orientation of transmembrane helices.

2013

AbstractIn biological membranes the alignment of embedded proteins provides crucial structural information. The transmembrane (TM) parts have well-defined secondary structures, in most cases α-helices and their orientation is given by a tilt angle and an azimuthal rotation angle around the main axis. The tilt angle is readily visualized and has been found to be functionally relevant. However, there exist no general concepts on the corresponding azimuthal rotation. Here, we show that TM helices prefer discrete rotation angles. They arise from a combination of intrinsic properties of the helix geometry plus the influence of the position and type of flanking residues at both ends of the hydrop…

Models MolecularQuantitative Biology::BiomoleculesPotassium ChannelsRotationChemistryCell MembraneMolecular Sequence DataBiophysicsMembraneMembrane ProteinsBiological membraneRotationTransmembrane proteinPeptide FragmentsProtein Structure SecondaryCore (optical fiber)CrystallographyTransmembrane domainChemical physicsOrientation (geometry)HelixPolarAmino Acid SequenceProtein MultimerizationProtein Structure QuaternaryBiophysical journal
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