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An outbreak of Achromobacter xylosoxidans related to diagnostic tracer procedures.

In December, 1978, an investigation was undertaken to determine the source of infection in five patients in one hospital with hospital-associated bacteremia due to Achromobacter xylosoxidans. Review of their records showed that each had a diagnostic tracer procedure preceding the bacteremia and that no other procedures were common to all. Further investigation revealed that patients from three other hospitals were studied using diagnostic tracer materials from the index hospital. Five patients with confirmed A. xylosoxidans bacteremia and four suspected cases were identified in these hospitals, and all had a scan before the bacteremia was detected. No other A. xylosoxidans isolates were identified in any of the hospitals in the preceding two years. Although not confirmed, the source appeared to be stored non-bacteriostatic saline. Effective control measures included a sterility testing program and use of pre-packaged single dose vials of saline. Diagnostic tracer studies should be added to the list of procedures known to cause hospital-acquired bacteremias.

Aged↗

Contribution of an imidazole-indole stack to high catalytic potency of a lysine-specific serine protease, Achromobacter protease I.

Achromobacter protease I (API), a lysine-specific serine-protease of the trypsin family, has an aromatic-ring stacking Trp 169-His 210 in close proximity to the reactive site. In order to investigate the role of this novel aromatic stacking, several mutants of the two residues were constructed and their kinetic parameters were determined. Three His 210 mutants showed lower activity by one order of magnitude than the wild-type with a peptide substrate of Ala-Ala-Lys-MCA (4-methylcoumaryl-7-amide), but 30-170% activity towards Val-Leu-Lys-MCA, suggesting that His 210 plays a role in keeping high activity toward various substrates by maintaining the active form of the substrate-binding subsite. Kinetic results of eight Trp 169 variants showed a roughly linear relation between k(cat) or K(m) values and the surface area at residue 169. With increasing size of the side-chain, k(cat) values increased, while K(m) values decreased. A systematic kinetic analysis of the activities of Trp 169 mutants toward Lys-MCA, Ala-Lys-MCA, and Ala-Ala-Lys-MCA peptide substrates revealed that large side-chain, rather than aromaticity, plays an important role in retaining the high catalytic activity of API. Due to the presence of the aromatic stacking, API shows one order of magnitude higher activity than bovine trypsin.

Alcaligenes↗

Purification, staphylolytic activity, and cleavage sites of alpha-lytic protease from Achromobacter lyticus.

Alpha-lytic protease (alp) was purified from a bacteriolytic agent, Achromopeptidase from Achromobacter lyticus M497-1, and has been shown to possess staphylolytic activity. Cleavage sites of this enzyme on the peptidoglycan of Staphylococcus aureus were determined by N-terminal amino acid sequence and amino acid composition analyses. Alp cleaved the N-acetylmuramoyl-L-alanine amide bond, the junction between the polysaccharide and peptide moieties, in addition to the D-Ala-Gly and Gly-Gly peptide bonds, implying that this enzyme recognizes the amino acid of D-configuration at the P1 site and possesses N-acetylmuramoyl-L-alanine amidase activity. However, alp could not cleave the D-Ala-Gly peptide bond in a synthetic peptide, suggesting that this hydrolytic activity of alp is peptidoglycan-specific. The results obtained from different consecutive actions of alp and glycosidase on S. aureus peptidoglycan indicate that the presence of polysaccharide in the peptidoglycan is necessary for the bacteriolytic activity of alp.

Alcaligenes↗

Crystallization and preliminary X-ray studies on pseudoazurin from Achromobacter cycloclastes IAM1013.

New crystals of a blue copper protein, pseudoazurin from denitrifier Achromobacter cycloclastes IAM1013, have been obtained by means of vapor diffusion with ammonium sulfate as a precipitant at pH 6.0 and 4 degrees C. The crystals belong to the orthorhombic system, space group P2(1)2(1)2(1), with unit cell dimensions of a = 56.69(2), b = 61.53(2), and c = 30.20(1) A. The asymmetric unit includes one molecule of pseudoazurin with a Vm value of 2.04 A3/Da. The crystals are so stable against X-ray irradiation that a complete data set up to 1.54 A has been collected using a single native crystal. Solution of the structure was performed by means of the Patterson search techniques, and the current crystallographic R-factor is 17.5% at 3.0 A resolution. Refinement at higher resolution is in progress.

