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Structure and mechanism of action of a cofactor-dependent phosphoglycerate mutase homolog from Bacillus stearothermophilus with broad specificity phosphatase activity.

The crystal structure of Bacillus stearothermophilus PhoE (originally termed YhfR), a broad specificity monomeric phosphatase with a molecular mass of approximately 24 kDa, has been solved at 2.3 A resolution in order to investigate its structure and function. PhoE, already identified as a homolog of a cofactor-dependent phosphoglycerate mutase, shares with the latter an alpha/beta/alpha sandwich structure spanning, as a structural excursion, a smaller subdomain composed of two alpha-helices and one short beta-strand. The active site contains residues from both the alpha/beta/alpha sandwich and the sub-domain. With the exception of the hydrophilic catalytic machinery conserved throughout the cofactor-dependent phosphoglycerate mutase family, the active-site cleft is strikingly hydrophobic. Docking studies with two diverse, favored substrates show that 3-phosphoglycerate may bind to the catalytic core, while alpha-napthylphosphate binding also involves the hydrophobic portion of the active-site cleft. Combining a highly favorable phospho group binding site common to these substrate binding modes and data from related enzymes, a catalytic mechanism can be proposed that involves formation of a phosphohistidine intermediate on His10 and likely acid-base behavior of Glu83. Other structural factors contributing to the broad substrate specificity of PhoE can be identified. The dynamic independence of the subdomain may enable the active-site cleft to accommodate substrates of different sizes, although similar motions are present in simulations of cofactor-dependent phosphoglycerate mutases, perhaps favoring a more general functional role. A significant number of entries in protein sequence databases, particularly from unfinished microbial genomes, are more similar to PhoE than to cofactor-dependent phosphoglycerate mutases or to fructose-2,6-bisphosphatases. This PhoE structure will therefore serve as a valuable basis for inference of structural and functional characteristics of these proteins.

Amino Acid Sequence↗

Crystallization and preliminary X-ray crystallographic study of the ribosomal protein S7 from Bacillus stearothermophilus.

Overproduction and crystallization of Bacillus stearothermophilus ribosomal protein S7 (BstS7), a primary 16S rRNA binding protein and also a translational repressor protein, have been performed to analyze its three-dimensional structure by X-ray crystallography. Ribosomal protein BstS7 was expressed in the cytoplasmic fraction of the E. coli cells and purified to homogeneity. This recombinant BstS7 was used to produce crystals with P2(1) symmetry that diffracted to 2.5 A resolution which are suitable for high-resolution X-ray crystallographic analysis.

Crystallization↗

Expression, purification, and crystallization of two isozymes of 6-phosphoglucose isomerase of Bacillus stearothermophilus.

Two isozymes of 6-phosphoglucose isomerase (phosphoglucose isomerase A & phosphoglucose isomerase B), isolated from Bacillus stearothermophilus, have been overexpressed in Escherichia coli strain DF2145 and purified to homogeneity. Crystals of both isozymes have been obtained by the vapor diffusion method. The crystals of phosphoglucose isomerase A have unit cell dimensions a = b = 132.0 A, c = 183.6 A, and diffract to about 2.8 A resolution. An analysis of the reflection data indicates that the crystal system is hexagonal, space group P6122 or P6522. The crystals of phosphoglucose isomerase B complexed with 6-phosphogluconate belong to the orthorhombic space group I222 (or I212121), with cell dimensions a = 75.1 A, b = 95.7 A, c = 171.5 A, and diffract to a resolution of 2.3 A. These crystals promise to yield more detail for the substrate recognition and higher resolution structures of 6-phosphoglucose isomerase.

Crystallization↗

Crystallization and preliminary X-ray crystallographic study of a 23S rRNA binding domain of the ribosomal protein L2 from Bacillus stearothermophilus.

Ribosomal protein L2 from Bacillus stearothermophilus, a single polypeptide chain with 275 amino acid residues, is a primary 23S rRNA-binding protein in the large ribosomal subunit. Crystals of a 23S rRNA binding domain (BstL2-RBD: positions 60-201) of the ribosomal protein L2 from B. stearothermophilus overexpressed in Escherichia coli have been grown in 0.1 M MES (pH 6.5) containing 15% polyethylene glycol 20 000. The crystals diffract to 2.3-A resolution on a synchrotron X-ray source. The crystal belongs to the space group P1 and the unit cell axes are a = 28.05, b = 36.20, c = 69.74 A, alpha = 99.58 degrees, beta = 95.86 degrees, and gamma = 102.62 degrees. There are two molecules of the BstL2-RBD in the asymmetric unit.

