Search results for "Carbon-Nitrogen Lyases"

showing 8 items of 8 documents

The Structure of Rauvolfia serpentina Strictosidine Synthase Is a Novel Six-Bladed β-Propeller Fold in Plant Proteins

2006

Abstract The enzyme strictosidine synthase (STR1) from the Indian medicinal plant Rauvolfia serpentina is of primary importance for the biosynthetic pathway of the indole alkaloid ajmaline. Moreover, STR1 initiates all biosynthetic pathways leading to the entire monoterpenoid indole alkaloid family representing an enormous structural variety of ∼2000 compounds in higher plants. The crystal structures of STR1 in complex with its natural substrates tryptamine and secologanin provide structural understanding of the observed substrate preference and identify residues lining the active site surface that contact the substrates. STR1 catalyzes a Pictet-Spengler–type reaction and represents a novel…

Models MolecularTryptamineProtein FoldingStrictosidine synthaseProtein ConformationMolecular Sequence DataSequence alignmentPlant ScienceCatalysisRauwolfiaSubstrate Specificitychemistry.chemical_compoundRauvolfia serpentinaCarbon-Nitrogen LyasesAmino Acid SequenceResearch ArticlesConserved SequencePlant ProteinsBinding SitesSequence Homology Amino AcidbiologyIndole alkaloidActive siteCell BiologyLyasebiology.organism_classificationTryptamineschemistryBiochemistrybiology.proteinSecologaninSequence AlignmentThe Plant Cell
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Crystallization and preliminary X-ray crystallographic analysis of strictosidine synthase from Rauvolfia: the first member of a novel enzyme family.

2004

Strictosidine synthase is a central enzyme involved in the biosynthesis of almost all plant monoterpenoid indole alkaloids. Strictosidine synthase from Rauvolfia serpentina was heterologously expressed in Escherichia coli. Crystals of the purified recombinant enzyme have been obtained by the hanging-drop technique at 303 K with potassium sodium tartrate tetrahydrate as precipitant. The crystals belong to the space group R3 with cell dimensions of a=b=150.3 A and c=122.4 A. Under cryoconditions (120 K), the crystals diffract to about 2.95 A.

RauvolfiaStrictosidine synthaseDNA PlantStereochemistryBiophysicsmedicine.disease_causeCrystallography X-RayBiochemistryRauwolfiaAnalytical Chemistrylaw.inventionchemistry.chemical_compoundBiosynthesislawRauvolfia serpentinaCarbon-Nitrogen LyasesmedicineEscherichia coliCrystallizationMolecular BiologyEscherichia colichemistry.chemical_classificationTetrahydratebiologyBase Sequencebiology.organism_classificationRecombinant ProteinsEnzymechemistryBiochemistrybiology.proteinBiochimica et biophysica acta
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Structure-based engineering of strictosidine synthase: auxiliary for alkaloid libraries.

2007

SummaryThe highly substrate-specific strictosidine synthase (EC 4.3.3.2) catalyzes the biological Pictet-Spengler condensation between tryptamine and secologanin, leading to the synthesis of about 2000 monoterpenoid indole alkaloids in higher plants. The crystal structure of Rauvolfia serpentina strictosidine synthase (STR1) in complex with strictosidine has been elucidated here, allowing the rational site-directed mutation of the active center of STR1 and resulting in modulation of its substrate acceptance. Here, we report on the rational redesign of STR1 by generation of a Val208Ala mutant, further describing the influence on substrate acceptance and the enzyme-catalyzed synthesis of 10-m…

TryptamineCHEMBIOLStrictosidine synthaseMICROBIOStereochemistryProtein ConformationClinical BiochemistryMutantDrug Evaluation PreclinicalMutation MissenseCrystallography X-RayProtein EngineeringBiochemistryIndole AlkaloidsSubstrate Specificitychemistry.chemical_compoundRauvolfia serpentinaDrug DiscoveryCatharanthusCarbon-Nitrogen LyasesMolecular BiologyVinca AlkaloidsPlant ProteinsPharmacologybiologyMolecular StructureGeneral Medicinebiology.organism_classificationLyaseBiochemistrychemistryStrictosidinebiology.proteinMutagenesis Site-DirectedMolecular MedicineSecologaninProtein BindingChemistrybiology
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Construction and expression of a dual vector for chemo-enzymatic synthesis of plant indole alkaloids inEscherichia coli

2010

A dual vector (pQE-70-STR1-SG) containing coding regions of strictosidine synthase (STR1, EC 4.3.3.2) and strictosidine glucosidase (SG, EC 3.2.1.105) from the Indian medicinal plant Rauvolfia serpentina was constructed. Functional expression of the vector in Escherichia coli cells (M15 strain) was proven by isolation of prepurified enzyme extracts, which show both STR1 and SG activities. Incubation of the enzyme in the presence of tryptamine and secologanin delivered the indole alkaloid cathenamine, demonstrating functional co-expression of both STR1- and SG-cDNAs. Cathenamine reduction by sodium borohydride leading to tetrahydroalstonine revealed the chemo-enzymatic indole alkaloid synthe…

TryptamineDNA ComplementaryStrictosidine synthasePlant Sciencemedicine.disease_causeBiochemistryGene Expression Regulation EnzymologicRauwolfiaIndole AlkaloidsAnalytical Chemistrychemistry.chemical_compoundGene Expression Regulation PlantRauvolfia serpentinaCarbon-Nitrogen LyasesEscherichia colimedicineCloning MolecularEscherichia coliPlant ProteinsIndole testchemistry.chemical_classificationMolecular StructurebiologyIndole alkaloidOrganic Chemistrybiology.organism_classificationSecologanin Tryptamine AlkaloidsEnzymechemistryBiochemistrybiology.proteinSecologaninGlucosidasesNatural Product Research
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A facile chemoenzymatic approach: one-step syntheses of monoterpenoid indole alkaloids.

