Search results for "Catalytic Domain"

showing 10 items of 80 documents

Promiscuity in alkaline phosphatase superfamily. Unraveling evolution through molecular simulations.

2011

We here present a theoretical study of the alkaline hydrolysis of a phosphodiester (methyl p-nitrophenyl phosphate or MpNPP) in the active site of Escherichia coli alkaline phosphatase (AP), a monoesterase that also presents promiscuous activity as a diesterase. The analysis of our simulations, carried out by means of molecular dynamics (MD) simulations with hybrid quantum mechanics/molecular mechanics (QM/MM) potentials, shows that the reaction takes place through a D(N)A(N) or dissociative mechanism, the same mechanism employed by AP in the hydrolysis of monoesters. The promiscuous activity observed in this superfamily can be then explained on the basis of a conserved reaction mechanism. …

Models MolecularReaction mechanismStereochemistrydnaNAlkaline hydrolysis (body disposal)AlkaliesMolecular Dynamics SimulationBiochemistryMolecular mechanicsCatalysisMolecular dynamicsColloid and Surface ChemistryCatalytic DomainphosphodiesterEscherichia colibiologyChemistryHydrolysisActive siteGeneral ChemistryAlkaline PhosphataseEnzymesEnzyme ActivationPhosphodiester bondbiology.proteinAlkaline phosphataseQuantum Theoryalkaline phosphataseJournal of the American Chemical Society
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Topology and accessibility of the transmembrane helices and the sensory site in the bifunctional transporter DcuB of Escherichia coli.

2011

C(4)-Dicarboxylate uptake transporter B (DcuB) of Escherichia coli is a bifunctional transporter that catalyzes fumarate/succinate antiport and serves as a cosensor of the sensor kinase DcuS. Sites and domains of DcuB were analyzed for their topology relative to the cytoplasmic or periplasmic side of the membrane and their accessibility to the water space. For the topology studies, DcuB was fused at 33 sites to the reporter enzymes PhoA and LacZ that are only active when located in the periplasm or the cytoplasm, respectively. The ratios of the PhoA and LacZ activities suggested the presence of 10 or 11 hydrophilic loops, and 11 or 12 α-helical transmembrane domains (TMDs). The central part…

Models MolecularRecombinant Fusion ProteinsMolecular Sequence Datalac operonTopologyBiochemistryProtein Structure SecondaryPolyethylene GlycolsProtein structureBacterial ProteinsCatalytic DomainStilbenesAmino Acid SequenceCysteineBinding sitePeptide sequenceDicarboxylic Acid TransportersEscherichia coli K12ChemistryEscherichia coli ProteinsCell MembranePeriplasmic spaceAlkaline PhosphataseTransmembrane domainMembrane proteinBiochemistryLac OperonEthylmaleimideSulfonic AcidsHydrophobic and Hydrophilic InteractionsCysteineBiochemistry
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Structures of yeast peroxisomal Δ(3),Δ(2)-enoyl-CoA isomerase complexed with acyl-CoA substrate analogues: the importance of hydrogen-bond networks f…

2015

Δ3,Δ2-Enoyl-CoA isomerases (ECIs) catalyze the shift of a double bond from 3Z- or 3E-enoyl-CoA to 2E-enoyl-CoA. ECIs are members of the crotonase superfamily. The crotonase framework is used by many enzymes to catalyze a wide range of reactions on acyl-CoA thioesters. The thioester O atom is bound in a conserved oxyanion hole. Here, the mode of binding of acyl-CoA substrate analogues to peroxisomalSaccharomyces cerevisiaeECI (ScECI2) is described. The best defined part of the bound acyl-CoA molecules is the 3′,5′-diphosphate-adenosine moiety, which interacts with residues of loop 1 and loop 2, whereas the pantetheine part is the least well defined. The catalytic base, Glu158, is hydrogen-bo…

Models MolecularSaccharomyces cerevisiae ProteinsDouble bondStereochemistryProtein ConformationIsomeraseSaccharomyces cerevisiaeEnoyl CoA isomeraseThioesterPhotochemistryDodecenoyl-CoA Isomerasebeta-oxidationSubstrate SpecificityStructural Biologyddc:570Catalytic DomainEnzyme StabilitySide chainMoietyta116chemistry.chemical_classificationHydrogen bondenoyl-CoA isomeraseta1182Hydrogen BondingGeneral Medicinehydrogen-bond networkcrotonaseoxyanion holechemistryAcyl Coenzyme AOxyanion holeOxidation-ReductionProtein BindingActa crystallographica. Section D, Biological crystallography
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On the molecular structure of human neuroserpin polymers

