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D Moras

Publications and source records attributed to D Moras.

At least 109 records · Page 6Linked to original sources

The structure of the Aeromonas proteolytica aminopeptidase complexed with a hydroxamate inhibitor. Involvement in catalysis of Glu151 and two zinc ions of the co-catalytic unit.

The structure of the complex of Aeromonas proteolytica aminopeptidase, a two-zinc exopeptidase, with the inhibitor p-iodo-D-phenylalanine hydroxamate has been determined by X-ray crystallography. Refinement of the structure, which includes 220 water molecules, using data at 0.80-0.23-nm resolution resulted in a crystallographic residual R value of 16%. The hydroxamate group adopts a planar conformation whereby the two oxygen atoms interact with the zinc ions. The N-hydroxyl group of the inhibitor is located between the two zinc ions, a position which is close to that occupied by a water molecule in the native structure. The carbonyl oxygen of the inhibitor binds to Zn1, which becomes pentacoordinated while Zn2 remains tetracoordinated, in contrast to the native protein where both zinc ions were shown to be tetracoordinated and structurally equivalent. Interactions of the carboxylate oxygens of Glu151 with the hydroxamate group play an important role in the stabilization of the complex.

Aeromonas↗

Crystallization of Escherichia coli aspartyl-tRNA synthetase in its free state and in a complex with yeast tRNA(Asp).

Overexpressed dimeric E. coli aspartyl-tRNA synthetase (AspRS) has been crystallized in its free state and complexed with yeast tRNA(Asp). Triclinic crystals of the enzyme alone (a = 104.4, b = 107.4, c = 135.0 A, alpha = 102.9, beta = 101.0, gamma = 106.3 degrees ), have been grown using ammonium sulfate as the precipitant and monoclinic crystals (a = 127.1, b = 163.6, c = 140.1 A, beta = 111.7 degrees ), space group C2, have been grown using polyethylene glycol 6000. They diffract to 2.8 and 3.0 A, respectively. Crystals of the heterologous complex between E. coli AspRS and yeast tRNA have been obtained using ammonium sulfate as the precipitant and 2-propanol as the nucleation agent. They belong to the monoclinic space group P2(1) (a = 76.2, b = 227.3, c = 82.3 A, beta = 111.7 degrees ) and diffract to 2.7 A.

Journal Article↗

Crystallization and preliminary X-ray analysis of Escherichia coli methionyl-tRNA(fMet) formyltransferase.

Methionyl-tRNA(fMet) formyltransferase from Escherichia coli, a monomer of 34kDa, was overexpressed from its cloned gene fmt (Guillon, J.M., Mechulam, Y., Schmitter, J.M., Blanquet, S., and Fayat, G., J. Bacteriol. 174:4294-4301, 1992) and crystallized using ammonium sulphate as precipitant. The crystals are trigonal and have unit cell parameters a = b = 151.0 A, c = 81.8 A. They belong to space group P3(2)21 and diffract to 2.0 A resolution. The structure is being solved by multiple isomorphous replacement.

Acyltransferases↗

Aspartate identity of transfer RNAs.

Structure/function relationships accounting for specific tRNA charging by class II aspartyl-tRNA synthetases from Saccharomyces cerevisiae, Escherichia coli and Thermus thermophilus are reviewed. Effects directly linked to tRNA features are emphasized and aspects about synthetase contribution in expression of tRNA(Asp) identity are also covered. Major identity nucleotides conferring aspartate specificity to yeast, E coli and T thermophilus tRNAs comprise G34, U35, C36, C38 and G73, a set of nucleotides conserved in tRNA(Asp) molecules of other biological origin. Aspartate specificity can be enhanced by negative discrimination preventing, eg mischarging of native yeast tRNA(Asp by yeast arginyl-tRNA synthetase. In the yeast system crystallography shows that identity nucleotides are in contact with identity amino acids located in the catalytic and anticodon binding domains of the synthetase. Specificity of RNA/protein interaction involves a conformational change of the tRNA that optimizes the H-bonding potential of the identity signals on both partners of the complex. Mutation of identity nucleotides leads to decreased aspartylation efficiencies accompanied by a loss of specific H-bonds and an altered adaptation of tRNA on the synthetase. Species-specific characteristics of aspartate systems are the number, location and nature of minor identity signals. These features and the structural variations in aspartate tRNAs and synthetases are correlated with mechanistic differences in the aminoacylation reactions catalyzed by the various aspartyl-tRNA synthetases. The reality of the aspartate identity set is verified by its functional expression in a variety of RNA frameworks. Inversely a number of identities can be expressed within a tRNA(Asp) framework. From this emerged the concept of the RNA structural frameworks underlying expression of identities which is illustrated with data obtained with engineered tRNAs. Efficient aspartylation of minihelices is explained by the primordial role of G73. From this and other considerations it is suggested that aspartate identity appeared early in the history of tRNA aminoacylation systems.

