Search results for "Periplasmic space"

showing 10 items of 29 documents

Metal Complexes of Two Specific Regions of ZnuA, a Periplasmic Zinc(II) Transporter from Escherichia coli

2020

The crystal structure of ZnZnuA from Escherichia coli reveals two metal binding sites. (i) The primary binding site, His143, is located close the His-rich loop (residues 116-138) and plays a significant role in Zn(II) acquisition. (ii) The secondary binding site involves His224. In this work, we focus on understanding the interactions of two metal ions, Zn(II) and Cu(II), with two regions of ZnuA, which are possible anchoring sites for Zn(II): Ac-115MKSIHGDDDDHDHAEKSDEDHHHGDFNMHLW145-NH2 (primary metal binding site) and Ac-223GHFTVNPEIQPGAQRLHE240-NH2 (secondary metal binding site). The histidine-rich loop (residues 116-138) has a role in the capture of zinc(II), which is then further deliv…

010405 organic chemistryStereochemistryChemistrychemistry.chemical_elementMetal Binding SitePeriplasmic spaceZinc010402 general chemistryLigand (biochemistry)01 natural sciences0104 chemical sciencesInorganic ChemistryMetalchemistry.chemical_compoundvisual_artvisual_art.visual_art_mediumImidazolePhysical and Theoretical ChemistryBinding siteHistidine
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No exception to the rule: Candidatus Portiera aleyrodidarum cell wall revisited

2014

International audience; Many insect endosymbionts described so far are gram-negative bacteria. Primary endosymbionts are obligatory bacteria usually harboured by insects inside vacuoles in specialized cells called bacteriocytes. This combination produces a typical three-membrane system with one membrane derived from the insect vacuole and the other two from the bacterial gram-negative cell envelope, composed by the cell wall (the outer membrane plus the periplasmic space) and the plasma membrane (the inner membrane). For the last 21 years, the primary endosymbiont of whiteflies 'Candidatus Portiera aleyrodidarum' was considered an exception to this rule. Previous works stated that only two …

0106 biological sciencesGram-negative bacteriacell envelopeCandidatus Carsonella ruddii[SDV]Life Sciences [q-bio]Bemisia tabaci endosymbiont01 natural sciencesMicrobiologyMicrobiologyHemipteraCell membrane03 medical and health sciencesMicroscopy Electron TransmissionCell WallGeneticsmedicineAnimalsInner membraneMolecular Biology030304 developmental biology0303 health sciencesbiologyfungiPeriplasmic spacebiochemical phenomena metabolism and nutritionbiology.organism_classificationHalomonadaceaemedicine.anatomical_structureGenes Bacterialendosymbiont membranesCandidatusbacteriaCell envelopeBacterial outer membrane010606 plant biology & botany
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Transmembrane signaling and cytoplasmic signal conversion by dimeric transmembrane helix 2 and a linker domain of the DcuS sensor kinase

2020

Transmembrane (TM) signaling is a key process of membrane-bound sensor kinases. The C4-dicarboxylate (fumarate) responsive sensor kinase DcuS of Escherichia coli is anchored by TM helices TM1 and TM2 in the membrane. Signal transmission across the membrane relies on the piston-type movement of the periplasmic part of TM2. To define the role of TM2 in TM signaling, we use oxidative Cys cross-linking to demonstrate that TM2 extends over the full distance of the membrane and forms a stable TM homodimer in both the inactive and fumarate-activated state of DcuS. An S186xxxGxxxG194 motif is required for the stability and function of the TM2 homodimer. The TM2 helix further extends on the periplas…

0301 basic medicineCytoplasmGpA glycophorin AC4DC C4-dicarboxylateCL cross-linkingpiston-typeMBP maltose-binding proteinBiochemistry03 medical and health sciencesProtein DomainsDcuSEscherichia coli(Gly)xxx(Gly) motifMolecular Biologysensor kinasefumarate030102 biochemistry & molecular biologyChemistryEscherichia coli ProteinsCell MembraneHistidine kinaseGene Expression Regulation BacterialCell BiologyPeriplasmic spacelinkerTransmembrane proteinoxidative Cys cross-linkingTransmembrane domain030104 developmental biologyMembrane proteinProtein kinase domainHelixBiophysicsProtein MultimerizationProtein Kinasestransmembrane signalingLinkerResearch ArticleTM transmembraneJournal of Biological Chemistry
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Characterization of the inner membrane protein BB0173 from Borrelia burgdorferi.

