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R Leberman

Publications and source records attributed to R Leberman.

At least 37 records · Page 2Linked to original sources

The triple isotopic substitution method in small angle neutron scattering. Application to the study of the ternary complex EF-Tu.GTP.aminoacyl-tRNA.

The TIS (triple isotopic substitution) method in small angle neutron scattering was applied to determine the radius of gyration of polypeptide elongation factor Tu (EF-Tu) from E. coli associated with GDP and within the ternary complex EF-Tu.GTP.aminoacyl-tRNA. The results showed that, within errors of about 1 A, there is no change in the radius of gyration of the EF-Tu moiety upon ternary complex formation. Experiments were performed in H2O buffer, in which complex formation could be followed on an absolute scale because of the relatively large contrast of both protein and tRNA. The TIS method is based on the analysis of a scattering curve that is the difference between the scattering of two solutions containing appropriately deuterium labelled particles. A necessary condition for the application of the method is that the two solutions are identical in all respects except for the extent of deuterium label. The main properties of TIS that make it very useful for the study of complex particles in solution were confirmed by this study. These are the elimination of interparticle effects in the difference curve, the 'invisibility' of unlabelled parts of the particles and the independence of the difference scattering curve on the buffer 2H2O-H2O content. The last property is of particular interest for the study of interactions that may be influenced by 2H2O, since, contrary to classical contrast variation methods, TIS experiments can be performed in H2O buffer alone.

Guanosine Triphosphate↗

In vivo overexpression and purification of Escherichia coli tRNA(ser).

DNA fragments corresponding to the sequences of Escherichia coli tRNA(2ser) and amber suppressor tRNA(ser), were synthesized from overlapping oligonucleotides. These were interposed between a strong promotor and a synthetic transcriptional terminator to ensure the production of a transcript of the correct size. The genes of promotor, fragment and terminator were cloned into a conditional runaway replication plasmid. At temperatures below 37 degrees C this vector has a low copy number but, following a temperature shift to 42 degrees C, the copy number is no longer regulated. Using these constructs an overexpression of tRNA(ser) of about 20 times the level of the wild-type pool could be obtained (corresponding e.g. to 200 times the expression tRNA(2ser)). From these systems 10 mg quantities of tRNA(ser)s could be isolated with a serine acceptance of 1,100 pmol/A280 unit.

Base Sequence↗

Crystallization of the seryl-tRNA synthetase:tRNAS(ser) complex of Escherichia coli.

Crystals of the complex between seryl-tRNA synthetase and tRNA(2ser) from Escherichia coli have been obtained from ammonium sulphate solutions. The crystals are of the 1:2 enzyme:tRNA complex, belong to the space group C222(1), have cell dimensions of a = 128.9 A, b = 164.9 A, c = 127.3 A and diffract anisotropically from 3.5 to 4.5 A. An X-ray diffraction data set to 4 A has been collected. The combination of molecular replacement using the refined structure of the catalytic domain of the native enzyme, data from a heavy atom derivative and solvent flattening was used to produce a map at 4 A resolution. This shows that a tRNA molecule binds across the dimer, the anticodon stem and loop do not contact the protein and the helical arm of the enzyme contacts the T psi C loop and the long extra arm of the tRNA.

Crystallization↗

Pre-nucleation crystallization studies on aminoacyl-tRNA synthetases by dynamic light-scattering.

Dynamic light-scattering (DLS) studies on solutions of proteins approaching their precipitation point were made with asparaginyl- (NRSEC), leucyl- (LRSEC) and valyl- (VRSEC) tRNA synthetases from Escherichia coli. The three aminoacyl-tRNA synthetases have not been crystallized previously. As a control system, we used E. coli polypeptide elongation factor Tu (EF-Tu). Apart from the different proteins used here, the methods we employed differed from previous studies in that (1) instead of making a series of measurements on individual samples at various concentrations, the protein solutions were titrated with the precipitants, and (2) the results of the light-scattering measurements were analysed by a new maximum entropy procedure that calculates a particle size distribution in a highly reproducible way. The particle size distributions of protein solutions titrated with precipitants showed two major peaks in most cases. For both peaks, relative areas and mean diffusion coefficients were determined. The diffusion constants were corrected for the viscosity of the solutions. From comparing the results on the proteins known to crystallize (EF-Tu) with the amorphously precipitating systems (LRSEC, NRSEC) we find two necessary, but not sufficient, conditions for the formation of crystals: the diffusion coefficient of the monomer peak stays constant until very close to the precipitation point; the percentage of large aggregates stays small (less than 10% of the scattered light intensity) during the titration. For VRSEC, both ammonium sulphate and sodium citrate showed a low percentage of large aggregates and a constant diffusion coefficient of the main (protein monomer) peak below the precipitation point. This indicates that both would be possible precipitants for the crystallization of this enzyme. Crystallization trials using both these salts were carried out, and although no condition could as yet be found for obtaining crystals with ammonium sulphate solutions, crystals of the enzyme have been obtained with sodium citrate.