Alcaligenes↗

Structure of azurin from Achromobacter xylosoxidans NCIB11015 at 2.5 A resolution.

The crystal structure of azurin from a denitrifying bacterium, Achromobacter xylosoxidans NCIB11015, has been refined at 2.5 A resolution using diffraction data obtained by means of synchrotron radiation at KEK. Crystals suitable for X-ray experiment were obtained by the macro-seeding method and an intensity data were obtained on imaging plates mounted on a Weissenberg camera (Rmerge = 0.09). The initial model was obtained by the molecular replacement method using the structure of azurin from Alcaligenes denitrificans NCTC8582 as a starting model. The structure was refined by molecular dynamics optimization and the restrained least-squares method to a crystallographic R-value of 0.205. However, the current model gave an electron-density of the side-chain regions of several residues close to the N-terminus quite different from those expected from the amino acid sequences reported. Very recently, two kinds of azurins (Az-I and Az-II) were isolated from this bacterium by a slightly modified purification method and have been characterized and found to have different CD spectra. On analysis of amino acid sequences around the N-terminus, the second azurin (Az-II) was proved to be a new type of azurin in this bacterium. It was consequently revealed that the current model corresponds to a new type of azurin because of the complete agreement between the electron-density and the amino acid sequence of the newly determined 20 residues from the N-terminus. Determination of the whole amino acid sequence of this azurin and further refinement are in progress.

Alcaligenes↗

Achromobacter cycloclastes nitrite reductase. The function of copper, amino acid composition, and ESR spectra.

1. Dialysis against cyanide at pH 7 of Achromobacter cycloclastes nitrite reductase [EC 1.7.99.3] of a dissimilatory type led to the removal of about 50% of the copper from the enzyme molecule, with a concomitant decrease of the enzymatic activities. It was inferred that enzyme-bound copper atoms play an essential role in the catalytic activities of the enzyme. 2. The amino acid composition of the enzyme was determined after acid hydrolysis. 3. ESR spectra of the frozen solution and lyophilized powder of the nitrite reductase predominantly showed the presence of two kinds of copper: Type 1 Cu2+, which had narrow and sharp hyperfine splitting, and Type 2 Cu2+, which had broader hyperfine splitting. The bond between the oxidized enzyme and nitrite seems to be ionic.

Alcaligenes↗

Purification and some properties of cytochrome c' from a strain of Achromobacter xylosoxidans.

Cytochrome c' was crystallized from Achromobacter xylosoxidans GIFU 543. The cytochrome was a basic protein and its molecular weight was 28,000. The pyridine ferrohemochrome showed absorption peaks at 415, 521, and 551 nm. The absorption spectra of the oxidized and reduced forms at neutral pH were almost the same as those of other cytochromes c' reported already. The reduced cytochrome c' reacted with CO and NO, and the NO complex showed a characteristic absorption spectrum. The midpoint redox potential of the hemoprotein was measured to be + 110 mV at pH 7.2.

Alcaligenes↗

Phage growth characteristics on stationary phase Achromobacter cells.

The growth characteristics of alpha3a bacteriophage on stationary phase Achromobacter strain 14 are described. Phage alpha3a growth on stationary phase cells is characterized by a long and variable latent period of 6 to 9 h and an increased burst size of 710 p.f.u./cell as compared with 153 p.f.u./cell in exponential wild type cells. During the latent period the infected cells are very sensitive to changes in growth conditions and in particular, dilution. Pre-conditioning of the bacterial cells by allowing them to stand for 24 h after shaking for 3 days is an important aspect of the stationary phase phage growth system. Cells which have been allowed to stand retain the ability to be infected and to support phage growth for at least 16 days. Shaking cultures gradually lose the ability to support phage growth but the phage can persist in the host cell for 10 days until removal from shaking when the lytic cycle can proceed after allowing the cultures to stand.

Adsorption↗

Crystallization and preliminary X-ray diffraction analysis of two lysinal derivatives of Achromobacter protease I.