Aspartate-tRNA Ligase↗

Conformational flexibility of tRNA: structural changes in yeast tRNA(Asp) upon binding to aspartyl-tRNA synthetase.

The availability of several X-ray structures at atomic resolution of tRNA(Asp) from yeast, both in its free state and complexed with its cognate tRNA-synthetase, enables a detailed examination of the conformational changes due to interaction with the enzyme. Although the molecule conserves its general L shape, its conformation undergoes important modifications. They may be described as a bending of the two arms which brings the 3' acceptor end and the anticodon part closer together, completed by a drastic change of the anticodon loop, which puts the anticodon bases in a more exposed position, facilitating their interaction with the synthetase. The packing interactions in the crystals are also discussed. Finally, the results of protection studies by chemical probes in solution are discussed in view of the RNA-protein contacts observed in the crystals.

Aspartate-tRNA Ligase↗

A canonical structure for the ligand-binding domain of nuclear receptors.

The ability of nuclear receptors (NRs) to activate transcription of target genes requires the binding of cognate ligands to their ligand-binding domains (LBDs). Information provided by the three-dimensional structures of the unliganded RXR alpha and the liganded RAR gamma LBDs has been incorporated into a general alignment of the LBDs of all NRs. A twenty amino-acid region constitutes a NR-specific signature and contains most of the conserved residues that stabilize the core of the canonical fold of NR LBDs. A common ligand-binding pocket, involving predominantly hydrophobic residues, is inferred by homology modelling of the human RXR alpha and glucocorticoid receptor ligand-binding sites according to the RAR gamma holo-LBD structure. Mutant studies support these models, as well as a general mechanism for ligand-induced activation deduced from the comparison of the transcriptionally active RAR gamma holo- and inactive RXR alpha apo-LBD structures.

Amino Acid Sequence↗

Crystal structure of the RAR-gamma ligand-binding domain bound to all-trans retinoic acid.

The 2.0-A crystal structure of the ligand-binding domain (LBD) of the human retinoic acid receptor (RAR)-gamma bound to all-trans retinoic acid reveals the ligand-binding interactions and suggests an electrostatic guidance mechanism. The overall fold is similar to that of the human RXR-alpha apo-LBD, except for the carboxy-terminal part which folds back towards the LBD core, contributing to the hydrophobic ligand pocket and 'sealing' its entry site. We propose a 'mouse trap' mechanism whereby a ligand-induced conformational transition repositions the amphipathic alpha-helix of the AF-2 activating domain and forms a transcriptionally active receptor.

Amino Acid Sequence↗

Crystallization of threonyl-tRNA synthetase from Thermus thermophilus and preliminary crystallographic data.

Threonyl-tRNA synthetase from Thermus thermophilus (ttTRS) has been overproduced in Escherichia coli, purified and crystallized in solutions containing ammonium sulfate and glycerol. The crystals grew in the orthorhombic space group C222(1) with unit cell dimensions a = 119.5 A, b = 120.0 A, c = 317.5 A. The asymmetric unit is constituted of two monomers and the crystals contain 66% solvent. This paper reports the first crystals of ttTRS and preliminary crystallographic results since the presumed crystals of ttTRS described in a previous paper [1] were crystals of aspartyl-tRNA synthetase [2].

Cloning, Molecular↗

Crystal structure of histidyl-tRNA synthetase from Escherichia coli complexed with histidyl-adenylate.