Bacterial Proteins↗

High-resolution crystals of the HU mutant K38N from Bacillus stearothermophilus.

The DNA-binding protein HU is ubiquitous in the prokaryotic cell. It is a major protein component of isolated nucleoids and is believed to control the tertiary structure of prokaryotic DNA. The Bacillus stearothermophilus HU (BstHU) mutants obtained by mutagenesis have been investigated. Crystallization experiments of BstHU-K38N (Lys38 is substituted with Asn) resulted in two forms of crystals suitable for high-resolution x-ray analysis. The first form belongs to the monoclinic space group C2 with unit-cell dimensions of a = 90.1 A, b = 43.5 A, c = 63.7 A, and beta = 135.1 degrees, and it diffracts x rays to 1.5-A resolution. The second form belongs to the tetragonal space group I41 with a = b = 62.6 A and c = 43.3 A, and it diffracts up to 1.8-A resolution.

Bacterial Proteins↗

Structural studies on a 2,3-diphosphoglycerate independent phosphoglycerate mutase from Bacillus stearothermophilus.

Phosphoglycerate mutase (PGM), an important enzyme in the glycolytic pathway, catalyzes the transfer of a phosphate group between the 2 and the 3 positions of glyceric acid. The gene coding for the 2, 3-diphosphoglycerate independent monomeric PGM from Bacillus stearothermophilus (57 kDa), whose activity is extremely pH sensitive and has an absolute and specific requirement for Mn2+, has been cloned and the enzyme overexpressed and purified to homogeneity. Circular dichroism studies showed at most only small secondary structure changes in the enzyme upon binding to Mn2+ or its 3-phosphoglycerate substrate, but thermal unfolding analyses revealed that Mn2+ but not 3-phosphoglycerate caused a large increase in the enzyme's stability. Diffraction-quality crystals of the enzyme were obtained at neutral pH in the presence of 3-phosphoglyceric acid with ammonium sulfate as the precipitating agent; these crystals diffract X rays to beyond 2.5-A resolution and belong to the orthorhombic space group C2221 with unit cell dimensions, a = 58.42, b = 206.08, c = 124.87 A, and alpha = beta = gamma = 90.0 degrees. The selenomethionyl version of the B. stearothermophilus protein has also been overexpressed, purified, and crystallized. Employing these crystals, the determination of the three-dimensional structure of this PGM by the multiwavelength anomalous dispersion method is in progress.

2,3-Diphosphoglycerate↗

Structural characterization of penicillin-binding protein-related factor A (PrfA) from Bacillus species.

The prfA genes of Bacillus stearothermophilus and Bacillus subtilis are in an operon downstream of the ponA gene encoding penicillin-binding protein 1 (PBP1), a major enzyme involved in peptidoglycan synthesis. The specific function of the 23- to 24-kDa PrfA protein is unknown but this protein plays some role in nucleoid segregation and the functions of PrfA and PBP1 are interrelated. We overexpressed B. stearothermophilus and B. subtilis PrfA in Escherichia coli and purified the proteins to homogeneity by cation exchange and gel filtration chromatography. The protein is a monomer in solution, and circular dichroism spectroscopy revealed an abundance of beta-sheet secondary structure. Crystals of B. stearothermophilus PrfA were also obtained and diffracted X-rays to 1.8 A resolution.

Bacillus subtilis↗

On two transposable elements from Bacillus stearothermophilus.

Two transposable elements, IS5376 and IS5377, were identified in the thermophile Bacillus stearothermophilus CU21 based upon the following criteria: (1) both were found to appear on different plasmids introduced into the same host CU21; (2) signals of homology were found between the genomic DNA of CU21 and each of them; (3) different numbers of Southern hybridization bands were found for the genomic DNA of different strains of B. stearothermophilus; and (4) characteristic inverted repeats at both ends and direct repeats of the target DNA adjacent to them were found for both IS5376 and IS5377. Two open reading frames (ORFs) were detected for IS5376 and one for IS5377. The putative coding products of the ORFs are homologous to those of known ISs from mesophiles and are considered to be transposases. The results of analyses of nucleotide sequence and the deduced amino acid sequence suggest that IS5376 is a member of the IS21 family and that IS5377 is a member of the IS4 family.

Amino Acid Sequence↗

Novel insertion sequence-like element IS982 in lactococci.

