Search PubMed⌕ Search

Biomedical subjects

F Jurnak

Publications and source records attributed to F Jurnak.

At least 37 records · Page 2Linked to original sources

An isotope edited classical Raman difference spectroscopic study of the interactions of guanine nucleotides with elongation factor Tu and H-ras p21.

We have measured the Raman spectrum of GDP bound to the elongation factor protein, EF-Tu, and the c-Harvey-ras protein, p21, two proteins of the guanine nucleotide binding family. In order to separate the Raman spectrum of the nucleotide from the much more intense protein spectrum, we investigate the feasibility of "tagging" the normal modes of the nucleotide by isotopic substitution, here by incoporating deuterium-labeled guanine at the C8 position into the active site. A difference spectrum between the labeled and unlabeled protein-nucleotide complex shows the changes in the Raman spectrum of the bound nucleotide that arise from the isotopic exchange. We find that surprisingly good Raman spectra of bound ligands can be obtained with this method and that the method can be easily generalized to other systems. The data show that the guanine amino group of the nucleotide interacts differently with both EF-Tu and p21 than it does with water, showing a change in hydrogen-bonding properties upon binding. On the other hand, no change in hydrogen bonding is observed at guanine's N7. The data strongly suggest that the conformation of the nucleotide when bound to EF-Tu and that p21 is the C2' endo pucker of the ribose ring and anti about the glycosidic bond. These results are compared to previous structural and chemical studies.

Amino Acid Sequence↗

Stabilization of the Escherichia coli elongation factor Tu-GTP-aminoacyl-tRNA complex.

The effect of ammonium sulfate on the Escherichia coli elongation factor Tu-GTP-aminoacyl-tRNA complex has been studied. The half-lives of 12 E. coli aminoacyl-tRNA species were determined at 37 degrees C in the presence and absence of an equimolar amount of EF-Tu-GTP and in the presence and absence of 1.5 M ammonium sulfate. The results indicate that the addition of 1.5 M ammonium sulfate to the ternary complex increased the stability of all 12 complexes studied. In addition, the effects of various salts and crystallization agents on the stability of the E. coli EF-Tu-GTP-phenylalanyl-tRNA complex was studied in detail. Binding parameters were also measured under various conditions at 37 degrees C. The results indicate that the stability and the Kassoc of the ternary complex, using phenylalanyl-tRNA, can be increased by the presence of polyethylene glycol or ammonium sulfate.

Escherichia coli↗

Genetic engineering, isolation and characterization of a truncated Escherichia coli elongation factor Tu comprising domains 2 and 3.

A deletion mutant of a plasmid born Escherichia coli tufA gene, which codes for a truncated elongation factor Tu comprising domains 2 and 3, has been constructed by genetic engineering. This gene was overexpressed in E. coli, and a polypeptide representing the truncated elongation factor Tu was isolated, purified to near homogeneity, crystallized and characterized physico-chemically as well as biochemically. Circular dichroism spectroscopy and limited tryptic digestion demonstrate that the isolated domain pair 2 and 3 behaves like an independent folding unit which adopts a similar secondary and most likely, tertiary, structure to that present in the intact elongation factor Tu. However, the isolated domain pair 2 and 3 does not interact with aminoacyl-tRNA or the antibiotic kirromycin, two ligands which were shown previously by cross-linking experiments to be in contact with amino acid residues located in domains 1 and 2, and domain 3, respectively. The results suggest that the isolated domain pair 2 and 3 by itself forms too few contacts with these ligands to form a stable complex. Furthermore, the data suggest that domain 1 in intact EF-Tu, in a subtle but nevertheless decisive manner, alters the conformation of the other two domains in such a way that all three domains cooperatively create a high affinity binding site for aminoacyl-tRNA and the antibiotic kirromycin.

Circular Dichroism↗

Three-dimensional models of the GDP and GTP forms of the guanine nucleotide domain of Escherichia coli elongation factor Tu.

