Search results for "dehydroamino acids"

showing 10 items of 14 documents

DFT study of N–H···O hydrogen bond between model dehydropeptides and water molecule

2013

The strength of the hydrogen bond formed between a water molecule and two α,β-dehydroalanine derivatives including Ac-ΔAla-NMe2 (1) and Ac-ΔAla-NHMe (2) in comparison with standard amino acid Ac-Ala-NMe2 (3) is studied by density functional theory (with M06-2X and B3LYP functionals). Calculations were conducted for two different conformations of the peptides: extended (C5) and bent (β) with polyproline II backbone dihedral angles. The obtained results show that both dehydro and standard peptides in bent conformation form stronger hydrogen bonds with water than in the extended ones. Moreover, due to higher polarity of the N–H group of α,β-dehydroalanine residues, the H-bond in their complexe…

Alaninehydrogen bondB3LYPHydrogen bondStereochemistryChemistryBent molecular geometryLow-barrier hydrogen bonddehydroamino acidsBiophysicsDihedral angleCondensed Matter PhysicsDFTM06-2XMoleculeDensity functional theoryPhysical and Theoretical ChemistryMolecular BiologyPolyproline helixMolecular Physics
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α,β-Dehydroamino acids in naturally occurring peptides

2014

α,β-Dehydroamino acids are naturally occurring non-coded amino acids, found primarily in peptides. The review focuses on the type of α,β-dehydroamino acids, the structure of dehydropeptides, the source of their origin and bioactivity. Dehydropeptides are isolated primarily from bacteria and less often from fungi, marine invertebrates or even higher plants. They reveal mainly antibiotic, antifungal, antitumour, and phytotoxic activity. More than 60 different structures were classified, which often cover broad families of peptides. 37 different structural units containing the α,β-dehydroamino acid residues were shown including various side chains, Z and E isomers, and main modifications: meth…

Dehydroamino acidsStereochemistryClinical BiochemistryPeptideReview ArticleHeterocyclesBiochemistryMethylationResidue (chemistry)IsomerismDepsipeptidesSide chainPeptide bondAmino AcidsDepsipeptidechemistry.chemical_classificationNatural productsbiologyChemistryDehydropeptidesOrganic ChemistryBiological activitybiology.organism_classificationAmino acidBiochemistryZ/E isomerisationPeptidesBacteriaAmino Acids
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Intra- and intermolecular forces dependent main chain conformations of esters of α,β-dehydroamino acids

2013

Abstract Esters of dehydroamino acids occur in nature. To investigate their conformational properties, the low-temperature structures of Ac-ΔAla-OMe, Ac-ΔVal-OMe, Z-(Z)-ΔAbu-OMe, and Z-(Z)-ΔAbu-NHMe were studied by single-crystal X-ray diffraction. The ΔAla ester prefers the fully extended conformation C5. Both the ΔVal and (Z)-ΔAbu esters assume the conformation β, whereas the amide analogue of the latter prefers the conformation α. For the conformations found, DFT calculations using B3LYP/6-311++G(d,p) with the SCRF-PCM and M062X/6-311++G(d,p) with the SCRF-SMD method were applied to mimicking chloroform and water environment. The tendency of the ΔVal and (Z)-ΔAbu esters towards the confo…

DepsipeptideChloroformChemistryHydrogen bondStereochemistryOrganic ChemistryIntermolecular forcedehydroamino acidsconformational analysisintramolecular forceshydrogen bondingAnalytical ChemistryInorganic Chemistrychemistry.chemical_compounddepsipeptidesIntramolecular forceAmideWater environmentMoleculeSpectroscopyJournal of Molecular Structure
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Synthesis of Tetrapeptide p‐nitrophenylanilides containing dehydroalanine and dehydrophenylalanine and their influence on cathepsin C activity

2001

Three dehydrotetrapeptides of rationally varying structure were prepared and tested as affectors of cathepsin C. These compounds appeared to be substrates of the enzyme, being equipotent with their classical counterparts. Thus, replacement of amino acid in a short peptide by corresponding dehydroamino acid does not prevent cathepsin C in recognizing dehydropeptide as its substrate. Copyright © 2001 European Peptide Society and John Wiley & Sons, Ltd.