2012

The polymerization of serpins is at the root of a large class of diseases; the molecular structure of serpin polymers has been recently debated. In this work, we study the polymerization kinetics of human neuroserpin by Fourier Transform Infra Red spectroscopy and by time-lapse Size Exclusion Chromatography. First, we show that two distinct neuroserpin polymers, formed at 45 and 85°C, display the same isosbestic points in the Amide I' band, and therefore share common secondary structure features. We also find a concentration independent polymerization rate at 45°C suggesting that the polymerization rate-limiting step is the formation of an activated monomeric species. The polymer structures…

Models MolecularSize-exclusion chromatographySerpinBiochemistryProtein Structure Secondaryserpinopathieprotein aggregationchemistry.chemical_compoundStructural BiologyNeuroserpinCatalytic DomainSpectroscopy Fourier Transform InfraredPolymer chemistryHumansMolecular BiologyProtein secondary structureSerpinschemistry.chemical_classificationIsosbestic pointChemistryNeuropeptidesserpinPolymerSettore FIS/07 - Fisica Applicata(Beni Culturali Ambientali Biol.e Medicin)KineticsCrystallographyMonomerprotein aggregation; serpins; serpinopathies; serpin polymerization; FTIRPolymerizationFTIRChromatography GelProtein Multimerizationserpin polymerization
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Can multiscale simulations unravel the function of metallo-enzymes to improve knowledge-based drug discovery?

2019

Metallo-enzymes are a large class of biomolecules promoting specialized chemical reactions. Quantum-classical quantum mechanics/molecular mechanics molecular dynamics, describing the metal site at quantum mechanics level, while accounting for the rest of system at molecular mechanics level, has an accessible time-scale limited by its computational cost. Hence, it must be integrated with classical molecular dynamics and enhanced sampling simulations to disentangle the functions of metallo-enzymes. In this review, we provide an overview of these computational methods and their capabilities. In particular, we will focus on some systems such as CYP19A1 a Fe-dependent enzyme involved in estroge…

Models MolecularSpliceosomeQM/MM molecular dynamicsProtein ConformationComputer scienceMetallo enzymeComputational biology01 natural sciencesMolecular mechanicsribozymeStructure-Activity Relationship03 medical and health sciencesMolecular dynamicsMM molecular dynamicsAromataseCatalytic DomainDrug Discoverysteroid synthesisCYP19A1RNA CatalyticDensity Functional Theory030304 developmental biologyQMPharmacologychemistry.chemical_classificationDNA processing enzymes0303 health sciencesMetallo-proteinsbiologyDrug discoveryBiomoleculeRibozymeDNABiosynthetic PathwaysEnzymes0104 chemical sciences010404 medicinal & biomolecular chemistrychemistrySettore CHIM/03 - Chimica Generale E InorganicaMetalsbiology.proteinRNAThermodynamicsMolecular MedicinespliceosomeFunction (biology)Protein BindingFuture Medicinal Chemistry
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Inside the Hsp90 inhibitors binding mode through induced fit docking

2009

Abstract During the last few decades, the development of new anticancer strategies had to face the instability of many tumors, occurring when the genetic plasticity of cells produces new drug-resistant cancers. It has been shown that a chaperone protein, heat shock protein 90 (Hsp90), is one of the fundamental factors involved in the cell response to stresses, and its role in many biochemical pathways has been demonstrated. Thus, the inhibition of Hsp90 represents a new target of antitumor therapy, since it may influence many specific signaling pathways. The natural antibiotic Geldanamycin is the first Hsp90 inhibitor that has been identified. Nevertheless, more potent and water-soluble sma…

Models MolecularStereochemistryLactams MacrocyclicMolecular Sequence DataComputational biologyCrystallography X-RayLigandsHsp90 inhibitorchemistry.chemical_compoundAdenosine TriphosphateHeat shock proteinCatalytic DomainMaterials ChemistryBenzoquinonesAmino Acid SequenceHSP90 Heat-Shock ProteinsPhysical and Theoretical ChemistrySpectroscopyInduced fitBinding SitesbiologyMolecular StructureHeat shock proteinDrug discoveryActive siteGeldanamycinRadicicolComputer Graphics and Computer-Aided DesignSmall moleculeHsp90Settore CHIM/08 - Chimica FarmaceuticachemistryDocking (molecular)Molecular dockingbiology.proteinGeldanamicynSequence AlignmentProtein Binding
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Bioinspired manganese(II) complexes with a clickable ligand for immobilisation on a solid support.