Three-dimensional models of the GDP and GTP forms of the guanine nucleotide domain of Escherichia coli elongation factor Tu have been derived from the atomic coordinates of the trypsin-modified form of EF-Tu-GDP and by comparison with the ras p21 structures. The significance of the differences in the guanine nucleotide binding sites of EF-Tu and ras p21 are discussed. Crystallization of the EF-Tu-GMPPNP complex is reported.

Amino Acid Sequence↗

Preliminary crystallographic analysis of the plant pathogenic factor, pectate lyase C from Erwinia chrysanthemi.

Pectate lyases are saccharide-binding enzymes that degrade plant cell walls. One pectate lyase from Erwinia chrysanthemi (EC16), termed pectate lyase C, has been crystallized from ammonium sulfate. The preliminary x-ray diffraction analysis indicates that the crystals belong to the orthorhombic space group P2(1)2(1)2(1), with unit cell dimensions, a = 73.4 A, b = 80.3 A, and c = 95.1 A. The crystals diffract to a resolution of 2.2 A and have one molecule/asymmetric unit.

Ammonium Sulfate↗

Preliminary crystallographic analysis of a complex between tetracycline and the trypsin-modified form of Escherichia coli elongation factor Tu.

Crystals of a complex between the antibiotic tetracycline and the trypsin-modified form of the Escherichia coli protein elongation factor Tu have been grown in a form suitable for high-resolution X-ray diffraction analysis. The crystals belong to space group P2(1), with cell dimensions a = 69.7 A, b = 156.4 A, c = 135.4 A and beta = 95.3 degrees, and contain six molecules of the complex per asymmetric unit. The crystals are well ordered and diffract to a resolution of 2.3 A.

Escherichia coli↗

Preliminary crystallographic analysis of a plant pathogenic factor: pectate lyase.

Pectate lyase is a saccharide-binding enzyme that lyitically depolymerizes polypectate in higher plant cell walls, thus causing soft-rot diseases in food crops. A pectate lyase from Erwinia chrysanthemi, EC16 (PLe), crystallizes in the orthorhombic space group P2(1)2(1)2(1) with unit cell dimension of a = 39.0 A, b = 91.0 A and c = 103.4 A. The asymmetric unit consists of one molecule with a molecular mass of 38,118 daltons and the X-ray diffraction extends to a resolution of 1.8 A. The crystals reproducibly grow to large dimensions and are suitable for a high-resolution X-ray diffraction analysis.

Plant Proteins↗

Preparation of Escherichia coli elongation factor Tu-guanosine 5'-triphosphate analogs.

A simple procedure for the bulk preparation of 20 mg of Escherichia coli elongation factor (EF)-Tu-GTP analogs is described. The protocol is based upon the preparation and stabilization of nucleotide-free EF-Tu using an EF-Ts affinity chromatographic resin. The procedure is a general one for the preparation of any GTP analog of EF-Tu.

Binding, Competitive↗

Preliminary X-ray diffraction analysis of crystals of Bacillus thuringiensis toxin, a cell membrane disrupting protein.

Crystals suitable for high resolution X-ray diffraction analysis have been reproducibly grown of the 24,000 Mr protein insect toxin from Bacillus thuringiensis. This protein, which demonstrates substantial insecticidal activity by inserting into phospholipid membranes, crystallizes as long square needles from polyethylene glycol 4000 at neutral pH. The crystals are of space group P4(1) and have cell dimensions of a = b = 33 A and c = 235 A, which suggests to us a predominantly helical motif for the protein's structure.

Bacillus thuringiensis↗

Molecular approaches towards an anti-ras drug.