Amino Acyl-tRNA Synthetases↗

Crystallization of the seryl-tRNA synthetase-tRNA(Ser) complex from Thermus thermophilus.

The complex between seryl-tRNA synthetase and its cognate tRNA from the extreme thermophile Thermus thermophilus has been crystallized from ammonium sulphate solutions. Two different tetragonal crystal forms have been characterized, both diffracting to about 6 A using synchrotron radiation. One form grows as large bipyramids and has cell dimensions a = b = 127 A, c = 467 A, and the second form occurs as long, thin square prisms with cell dimensions a = b = 101 A, c = 471 A. Analysis of washed and dissolved crystals demonstrates the presence of both protein and tRNA.

Crystallization↗

Interaction of Escherichia coli tRNA(Ser) with its cognate aminoacyl-tRNA synthetase as determined by footprinting with phosphorothioate-containing tRNA transcripts.

A footprinting technique using phosphorothioate-containing RNA transcripts has been developed and applied to identify contacts between Escherichia coli tRNA(Ser) and its cognate aminoacyl-tRNA synthetase. The cloned gene for the tRNA was transcribed in four reactions in which a different NTP was complemented by 5% of the corresponding nucleoside 5'-O-(1-thiotriphosphate). The phosphorothioate groups of such transcripts are cleaved by reaction with iodine to permit sequencing of the transcripts. Footprinting was achieved by performing the same reaction with the phosphorothioate-tRNA-enzyme complex. At 1 mM iodine, selective protection of the tRNA transcripts in the cognate system was observed, with strong protection at positions 52 and 68 and weak protection at positions 46, 53, 67, 69, and 70. It is suggested that these regions of the tRNA interact with the helical arm of the synthetase.

Base Sequence↗

Sequence, structural and evolutionary relationships between class 2 aminoacyl-tRNA synthetases.

Class 2 aminoacyl-tRNA synthetases, which include the enzymes for alanine, aspartic acid, asparagine, glycine, histidine, lysine, phenylalanine, proline, serine and threonine, are characterised by three distinct sequence motifs 1,2 and 3 (reference 1). The structural and evolutionary relatedness of these ten enzymes are examined using alignments of primary sequences from prokaryotic and eukaryotic sources and the known three dimensional structure of seryl-tRNA synthetase from E. coli. It is shown that motif 1 forms part of the dimer interface of seryl-tRNA synthetase and motifs 2 and 3 part of the putative active site. It is further shown that the seven alpha 2 dimeric synthetases can be subdivided into class 2a (proline, threonine, histidine and serine) and class 2b (aspartic acid, asparagine and lysine), each subclass sharing several important characteristic sequence motifs in addition to those characteristic of class 2 enzymes in general. The alpha 2 beta 2 tetrameric enzymes (for glycine and phenylalanine) show certain special features in common as well as some of the class 2b motifs. In the alanyl-tRNA synthetase only motif 3 and possibly motif 2 can be identified. The sequence alignments suggest that the catalytic domain of other class 2 synthetases should resemble the antiparallel domain found in seryl-tRNA synthetase. Predictions are made about the sequence location of certain important helices and beta-strands in this domain as well as suggestions concerning which residues are important in ATP and amino acid binding. Strong homologies are found in the N-terminal extensions of class 2b synthetases and in the C-terminal extensions of class 2a synthetases suggesting that these putative tRNA binding domains have been added at a later stage in evolution to the catalytic domain.

Adenosine Triphosphate↗

Identification of valine/leucine/isoleucine and threonine/alanine/glycine proton-spin systems of Escherichia coli adenylate kinase by selective deuteration and selective protonation.

Adenylate kinase from two types of Escherichia coli strains, a wild-type and a leucine-auxotrophic strain, was purified. On the one hand, growing the leucine-auxotrophic bacteria on a medium containing deuterated leucine yielded E. coli adenylate kinase with all leucine residues deuterated. On the other hand, by growing the wild-type bacteria on deuterated medium with phenylalanine, threonine and isoleucine present as protonated specimens, 80% randomly deuterated enzyme with protonated phenylalanine, threonine and isoleucine residues could be prepared. Use of these proteins enabled identification of the spin systems of these amino acid residues in the n.m.r. spectra of the protein.