2017

Abstract Background The bacterial spirochete Borrelia burgdorferi is the causative agent of the most commonly reported arthropod-borne illness in the United States, Lyme disease. A family of proteins containing von Willebrand Factor A (VWFA) domains adjacent to a MoxR AAA+ ATPase have been found to be highly conserved in the genus Borrelia. Previously, a VWFA domain containing protein of B. burgdorferi, BB0172, was determined to be an outer membrane protein capable of binding integrin α3β1. In this study, the characterization of a new VWFA domain containing membrane protein, BB0173, is evaluated in order to define the location and topology of this multi-spanning membrane protein. In additio…

0301 basic medicineMicrobiology (medical)Models Molecular030106 microbiologylcsh:QR1-502MicrobiologiaDown-RegulationGene ExpressionBiologyEndoplasmic ReticulumMicrobiologylcsh:MicrobiologyMicrobiology03 medical and health sciencesBacterial ProteinsStress PhysiologicalBorreliaInner membraneAmino Acid SequenceBorrelia burgdorferiAerotoleranceCell MembraneProteïnes de membranaMembrane ProteinsPeriplasmic spacebiology.organism_classificationbacterial infections and mycosesTransmembrane proteinTransmembraneCell biologyOxygenTransmembrane domainMembrane proteinBorrelia burgdorferivonWillebrand factor aMutationPeriplasmBacterial outer membraneSequence AlignmentResearch ArticleMIDAS motifBMC microbiology
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Identification and structural characterization of LytU, a unique peptidoglycan endopeptidase from the lysostaphin family

2017

AbstractWe introduce LytU, a short member of the lysostaphin family of zinc-dependent pentaglycine endopeptidases. It is a potential antimicrobial agent for S. aureus infections and its gene transcription is highly upregulated upon antibiotic treatments along with other genes involved in cell wall synthesis. We found this enzyme to be responsible for the opening of the cell wall peptidoglycan layer during cell divisions in S. aureus. LytU is anchored in the plasma membrane with the active part residing in the periplasmic space. It has a unique Ile/Lys insertion at position 151 that resides in the catalytic site-neighbouring loop and is vital for the enzymatic activity but not affecting the …

0301 basic medicineentsyymitantimicrobial compoundsPROTEINchemistry.chemical_compoundCatalytic DomainCELL-WALLBINDINGMultidisciplinaryACTIVE-SITEQRESISTANT STAPHYLOCOCCUS-AUREUSRHydrogen-Ion ConcentrationAnti-Bacterial AgentsZincBiochemistryMedicineHISTIDINESProtein BindingStaphylococcus aureusScienceenzymesBiologyCleavage (embryo)metalloproteinasesArticleCofactorBACILLUS-SUBTILISCell wallStructure-Activity Relationship03 medical and health sciencesEndopeptidasesProtein Interaction Domains and MotifsAmino Acid Sequencestaphylococciantimikrobiset yhdisteetBinding SitesLysostaphinCell MembraneActive siteIsothermal titration calorimetryPeriplasmic spaceVANCOMYCINstafylokokitmetalloproteinaasitMODEL030104 developmental biologyRESOLUTIONchemistryMutationProteolysisLysostaphinbiology.protein1182 Biochemistry cell and molecular biologyPeptidoglycanScientific Reports
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C4-dicarboxylate carriers and sensors in bacteria

2002

AbstractBacteria contain secondary carriers for the uptake, exchange or efflux of C4-dicarboxylates. In aerobic bacteria, dicarboxylate transport (Dct)A carriers catalyze uptake of C4-dicarboxylates in a H+- or Na+-C4-dicarboxylate symport. Carriers of the dicarboxylate uptake (Dcu)AB family are used for electroneutral fumarate:succinate antiport which is required in anaerobic fumarate respiration. The DcuC carriers apparently function in succinate efflux during fermentation. The tripartite ATP-independent periplasmic (TRAP) transporter carriers are secondary uptake carriers requiring a periplasmic solute binding protein. For heterologous exchange of C4-dicarboxylates with other carboxylic …

Aerobic bacteriaAntiporterSuccinic AcidBiophysicsOrganic Anion TransportersReceptors Cell Surfacemedicine.disease_causeBiochemistryFumarate (succinate) sensorTwo-component systemBacterial ProteinsFumaratesEscherichia colimedicineAmino Acid SequenceEscherichia coliDicarboxylate uptake SHistidine protein kinasePhylogenyHistidineDicarboxylic Acid TransportersDicarboxylate transport BbiologyEscherichia coli ProteinsBiological TransportPeriplasmic spaceCell Biologybiology.organism_classificationTwo-component regulatory systemBacteria AerobicModels ChemicalBiochemistryAntiportFumarate/succinate transportEffluxDicarboxylate uptake carrierProtein KinasesDicarboxylate transport A carrierBacteriaSignal TransductionBiochimica et Biophysica Acta (BBA) - Bioenergetics
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The Fumarate/Succinate Antiporter DcuB of Escherichia coli Is a Bifunctional Protein with Sites for Regulation of DcuS-dependent Gene Expression