The ras proteins have intrinsic biochemical properties that are similar to those of the guanine nucleotide binding regulatory proteins (G-proteins). Increased oncogenic potential results from amino acid substitutions that, by altering either the intrinsic GTPase activity or the GDP/GTP exchange rate, would lead to an increase in the level of the ras-GTP complex. The functional similarity between the ras oncogene proteins and the G-proteins suggests several mechanisms for an anti-ras drug. Anti-ras drugs could act either by retarding the formation of the biologically active GTP complex of the protein or by preventing the ras protein from interacting with its yet-to-be-identified target. Mutagenesis studies of Harvey (Ha) ras have identified the residues involved in GDP and GTP binding, the residues that constitute the epitope for the neutralizing antibody Y13-259 (63-73) and a region (32-40) that is required for effector action. Computer modeling combined with immunological characterization has suggested some structural properties of this putative 'effector' region.

Antineoplastic Agents↗

Kinetic studies of Escherichia coli elongation factor Tu-guanosine 5'-triphosphate-aminoacyl-tRNA complexes.

A new method for measuring the dissociation rate of the Escherichia coli elongation factor Tu-GTP--aminoacyl-tRNA complex has been developed and applied to the determination of the dissociation rates of ternary complexes formed between E. coli EF-Tu-GTP and a set of E. coli aminoacyl-tRNAs. The set of aminoacyl-tRNAs includes at least one tRNA coding for each of the 20 amino acids as well as purified isoacceptor tRNA species for arginine, glycine, leucine, lysine, and tyrosine. The results reveal that the dissociation rates vary for each ternary complex. Tu-GTP-Gln-tRNA dissociates the slowest and Tu-GTP-Val-tRNA the fastest of all noninitiator ternary complexes at 4 degrees C, pH 7.4. The equilibrium dissociation constant for Tu-GTP-Thr-tRNA has been determined to be 1.3 (0.4) X 10(-9) M under identical reaction conditions, and the absolute value of the equilibrium dissociation constant has been calculated for 28 ternary complexes from the relative equilibrium dissociation constant ratios previously measured [Louie, A., Ribeiro, N. S., Reid, B. R., & Jurnak, F. (1984) J. Biol. Chem. 259, 5010-5016]. The association rate of each ternary complex has been estimated from the ratio of the dissociation rate relative to the equilibrium dissociation constant. Tu-GTP-His-tRNA associates the fastest and Tu-GTP-Leu-tRNA1Leu the slowest. By inclusion of Tu-GTP-Met-tRNAfMet in the studies, evidence has been obtained that suggests that the initiator ternary complex does not function in the elongation cycle because the dissociation rate of the complex is very fast.

Amino Acids↗

Structure of the GDP domain of EF-Tu and location of the amino acids homologous to ras oncogene proteins.

A 2.7 angstrom resolution x-ray diffraction analysis of a trypsin-modified form of the Escherichia coli elongation factor Tu reveals that the GDP-binding domain has a structure similar to that of other nucleotide-binding proteins. The GDP ligand is located at the COOH-terminal end of the beta sheet and is linked to the protein via a Mg2+ ion salt bridge. The location of the guanine ring is unusual; the purine ring is located on the outer edge of the domain, not deep within a hydrophobic pocket. The amino acids from Pro10 to Arg44 and from Gly59 to Glu190 have been assigned to the electron density with computer graphic techniques, and the resulting model is consistent with all known biochemical data. An analysis of the structure reveals that four regions of the amino acid sequence that are homologous with the family of ras oncogene proteins, termed p21, are located in the vicinity of the GDP-binding site, and most of the invariant amino acids shared by the proteins interact directly with the GDP ligand.

Amino Acid Sequence↗

Induction of elongation factor Tu-GDP crystal polymorphism by polyethylene glycol contaminants.

Trypsin-modified elongation factor (EF-)Tu-GDP from Escherichia coli is known to crystallize in several different unit cells under apparently identical conditions. The crystal polymorphism was investigated and found to be correlated with the source of polyethylene glycol used in the crystallization procedure. The use of highly purified polyethylene glycol promoted the growth of a new crystal form belonging to space group P2(1)2(1)2(1) with cell dimensions of a = 71.9 A, b = 74.7 A, c = 170.9 A and two molecules per asymmetric unit. In extensive crystallization trials, substances that typically contaminate commercial preparations of polyethylene glycol were screened. The final results show that the presence of the divalent anions, HPO4(2-) or SO4(2-), at different concentrations induce the growth of two known crystal forms belonging to space groups C222(1) and P4(3)2(1)2. The relevancy of the findings is discussed.