Two crystal forms of lysinal derivatives of Achromobacter protease I have been obtained. The first, modified by benzyloxycarbonyl-Val-lysinal crystallizes in the monoclinic space group P2(1) with unit-cell dimensions of a = 39.6, b = 71.2, c = 45.6 A and beta = 98.4 degrees. The second, modified by benzyloxycarbonyl-Leu-Leu-lysinal crystallizes in the orthorhombic space group I222 (or I2(1)2(1)2(1)) with unit-cell dimensions of a = 98.7, b = 102.2 and c = 55.8 A. The space groups and the unit-cell dimensions of the present two lysinal derivatives are different to those of the protease and TLCK- modified one. The space group of the protease is P1 with cell dimensions a = 39.53, b = 40.34, c = 43.92 A, alpha = 114.81, beta = 113.75 and gamma = 74.00 degrees and that of the TLCK-modified one is also P1 with cell dimensions of a = 37.30, b = 42.74, c = 48.02 A, alpha = 120.10, beta = 112.81 and gamma = 68.54 degrees. Diffraction to 1.9 A resolution for the Val-lysinal modified crystal and to 2.2 A resolution for the Leu-Leu-lysinal modified crystal has been observed using a rotating-anode X-ray generator. Full structure determinations of these lysinal-modified protease crystals may lead to an understanding of the molecular basis of enzyme-substrate interactions in the catalytic process of this protease.

Journal Article↗

Crystalline L-histidine ammonia-lyase of Achromobacter liquidum. Crystallization and enzymic properties.

Crystalline L-histidine ammonia-lyase of Achromobacter liquidum was prepared with a 24% recovery of the activity. The specific activity of the pure enzyme (63 mumol of urocanic acid min-1 mg-1) is similar to those so far reported for the enzyme from other sources. The purified enzyme appeared to be homogeneous by analytical disc electrophoresis and isoelectric focusing (pI = 4.95). The molecular weight determined by Sephadex G-200 gel filtration is 200000. The optimum pH is 8.2, and the optimum temperature is 50 degrees C. The enzyme showed strict specificity to L-histidine (Km = 3.6 mM). Several histidine derivatives are not susceptible to the enzyme but do inhibit the enzyme activity competitively; the most effective inhibitors are L-histidine methyl ester (Ki = 3.66 mM) and beta-imidazole lactic acid (Ki = 3.84 mM). L-Histidine hydrazide (Ki = 36 mM) and imidazole (Ki = 6 mM) noncompetitively inhibited the enzyme EDTA markedly inhibited enzyme activity and this inhibition were reversed by divalent metal ions such as Mn2+, Co2+ Zn2+, Ni2+, Mg2+, and Ca2+. These results suggest that the presence of divalent metal ions is necessary for the catalytic activity of histidine ammonia-lyase. Sodium borohydride and hydrogen peroxide inhibited the enzyme activity.

Alcaligenes↗

Investigations of the structure of 3-methylcrotonyl-CoA carboxylase from Achromobacter.

It was shown by gel electrophoresis in sodium dodecylsulphate solution that 3-methylcrotonyl-CoA carboxylase from Achromobacter IVS is composed of two different subunits with molecular weights of about 78000 and 96000, respectively. The biotin is bound to the heavier subunit. It was previously found that 3-methylcrotonyl-CoA carboxylase contains four biotin molecules per complex. A complex composed of four of each subunit would thus have a molecular weight of about 700000. This is compatible with the molecular weight of 760000 determined earlier by analytical ultracentrifugation. Both subunits were isolated preparatively. As the subunits, unlike the complex, are very sensitive to oxygen, special precautions had to be taken during isolation. The biotin-containing subunit was isolated by chromatography on DEAE-cellulose in 5 M urea. It no longer catalyzed the overall reaction, yet could still carboxylate free biotin. The biotin-free subunit was separated after dissociation of the enzyme by three-days' dialysis at pH 9.8 under nitrogen. On chromatography over a Sepharose-bound avidin column, the biotin-subunit was fixed and the biotin-free subunit was eluted unretarded. The latter subunit showed no enzymic activity. After the addition of the biotin-containing subunit, overall activity was regenerated. The speed of reassociation is very much enhanced by 3-methylcrotonyl-CoA. It was shown by reassociation experiments under different conditions that probably an initial complex, AxBy is formed, possessing a binding site for 3-methylcrotonyl-CoA. Upon the binding of this substrate the conformation may be changed to a form favourable for reconstitution. Finally, the structures of biotin enzymes from different sources are compared. In the course of evolution there is a tendency toward integration of the different constituent proteins into only one polypeptide chain.