2008

DcuB of Escherichia coli catalyzes C4-dicarboxylate/succinate antiport during growth by fumarate respiration. The expression of genes of fumarate respiration, including the genes for DcuB (dcuB) and fumarate reductase (frdABCD) is transcriptionally activated by C4-dicarboxylates via the DcuS-DcuR two-component system, comprising the sensor kinase DcuS, which contains a periplasmic sensing domain for C4-dicarboxylates. Deletion or inactivation of dcuB caused constitutive expression of DcuS-regulated genes in the absence of C4-dicarboxylates. The effect was specific for DcuB and not observed after inactivation of the homologous DcuA or the more distantly related DcuC transporter. Random and s…

AntiporterMutantlac operonBiologymedicine.disease_causePeptide MappingBiochemistryAntiportersFumaratesEscherichia colimedicineMolecular BiologyEscherichia coliDerepressionDicarboxylic Acid TransportersIon TransportEscherichia coli ProteinsMutagenesisSuccinatesGene Expression Regulation BacterialCell BiologyPeriplasmic spaceFumarate reductaseDNA-Binding ProteinsSuccinate DehydrogenaseAmino Acid SubstitutionBiochemistryGene Knockdown TechniquesMutagenesis Site-DirectedProtein KinasesTranscription FactorsJournal of Biological Chemistry
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Biogenesis of the Yeast Cell Wall

1984

Yeast cells are covered by a rigid structure that protects the protoplast from osmotic changes and gives the characteristic shape to the cell. Studies on the composition of the wall of several species of yeast and other fungi have shown that they contain mainly polysaccharides with minor amounts of other materials. A completely rigid and continuous wall, nevertheless, would render growth impossible because cell extension would be restricted, so that an equilibrium must exist between softening (partial degradation) of wall and incorporation of new material into free ends of the polymers. From these considerations, it seems clear that the walls must be structurally and enzymatically a complex…

Cell wallbiologyChemistryOrganelleSaccharomyces cerevisiaeBiophysicsPeriplasmic spaceOrganelle biogenesisProtoplastbiology.organism_classificationYeastBiogenesis
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Subcellular localization of pentachlorophenol 4-monooxygenase in Sphingobium chlorophenolicum ATCC 39723.

2002

Abstract We have studied the subcellular localization of pentachlorophenol 4-monooxygenase (PCP4MO) in Sphingobium chlorophenolicum ATCC 39723 during induction by pentachlorophenol (PCP). Using a monoclonal antibody CL6 specific to the native and recombinant PCP4MO, the enzyme was primarily found soluble as determined by immunoblot and ELISA analyses of cellular fractions. However, the enzyme was observed both in the soluble and membrane-bound forms during induction for 2–4 h, suggesting its translocation out from the cytoplasm. Electron microscopy confirmed that PCP4MO was predominantly present in the cytoplasm at 1 h, whereas at 4 h significant amount was detected also in the membrane and…

CytoplasmBiophysicsBiologyProtein Sorting SignalsBiochemistryMixed Function Oxygenaseschemistry.chemical_compoundBiosynthesisAntibody SpecificityInner membraneMolecular BiologySphingobium chlorophenolicumAlphaproteobacteriachemistry.chemical_classificationAntibodies MonoclonalCell BiologyPeriplasmic spacebiology.organism_classificationSubcellular localizationMolecular biologyImmunohistochemistryPentachlorophenolKineticsEnzymechemistryBiochemistryCytoplasmPeriplasmBiochemical and biophysical research communications
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Ferric-reductase activities in Vibrio vulnificus biotypes 1 and 2.

1999

In this paper, the ferric-reductase activities of Vibrio vulnificus were investigated. This species comprises two biotypes pathogenic for humans and eels that are able to express different mechanisms for iron acquisition. All strains of both biotypes used in this study were able to reduce ferric citrate, irrespective of the iron levels in the growth medium. Some variation in the degree of reduction was observed among the strains, with the highest values corresponding to one acapsulated environmental strain of biotype 1. When cell fractions were tested, only those from periplasm and cytoplasm showed reductase activity whereas no activity was detected in membranes. Low temperatures inhibited …

CytoplasmTime FactorsFMN ReductaseIronVibrio vulnificusReductaseMicrobiologyFerric CompoundsMicrobiologychemistry.chemical_compoundBacterial ProteinsVibrionaceaeGeneticsAnimalsHumansNADH NADPH OxidoreductasesMolecular BiologyVibrioGrowth mediumEelsbiologyStrain (chemistry)Cell MembranePeriplasmic spacebiology.organism_classificationCulture MediachemistryBiochemistryCytoplasmPeriplasmbacteriaElectrophoresis Polyacrylamide GelBacteriaFEMS microbiology letters
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