2014

International audience; Clickable ligands like N,N′-bis((pyridin-2-yl)methyl)prop-2-yn-1-amine (L1) and N-((1-methyl-1H-imidazol-2-yl)methyl)-N-(pyridin-2-ylmethyl)prop-2-yn-1-amine (L2) have been used to synthesise a series of manganese(II) complexes for grafting onto appropriate solid supports. These ligands mimic the 2-His-1-carboxylate facial chelation present in the active site of the manganese-dependent dioxygenase (MndD), while the alkyne side function allows grafting of the ligand onto an azido-functionalised support using “click chemistry” methodologies. Such synthetic analogues of the MndD crystallise in the solid state as double halide or pseudohalide-bridged dinuclear manganese(…

Models MolecularStereochemistryMolecular ConformationAlkynechemistry.chemical_elementManganese[CHIM.INOR]Chemical Sciences/Inorganic chemistry010402 general chemistryCrystallography X-RayLigands01 natural scienceslaw.inventionDioxygenasesInorganic ChemistrylawCoordination ComplexesCatalytic DomainPolymer chemistryChelationElectron paramagnetic resonanceSolid-Phase Synthesis Techniqueschemistry.chemical_classificationManganesebiology010405 organic chemistryLigand[CHIM.ORGA]Chemical Sciences/Organic chemistryElectron Spin Resonance SpectroscopyActive site[CHIM.CATA]Chemical Sciences/Catalysis[CHIM.MATE]Chemical Sciences/Material chemistrySilicon Dioxide0104 chemical scienceschemistrySuperexchangebiology.proteinClick chemistryClick ChemistryDalton transactions (Cambridge, England : 2003)
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A multidomain xylanase from a Bacillus sp. with a region homologous to thermostabilizing domains of thermophilic enzymes

1999

The gene xynC encoding xylanase C from Bacillus sp. BP-23 was cloned and expressed in Escherichia coli. The nucleotide sequence of a 3538 bp DNA fragment containing xynC gene was determined, revealing an open reading frame of 3258 bp that encodes a protein of 120,567 Da. A comparison of the deduced amino acid sequence of xylanase C with known beta-glycanase sequences showed that the encoded enzyme is a modular protein containing three different domains. The central region of the enzyme is the catalytic domain, which shows high homology to family 10 xylanases. A domain homologous to family IX cellulose-binding domains is located in the C-terminal region of xylanase C, whilst the N-terminal r…

Molecular Sequence DataBacillusBiologymedicine.disease_causeMicrobiologyHomology (biology)Substrate Specificitychemistry.chemical_compoundCatalytic DomainEnzyme StabilityEscherichia colimedicineXylobioseAmino Acid SequenceCloning MolecularEscherichia coliPeptide sequencechemistry.chemical_classificationEndo-14-beta XylanasesSequence Homology Amino AcidThermophileTemperatureNucleic acid sequenceSequence Analysis DNAXylosidasesEnzymeBiochemistrychemistryGenes BacterialXylanaseSequence AlignmentMicrobiology
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Receptor protein-tyrosine phosphatases: origin of domains (catalytic domain, Ig-related domain, fibronectin type III module) based on the sequence of…

2001

Abstract Reversible tyrosine phosphorylation of proteins is one of the major regulatory physiological events in response to cell-cell- and cell-matrix contact in Metazoa. Previously it was documented that the tyrosine phosphorylating enzymes, the tyrosine kinases (TKs), are autapomorphic characters of Metazoa, including sponges. In this paper the tyrosine dephosphorylating enzymes, the protein-tyrosine phosphatases (PTPs), are studied which can be grouped into two subfamilies, the soluble PTPs and the receptor PTPs (RPTPs). PTPs are characterized by one PTPase domain which interestingly comprises sequence similarity to yeast PTPs. In contrast to the PTPs, the RPTPs – which have been found o…

Molecular Sequence DataImmunoglobulinsBiologyPolymerase Chain ReactionEvolution Molecularchemistry.chemical_compoundCatalytic DomainGene duplicationGeneticsAnimalsAmino Acid SequenceTyrosineCloning MolecularPhylogenychemistry.chemical_classificationPhylogenetic treeSequence Homology Amino AcidTyrosine phosphorylationGeneral MedicineProtein-Tyrosine KinasesAmino acidFibronectinsPoriferaProtein Structure TertiaryOpen reading framechemistryBiochemistryPhosphorylationProtein Tyrosine PhosphatasesTyrosine kinaseSequence AnalysisGene
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Computational design of biological catalysts

2008

The purpose of this tutorial review is to illustrate the way to design new and powerful catalysts. The first possibility to get a biological catalyst for a given chemical process is to use existing enzymes that catalyze related reactions. The second possibility is the use of immune systems that recognize stable molecules resembling the transition structure of the target reaction. We finally show how computational techniques are able to provide an enormous quantity of information, providing clues to guide the development of new biological catalysts

Molecular StructureProcess (engineering)ChemistryCatalytic DomainBiocatalysisComputational designComputer SimulationNanotechnologyGeneral ChemistryBiochemical engineeringProtein EngineeringBiologia molecularCatalysisChemical Society Reviews
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