Crystallization↗

Effect of trypsin modification of the Escherichia coli elongation factor Tu on the ternary complex with aminoacyl-tRNA.

The ribonuclease resistance assay has been used to probe the effect of trypsin modification of the Escherichia coli elongation factor Tu X GTP on the interaction with E. coli aminoacyl-tRNAs. First, the equilibrium dissociation constant of the trypsin-modified Tu X GTP X Thr-tRNA complex was determined to be 2.3 (0.1) X 10(-5)M at 4 degrees C, pH 7.4. Second, binding of 17 of 20 noninitiator aminoacyl-tRNAs and four sets of purified isoacceptor tRNAs to the modified protein was measured. At 4 degrees C, the complex stabilities vary 500-fold over the range of aminoacyl-tRNAs, with Gln-tRNA forming the strongest ternary complex and Val-tRNA, the weakest. The results are compared to a similar study of ternary complex formation using intact elongation factor Tu X GTP, and the major differences are discussed. An analysis of both data sets, particularly that for the leucine isoacceptor tRNAs, suggests that the trypsin modification of elongation factor Tu X GTP disrupts a region of protein that is involved with the aminoacyl side chain rather than that of the acceptor stem helix region of the aminoacyl-tRNA.

Amino Acid Sequence↗

Bulk preparation and crystallization of the Escherichia coli elongation factor Tu-Ts complex.

A simple procedure for the preparation of 10-500 mg of the Escherichia coli elongation Tu-Ts complex is described. The protocol is based on the separate purification and quantitation of EF-Tu-GDP and EF-Ts, followed by mixing of equimolar amounts of each protein and removal of the displaced GDP by dialysis. Single crystals grown from the final product have been analyzed by X-ray diffraction techniques. The procedure is also applicable to the bulk preparation and crystallization of the trypsin-modified Tu-Ts complex. Quantitation of the elongation factors by three methods is presented.

Chromatography, Gel↗

Elongation factor Tu ternary complex binds to small ribosomal subunits in a functionally active state.

A complex between elongation factor Tu (EF-Tu), GTP, phenylalanyl-tRNA (Phe-tRNA), oligo(uridylic acid) [oligo(U)], and the 30S ribosomal subunit of Escherichia coli has been formed and isolated. Binding of the EF-Tu complex appears to be at the functionally active 30S site, by all biochemical criteria that were examined. The complex can be isolated with 0.25-0.5 copy of EF-Tu bound per ribosome. The binding is dependent upon the presence of both the aminoacyl-tRNA and the cognate messenger RNA. Addition of 50S subunits to the preformed 30S-EF-Tu-GTP-Phe-tRNA-oligo(U) complex ("30S-EF-Tu complex") causes a rapid hydrolysis of GTP. This hydrolysis is coordinated with the formation of 70S ribosomes and the release of EF-Tu. Both the release of EF-Tu and the hydrolysis of GTP are stoichiometric with the amount of added 50S subunits. 70S ribosomes, in contrast to 50S subunits, neither release EF-Tu nor rapidly hydrolyze GTP when added to the 30S-EF-Tu complexes. The inability of 70S ribosomes to react with the 30S-EF-Tu complex argues that the 30S-EF-Tu complex does not dissociate prior to reaction with the 50S subunit. The requirements of the 30S reaction for Phe-tRNA and oligo(U) and the consequences of the addition of 50S subunits resemble the reaction of EF-Tu with 70S ribosomes, although EF-Tu binding to isolated 30S subunits does not occur during the elongation microcycle. This suggests that the EF-Tu ternary complex binds to isolated 30S subunits at the same 30S site that is occupied during ternary complex interaction with the 70S ribosome.(ABSTRACT TRUNCATED AT 250 WORDS)

Escherichia coli↗