Magnetic Resonance SpectroscopyStereochemistryPhenylalaninePeptideBiochemistryCathepsin CCathepsin Cdipeptidyl-peptidase Ichemistry.chemical_compoundStructural BiologyDehydroalanineDrug DiscoveryAnimalsAnilidesAmino AcidsMolecular BiologyPharmacologyCathepsinchemistry.chemical_classificationAlanineTetrapeptideChemistryOrganic ChemistryProteolytic enzymesdehydroamino acidsGeneral Medicineproteolytic enzymesAmino acidEnzymeModels ChemicalBiochemistryMolecular MedicineCattleOligopeptidesSpleenJournal of Peptide Science
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Conformational investigation of α,β-dehydropeptides. X. Molecular and crystal structure of Ac-ΔAla-NMe2 compared with those of Ac-L-Ala-NMe2, Ac-DL-A…

2002

A series of three homologous dimethyldiamides Ac-DeltaAla-NMe2, Ac-L-Ala-NMe2 and Ac-DL-Ala-NMe2 has been synthesized and the structures of these amides determined from single-crystal X-ray diffraction data. To learn more about the conformational preferences of compounds studied, the fully relaxed (phi-psi) conformational energy maps in vacuo (AM1) of Ac-DeltaAla-NMe2 and Ac-L-Ala-NMe2 were obtained, and the calculated minima reoptimized with the DFT/B3LYP/6-31G** method. The crystal-state results have been compared with the literature data. Ac-DeltaAla-NMe2 and other alpha,beta-dehydroamino acid dimethyldiamides, Ac-DeltaXaa-NMe2 adopt the conservative conformation of the torsion angles ph…

Models Moleculardehydroalanine derivativeProtein ConformationStereochemistryαPeptidedimethylamidesCrystal structureX‐ray crystallographyCrystallography X-RayBiochemistryEndocrinologyProtein structureMoleculeBeta (finance)crystal and molecular structuresalanine derivativesβ‐dehydroamino acidstheoretical calculationschemistry.chemical_classificationAlanineamino acid amidesAmino acidCrystallographydehydropeptideschemistryX-ray crystallographyPeptidesRamachandran plotJOURNAL OF PEPTIDE RESEARCH
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Conformational properties of N′,N′-dimethylamides of N-acetyldehydroalanine and N-acetyl-(Z)-dehydrophenylalanine

2001

Conformational preferences of Ac-deltaAla-NMe2 and Ac-(Z)-deltaPhe-NMe2 were studied and compared with those of their monomethyl counterparts as well as with those of their saturated analogues. X-Ray data and energy calculations revealed a highly conservative conformation of the dehydro dimethylamides, which is located in a high-energy region of the Ramachandran map.

N¢-dimethylamidesaalanine and phenylalaninederivativesb-dehydroamino acidsGeneral Biochemistry Genetics and Molecular BiologyX-ray crystallographytheoretical calculations
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Conformational investigation of alpha,beta-dehydropeptides. VIII. N-acetyl-alpha,beta-dehydroamino acid N'-methylamides: conformation and electron de…

2009

The Fourier transform infrared spectra are analyzed in the regions of Vs(N-H), amide I, amide II and Vs(C alpha = C beta) bands for a series of Ac-delta Xaa-NHMe, where delta Xaa = delta Ala, (Z)-delta Abu, (Z)-delta Leu, (Z)-delta Phe and delta Val, to determine the predominant solution conformation of these alpha,beta-dehydropeptide-related molecules and the electron distribution perturbation in their amide bonds. The measurements were performed in dichloromethane (DCM). To confirm and rationalize the assignments, the spectra of the respective series of saturated Ac-Xaa-NHMe, recorded in DCM, and the spectra of these two series of unsaturated and saturated compounds, recorded in acetonitr…