The crystal structure at 2.6 A of the histidyl-tRNA synthetase from Escherichia coli complexed with histidyl-adenylate has been determined. The enzyme is a homodimer with a molecular weight of 94 kDa and belongs to the class II of aminoacyl-tRNA synthetases (aaRS). The asymmetric unit is composed of two homodimers. Each monomer consists of two domains. The N-terminal catalytic core domain contains a six-stranded antiparallel beta-sheet sitting on two alpha-helices, which can be superposed with the catalytic domains of yeast AspRS, and GlyRS and SerRS from Thermus thermophilus with a root-mean-square difference on the C alpha atoms of 1.7-1.9 A. The active sites of all four monomers are occupied by histidyl-adenylate, which apparently forms during crystallization. The 100 residue C-terminal alpha/beta domain resembles half of a beta-barrel, and provides an independent domain oriented to contact the anticodon stem and part of the anticodon loop of tRNA(His). The modular domain organization of histidyl-tRNA synthetase reiterates a repeated theme in aaRS, and its structure should provide insight into the ability of certain aaRS to aminoacylate minihelices and other non-tRNA molecules.

Adenosine↗

Crystal structure of glycyl-tRNA synthetase from Thermus thermophilus.

The sequence and crystal structure at 2.75 A resolution of the homodimeric glycyl-tRNA synthetase from Thermus thermophilus, the first representative of the last unknown class II synthetase subgroup, have been determined. The three class II synthetase sequence motifs are present but the structure was essential for identification of motif 1, which does not possess the proline previously believed to be an essential class II invariant. Nevertheless, crucial contacts with the active site of the other monomer involving motif 1 are conserved and a more comprehensive description of class II now becomes possible. Each monomer consists of an active site strongly resembling that of the aspartyl and seryl enzymes, a C-terminal anticodon recognition domain of 100 residues and a third domain unusually inserted between motifs 1 and 2 almost certainly interacting with the acceptor arm of tRNA(Gly). The C-terminal domain has a novel five-stranded parallel-antiparallel beta-sheet structure with three surrounding helices. The active site residues most probably responsible for substrate recognition, in particular in the Gly binding pocket, can be identified by inference from aspartyl-tRNA synthetase due to the conserved nature of the class II active site.

Amino Acid Sequence↗

Self-fitting and self-modifying properties of the B-DNA molecule.

X-ray structure analysis of oligonucleotides shows that self-fitting of B-DNA molecules by groove-backbone interaction can trigger modification of the secondary structure of the double helix in a sequence-dependent manner, leading to a "pre-melted" transition state. This work reveals that some sequences respond to the DNA-DNA intermolecular interactions by forming rearranged H-bonding schemes which stabilize the transition states. This study suggests that the close and specific approach of DNA segments occurring in genome packaging, DNA looping, synapsis formation or supercoiling can contribute directly to the secondary structure changes needed for DNA processing.

Base Composition↗

Crystal structure of the ligand-binding domain of the human nuclear receptor RXR-alpha.

The crystal structure of the human retinoid-X receptor RXR-alpha ligand-binding domain reveals a previously undiscovered fold of an antiparallel alpha-helical sandwich, packed as dimeric units. Two helices and one loop form the homodimerization surface, and hydrophobic heptad repeats participate in stabilizing the fold. The existence of a ligand-binding pocket is proposed that would allow 9-cis retinoic acid to interact with different functional modules, including the AF-2 activating domain. Several lines of evidence indicate that the overall structure is a prototype fold of ligand-binding domains of nuclear receptors.

Amino Acid Sequence↗

Purification, functional characterization, and crystallization of the ligand binding domain of the retinoid X receptor.

The ligand binding domain (LBD) of the human retinoid X receptor alpha (hRXR alpha) was overproduced in Escherichia coli and purified to more than 95% purity and functional homogeneity. Circular dichroism spectra of the purified RXR alpha LBD indicated that the protein was composed predominantly of alpha-helical structures and coils. Crystals were grown from ammonium citrate using the vapor diffusion method against a reservoir containing 100 mM Pipes (pH 7.0) and 1.5 M ammonium citrate. They belong to the hexagonal space group P6(3)22 with unit cell parameters a = b = 110.8 A and c = 109.9 A, alpha = beta = 90 degrees, gamma = 120 degrees, and they diffract X rays to a resolution limit of 2.5 A using synchrotron radiation. The asymmetric unit of the crystals contains one molecule with a solvent content of approximately 55% and a Vm value of 3.6 A3/dalton.

Base Sequence↗