Adenylate Kinase↗

A second class of synthetase structure revealed by X-ray analysis of Escherichia coli seryl-tRNA synthetase at 2.5 A.

The three-dimensional crystal structure of seryl-transfer RNA synthetase from Escherichia coli, refined at 2.5 A resolution, is described. It has an N-terminal domain that forms an antiparallel alpha helical coiled-coil, stretching 60 A out into the solvent and stabilized by interhelical hydrophobic interactions and an active-site alpha-beta domain based around a seven-stranded antiparallel beta sheet. Unlike the three other known synthetase structures, the enzyme contains no classical nucleotide-binding fold, and is the first representative of a second class of aminoacyl-tRNA synthetase structures.

Amino Acid Sequence↗

Crystals of seryl-tRNA synthetase from Thermus thermophilus. Preliminary crystallographic data.

Crystals have been obtained of seryl-tRNA synthetase from the extreme thermophile Thermus thermophilus, using mixed solutions of ammonium sulphate and methane pentane diol. The crystals are very stable and diffract to at least 2 A. The crystals are monoclinic (space group P21) with cell parameters a = 87.1 A, b = 126.9 A, c = 63.5 A and beta = 109.7 degrees.

Amino Acyl-tRNA Synthetases↗

Polypeptide elongation factor Tu from Halobacterium marismortui.

A GDP-binding protein of 60 kDa from Halobacterium marismortui has been purified to homogeneity. The purification has been carried out in high-salt buffers or in 50% glycerol buffers to protect the halophilic protein from denaturation. Evidence that this protein is the halophilic elongation factor Tu (hEF-Tu) is provided by the high homology of its N terminus with the corresponding sequences of other EF-Tus, and by immunological studies. Like some other EF-Tus the native protein can be cleaved with trypsin without concomitant loss of GDP-binding ability. The molecular mass of this hEF-Tu is higher than that for the corresponding factors from other sources including the halobacterium Halobacterium cutirubrum. The protein possesses typical halophilic characteristics, in that it is stable and active in 3 M KCl or 2 M (NH4)2SO4. Some other properties, like autofragmentation under sample treatment before SDS-PAGE, are described.

Amino Acid Sequence↗

The molecular basis of kirromycin (mocimycin) action; a 1H NMR study using deuterated elongation factor Tu.

The binding of the antibiotic kirromycin (mocimycin) to its target protein, bacterial elongation factor Tu (EF-Tu), has been studied by 1H NMR spectroscopy using deuterated protein. Narrow lines were observed in the spectrum of the unbound protein (due to residual protons) and in the spectrum of the kirromycin-EF-Tu complex. The spectrum of the complex has been compared with the spectra of the unbound protein and the unbound drug, and the results are interpreted in terms of the mode of antibiotic action of kirromycin.

Deuterium↗

Cloning and characterization of the gene for Escherichia coli seryl-tRNA synthetase.

Seryl-tRNA synthetase is the gene product of the serS locus in Escherichia coli. Its gene has been cloned by complementation of a serS temperature sensitive mutant K28 with an E. coli gene bank DNA. The resulting clones overexpress seryl-tRNA synthetase by a factor greater than 50 and more than 6% of the total cellular protein corresponds to the enzyme. The DNA sequence of the complete coding region and the 5'- and 3' untranslated regions was determined. Protein sequence comparison of SerRS with all available aminoacyl-tRNA synthetase sequences revealed some regions of significant homology particularly with the isoleucyl- and phenylalanyl-tRNA synthetases from E. coli.

Amino Acid Sequence↗

Crystals of seryl-tRNA synthetase from Escherichia coli. Preliminary crystallographic data.

Crystals of seryl-tRNA synthetase from Escherichia coli can be grown from ammonium sulphate/octyl glucoside solutions in two days. The crystals appear to be very suitable for X-ray analysis, diffracting to at least 2.8 A resolution and being resistant to radiation damage. The crystals are monoclinic (space group C2) with cell parameters a = 148.2 A, b = 90.6 A, c = 69.5 A and beta = 119.0 degrees. Depending on whether the asymmetric unit is the enzyme monomer (Mr 48,414) or dimer the Vm value would be either 4.12 or 2.10 A3/dalton. Although the former would indicate a rather high solvent content, other proteins crystallized in the presence of octyl glucoside have Vm values similar to this.

Amino Acyl-tRNA Synthetases↗