2010

Facile chemoenzymatic syntheses of cytotoxic monoterpenoid indole alkaloids with novel skeletons and multiple chiral centers are described. Synthesis of these alkaloids was achieved by a simple one-step reaction using strictosidine and 12-aza-strictosidine as the key intermediates. Strictosidines were prepared by coupling of secologanin with tryptamine and 7-aza-tryptamine, respectively, using the immobilized recombinant Rauvolfia strictosidine synthase. A detailed stereochemical analysis is presented herein. The results provide an opportunity for a chemoenzymatic approach that leads to an increased diversification of complex alkaloids with improved structures and activities.

TryptamineModels MolecularRauvolfiaStrictosidine synthaseStereochemistryOne-StepBiochemistryRauwolfiachemistry.chemical_compoundCarbon-Nitrogen LyasesSecologanin Tryptamine AlkaloidsVinca AlkaloidsAza CompoundsbiologyMolecular StructureOrganic ChemistryGeneral Chemistrybiology.organism_classificationEnzymes ImmobilizedSecologanin Tryptamine AlkaloidsRecombinant ProteinschemistryBiocatalysisStrictosidinebiology.proteinBiocatalysisSecologaninChemistry, an Asian journal
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3D-Structure and function of strictosidine synthase--the key enzyme of monoterpenoid indole alkaloid biosynthesis.

2008

Strictosidine synthase (STR; EC 4.3.3.2) plays a key role in the biosynthesis of monoterpenoid indole alkaloids by catalyzing the Pictet-Spengler reaction between tryptamine and secologanin, leading exclusively to 3alpha-(S)-strictosidine. The structure of the native enzyme from the Indian medicinal plant Rauvolfia serpentina represents the first example of a six-bladed four-stranded beta-propeller fold from the plant kingdom. Moreover, the architecture of the enzyme-substrate and enzyme-product complexes reveals deep insight into the active centre and mechanism of the synthase highlighting the importance of Glu309 as the catalytic residue. The present review describes the 3D-structure and …

TryptamineStrictosidine synthaseATP synthasebiologyMolecular StructurePhysiologyStereochemistryProtein ConformationPlant Sciencebiology.organism_classificationSecologanin Tryptamine AlkaloidsSubstrate Specificitychemistry.chemical_compoundProtein structurechemistryBiosynthesisBiochemistryRauvolfia serpentinaStrictosidineCarbon-Nitrogen LyasesGeneticsbiology.proteinSecologaninVinca AlkaloidsPlant physiology and biochemistry : PPB
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Improved Expression of His6-Tagged Strictosidine Synthase cDNA for Chemo-Enzymatic Alkaloid Diversification

2010

Strictosidine synthase (STR1) catalyzes the stereoselective formation of 3alpha(S)-strictosidine from tryptamine and secologanin. Strictosidine is the key intermediate in the biosynthesis of 2,000 plant monoterpenoid indole alkaloids, and it is a key precursor of enzyme-mediated synthesis of alkaloids. An improved expression system is described which leads to optimized His(6)-STR1 synthesis in Escherichia coli. Optimal production of STR1 was achieved by determining the impact of co-expression of chaperones pG-Tf2 and pG-LJE8. The amount and activity of STR1 was doubled in the presence of chaperone pG-Tf2 alone. His(6)-STR1 immobilized on Ni-NTA can be used for enzymatic synthesis of stricto…

TryptamineStrictosidine synthaseCatharanthusStereochemistryRecombinant Fusion ProteinsIridoid GlucosidesBioengineeringBiochemistryEnzyme catalysischemistry.chemical_compoundAlkaloidsBiosynthesisCarbon-Nitrogen LyasesHistidineIridoidsVinca AlkaloidsMolecular Biologychemistry.chemical_classificationbiologyGeneral ChemistryGeneral MedicineTryptaminesEnzymechemistryBiochemistryChaperone (protein)StrictosidineBiocatalysisbiology.proteinMolecular MedicineSecologaninOligopeptidesMolecular ChaperonesChemistry & Biodiversity
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Crystallization and preliminary X-ray analysis of strictosidine synthase and its complex with the substrate tryptamine

2005

Strictosidine synthase (STR1) is a central enzyme that participates in the biosynthesis of almost all plant monoterpenoid indole alkaloids. After heterologous expression in Escherichia coli, crystals of STR1 and its substrate complex with tryptamine were obtained by the hanging-drop technique at 302–304 K with potassium sodium tartrate tetrahydrate as precipitant. All crystals belong to space group R3. The native STR1 crystals diffract to 2.95 Å and have unit-cell parameters a = b = 150.3, c = 122.4 Å. The tryptamine complex crystals diffract to 2.38 Å, with unit-cell parameters a = b = 147.3, c = 122.3 Å.

TryptamineStrictosidine synthaseTetrahydratebiologyStereochemistryPotassium sodium tartrateSubstrate (chemistry)General MedicineRauwolfiaTryptamineslaw.inventionchemistry.chemical_compoundchemistryBiosynthesisStructural BiologylawCarbon-Nitrogen Lyasesbiology.proteinHeterologous expressionCrystallizationCrystallizationPlant ProteinsActa Crystallographica Section D Biological Crystallography
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