A novel insertion sequence-like (IS) element, designated IS982, was found on the lactose plasmid, pSK11L, from Lactococcus lactis subsp. cremoris SK11 and was located between the origin of replication and the oligopeptide transport gene cluster. The 1003-base pair (bp) IS982 was flanked by 18-bp perfect inverted repeats. IS982 contained an open reading frame encoding a putative transposase of 296 amino acids. An almost identical IS-like element (99% DNA sequence identity) was cloned and partially sequenced from the chromosome of Lactococcus lactis subsp. cremoris Wg2 with 17-bp perfect inverted repeats. Southern analysis indicated that in 12 lactococcal strains examined, IS982 was present with copy numbers ranging from 1 to at least 20. IS982 displayed sequence homology to the putative IS element RSBst-alpha from Bacillus stearothermophilus CU21, IS982 and RSBst-alpha were not related to other known insertion sequences and may represent a new family of IS elements.

Amino Acid Sequence↗

Purification procedure for bacterial translational initiation factors IF2 and IF3.

In bacteria the initiation of protein synthesis is a complex phenomenon in which specific proteins, termed initiation factors (IFs) IF1, IF2, and IF3, are involved. Notwithstanding the progress made in understanding their functions, the precise molecular mechanisms of action of these factors remain somewhat obscure. One reason for this lack of knowledge is the difficulty involved in purifying sufficient quantities of these proteins. We have developed a new procedure for purification of IFs from recombinant Escherichia coli strains producing high levels of E. coli IF3 and Bacillus stearothermophilus IF2. This new procedure is quicker than previous methods, easily scaled up to large volumes, and can be used, with only minor modifications, for different IFs. This new purification method consists essentially of one chromatographic (FPLC) separation on an ion-exchange resin (S-Sepharose fast-flow or Mono-S HR). Using this procedure we have been able to obtain chromatographically pure and biologically active preparations of both IF2 and IF3.

Bacterial Proteins↗

Purification and characterization of the highly thermostable proteases from Bacillus stearothermophilus TLS33.

Three thermostable proteases, designated S, N, and B, are extracellular enzymes produced by Bacillus stearothermophilus strain TLS33. They were purified by lysine affinity chromatography, strong anion exchange Q HyperD chromatography, and Ultrogel AcA44 gel filtration. The molecular masses of the enzymes determined by SDS-PAGE and zymography were approximately 36, 53, and 71 kDa, respectively. Thermostable protease S bound strongly to the lysine affinity column and could be purified by this single step. The optimum pH values of proteases S, N, and B were shown to be 8.5, 7.5, and 7.0, respectively. The maximum activities for the enzymes were at 70, 85, and 90 degrees C, respectively. Proteases S, N, and B at pH 7.0 in the presence of 5 mM CaCl(2) retained half their activities after 30 min at 72, 78, and 90 degrees C, respectively. All three thermostable proteases were strongly inhibited by the metal chelators EDTA and 1,10-phenanthroline, and the proteolytic activities were restored by addition of ZnCl(2). They can thus be classified as Zn(2+) metalloproteases. The cleavage specificities of proteases S, N, and B on a 30-residue synthetic peptide from pro-BPN' subtilisin were Tyr-Ile, Phe-Lys, and Gly-Phe, respectively.

Amino Acid Sequence↗

Optimization of a thermostable lipase from Bacillus stearothermophilus P1: overexpression, purification, and characterization.

An expression library was generated from a partial NcoI and HindIII digest of genomic DNA from the thermophilic bacterium, Bacillus stearothermophilus P1. The DNA fragments were cloned into the expression vector pQE-60 and transformed into Escherichia coli M15[EP4]. Sequence analysis of a lipase gene showed an open reading frame of 1254 nucleotides coding a 29-amino-acid signal sequence and a mature sequence of 388 amino acids. The expressed lipase was isolated and purified to homogeneity in a single chromatographic step. The molecular mass of the lipase was determined to be approximately 43 kDa by SDS-PAGE and mass spectrometry. The purified lipase had an optimum pH of 8.5 and showed maximal activity at 55 degrees C. It was highly stable in the temperature range of 30-65 degrees C. The highest activity was found with p-nitrophenyl ester-caprate as the synthetic substrate and tricaprylin as the triacylglycerol. Its activity was strongly inhibited by 10 mM phenylmethanesulfonyl fluoride and 1-hexadecanesulfonyl chloride, indicating that it contains a serine residue which plays a key role in the catalytic mechanism. In addition, it was stable for 1 h at 37 degrees C in 0.1% Chaps and Triton X-100.