Protein ConformationαAb initioElectronsBiochemistrychemistry.chemical_compoundEndocrinologyDehydroalanineComputational chemistryAb initio quantum chemistry methodsamidic resonanceAmideSpectroscopy Fourier Transform InfraredMoleculePeptide bondC5 hydrogen bondC5 conformationFourier transform infrared spectroscopyamide bond lengthβ‐dehydroamino acidsHydrogen bondab initio calculationsdehydroalanineAmidesMolecular WeightCrystallographyFTIR spectroscopychemistryPeptidesΔ‐electron conjugationThe journal of peptide research : official journal of the American Peptide Society
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Conformational preferences and synthesis of isomers Z and E of oxazole-dehydrophenylalanine

2016

Dehydrophenylalanine, ΔPhe, is the most commonly studied α,β-dehydroamino acid. In nature, further modifications of the α,β-dehydroamino acids were found, for example, replacement of the C-terminal amide group by oxazole ring. The conformational properties of oxazole-dehydrophenylalanine residue (ΔPhe-Ozl), both isomers Z and E, were investigated. To determine all possible conformations, theoretical calculations were performed using Ac-(Z/E)-ΔPhe-Ozl(4-Me) model compounds at M06-2X/6-31++G(d,p) level of theory. Ac-(Z/E)-ΔPhe-Ozl-4-COOEt compounds were synthesized and the conformational preferences of each isomer, Z and E, were investigated using FTIR and NMR-NOE in solutions of increasing p…

Ramachandran diagramHantzsch reactioncis–trans isomerizationdehydroamino acidsphotoisomerizationBiopolymers
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Crystal structure of N-(tert-butoxycarbonyl)phenylalanyldehydroalanine isopropyl ester (Boc–Phe–ΔAla–OiPr)

2014

In the crystal structure of the de­hydro­dipeptide (Boc-Phe-ΔAla-OiPr), the mol­ecule has a trans configuration of the N-methyl­amide group. Its geometry is different from saturated peptides but is in excellent agreement with other de­hydro­alanine compounds. In the crystal, an N—H⋯O hydrogen bond links the mol­ecules in a herringbone packing arrangement.

Steric effectsde­hydro­alaninecrystal structurede­hydro peptidesCrystal structureResearch Communicationslcsh:Chemistrychemistry.chemical_compoundDehydroalanineαβ-dehydroamino acidsPeptide bondMoietyGeneral Materials ScienceHydrogen bond[alpha]General Chemistrydehydroalaninedehydro peptidesCondensed Matter Physicsherringbone packing[beta]-de­hydro­amino acidsCrystallographyMolecular geometrychemistrylcsh:QD1-999αβ-de­hydro­amino acidsIsopropylActa Crystallographica Section E
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The conformation cis of N-acetyl-N-methyl-α,β-dehydroalanine N′-methylamide and saturated analogues

2007

A series of three homologous amino acids derivatives: N-acetyl-N-methyl-α,β–dehydroalanine N′-methylamide (1), N-acetyl-N-methyl-L-alanine N′-methylamide (2), and N-acetyl-N-methyl-DL-alanine N′-methylamide have been synthesised. The racemic species undergoes spontaneous separation into L and D-enantiomers. From these two chiral forms, the structure of L-enantiomer (3) was analysed. The molecules of 1 – 3 adopt the cis arrangement of the N-terminal amide bond. The molecular conformations are similar for 1 (φ, ψ = 94.6(1)°, −1.7(1)°) and 3 (φ, ψ = 111.5(1)°, −23.8(1)°), and also 2 (φ, ψ = −114.8(2)°, 29.5(2)°), if inversion through the chiral C2 carbon is considered. They are stabilised by i…

chemistry.chemical_classificationDouble bondDehydroamino acidsHydrogen bondStereochemistryMethylamidetrans-cis IsomerisationN-methylationSingle crystal structure analysisCondensed Matter PhysicsX-ray diffractionInorganic Chemistrychemistry.chemical_compoundCrystallographychemistryAmideIntramolecular forceMoleculePeptide bondGeneral Materials ScienceIsomerizationZeitschrift Fur Kristallographie
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