Base Sequence↗

Affinity extraction of dye- and metal ion-binding proteins in polyvinylpyrrolidone-based aqueous two-phase system.

Affinity extraction of dye- and metal ion-binding proteins, respectively, in a polyvinylpyrrolidone (PVP40)-Reppal PES 100 two-phase system was investigated. Due to the ability of PVP to complex azo dyes and inorganic ions, covalent coupling of the ligands was not essential. Cibacron Blue F3GA was used as the ligand for extraction of lactate dehydrogenase (LDH) from porcine muscle, while copper ions were used for extraction of B. stearothermophilus LDH with a fusion tag of six histidine residues (His6-LDH) from recombinant Escherichia coli homogenate. The binding strength of the enzymes to their respective ligands was only slightly reduced in the presence of PVP. The partition coefficient of Cibacron Blue and Cu2+ ions in the two-phase systems composed of different concentrations of PVP and Reppal was in the range of 20-30, with maximal partitioning being observed in the 17% (w/w) PVP40-10% Reppal PES100 system. Only a minor leakage of the ligands to the bottom phase was observed with time. The partitioning of porcine LDH to the PVP phase was increased 100-fold, and a maximal recovery of 89% was obtained in the two-phase system loaded with 0.2% (w/w) Cibacron Blue. The enzyme was quantitatively recovered with further purification from the PVP-dye phase using a secondary extraction step with 170 mM phosphate or alternatively with 100 mM phosphate containing NADH or NaCl. A more than 10-fold increase in the partition coefficient of His6-LDH was achieved in the two-phase system loaded with 0.4% (w/w) copper sulfate compared to the system lacking the metal ions. The enzyme was also back-extracted into phosphate phase in the presence of imidazole.

Animals↗

Production of alpha-terpineol from Escherichia coli cells expressing thermostable limonene hydratase.

The genes encoding a thermostable limonene hydratase have been located on a cloned fragment in Escherichia coli conferring growth on limonene and production of the monoterpenes perillyl alcohol and alpha-terpineol. Whole cell bioconversion studies at elevated temperature employing both an aqueous phase and neat limonene phase demonstrated significant production of alpha-terpineol with additional production of carvone.

Bioreactors↗

Chemometric applications of thermally produced compounds as time-temperature integrators in aseptic processing of particulate foods.

The chemometric principle was used to derive a guideline for obtaining a simple "yes or no" answer about the sterility of food particulates heated at aseptic processing temperatures. A quadratic temperature pulse model was used to estimate bacterial destruction from the fractional yield of thermally produced chemical marker compounds (2,3-dihydro-3,5-dihydroxy-6-methyl-4(H)-pyran-4-one, M-1, and 4-hydroxy-5-methyl-3(2H)-furanone, M-2) and the rate constants and the activation energies of the chemical and bacterial systems. The model yielded a conservative estimate of lethality at the center of meat-balls heated under different time-temperature conditions. A scheme for determining the minimum marker yield for a designated Fo-value is provided.

Food Analysis↗

Thermal properties of glyceraldehyde 3-phosphate dehydrogenase from Escherichia coli.

The molecular properties of glyceraldehyde 3-phosphate dehydrogenase from E. coli have been evaluated by circular dichroism and fluorescence emission spectroscopy measurements, with the purpose of studying the structural properties which are relevant for a comparison with the enzyme from the obligate thermophile Bacillus stearothermophilus. The enzyme is moderately resistant to heat treatment, being pratically stable when treated for 10 min at 50 degrees C and completely inactivated when heating was performed at 60 degrees C. The secondary structure of the E. coli GPDH appears to be predominatly beta-structure as judged by circular dichroism, showing a negative band centered at about 219 nm. The emission fluorescence of the enzyme shows a maximum at 333 nm upon excitation at 295 nm. In the native E. coli enzyme the tryptophan residues seem to be buried in a hydrophobic region rather than exposed to a polar environment. The structure of the enzyme did not change up to about 50 degrees C, at which temperature thermal inactivation takes place. Upon denaturation the circular dichronic signal at 219 nm gradually decreases, and a red shift of the emission maximum from 333 nm to ca. 345 nm upon heating is indicative that the native structure of the enzyme is unfolded, the tryptophan being exposed to the solvent medium. Since it has been found that the E. coli GPDH closely resembles in many of its properties the B. stearothermophilus enzyme, this bacterial enzyme seems to be useful for comparision with the thermophilic enzyme in studies of its thermostability.

Circular Dichroism↗