Alcaligenes↗

Decreased dissociation of the 3-methylcrotonyl-CoA carboxylase complex from Achromobacter in the presence of 3-methylcrotonyl-CoA. A possible regulatory mechanism for the intracellular degradation of the enzyme.

By inactivation of different concentrations of 3-methylcrotonyl-CoA carboxylase from Achromobacter IVS with a fixed concentration of iodoacetamide, it was demonstrated that the degree of dissociation of the complex is considerably lower in the presence of 3-methylcrotonyl-CoA. ATP did not produce this effect. This property could serve to regulate the intracellular degradation of the enzyme, if the dissociated subunits were attacked preferentially.

Alcaligenes↗

New thiol inhibitor of Achromobacter iophagus collagenase. Specificity of the enzyme's S3' subsite.

New synthetic mercaptotripeptides (HS-CH2-CH2-CO-Pro-Yaa) which inhibit Achromobacter iophagus collagenase were produced in order to obtain more powerful bacterial collagenase inhibitors than currently available, and to investigate the specificity of the S3' subsite of the enzyme. Since similar binding constants were found for inhibitors carrying uncharged residues of various sizes in the P3' position (Yaa = Ala, Leu, Phe, Pro, Hyp) steric hindrance at the collagenase S3' appears relatively limited. The compound (HS-CH2-CH2-CO-Pro-Arg), which carries an arginine residue in the position P3' and had the highest inhibition constant of the series tested (Ki = 0.5 microM), proved to be the strongest inhibitor so far reported in the literature. The weakest in the present series was the compound (HS-CH2-CH2-CO-Pro-Asp) which carries an aspartic residue in position P3' and had a Ki = 70 microM. The present work revealed that the charged groups in the P3' position play a key role in the interaction of the inhibitors with the enzyme.

Alcaligenes↗

Spin-equilibrium and heme-ligand alteration in a high-potential monoheme cytochrome (cytochrome c554) from Achromobacter cycloclastes, a denitrifying organism.

A c-type monoheme cytochrome c554 (13 kDa) was isolated from cells of Achromobacter cycloclastes IAM 1013 grown anaerobically as a denitrifier. The visible absorption spectrum indicates the presence of a band at 695 nm characteristic of heme-methionine coordination (low-spin form) coexisting with a minor high-spin form as revealed by the contribution at 630 nm. Magnetic susceptibility measurements support the existence of a small contribution of a high-spin form at all pH values, attaining a minimum at intermediate pH values. The mid-point redox potential determined by visible spectroscopy at pH 7.2 is +150 mV. The pH-dependent spin equilibrum and other relevant structural features were studied by 300-MHz 1H-NMR spectroscopy. In the oxidized form, the 1H-NMR spectrum shows pH dependence with pKa values at 5.0 and 8.9. According to these pKa values, three forms designated as I, II and III can be attributed to cytochrome c554. Forms I and II predominate at low pH values, and the 1H-NMR spectra reveal heme methyl proton resonances between 40 ppm and 22 ppm. These forms have a methionyl residue as a sixth ligand, and C6 methyl group of the bound methionine was identified in the low-field region of the NMR spectra. Above pH 9.6, form III predominates and the 1H-NMR spectrum is characterized by down-field hyperfine-shifted heme methyl proton resonances between 29 ppm and 22 ppm. Two new resonances are observed at congruent to 66 ppm and 54 ppm, and are taken as indicative of a new type of heme coordination (probably a lysine residue). These pH-dependent features of the 1H-NMR spectra are discussed in terms of the heme environment structure. The chemical shifts of the methyl resonances at different pH values exhibit anti-Curie temperature dependence. In the ferrous state, the 1H-NMR spectrum shows a methyl proton resonance at -3.9 ppm characteristic of methionine axial ligation. The electron-transfer rate between ferric and ferrous forms has been estimated to be smaller than 2 x 10(4) M-1 s-1 at pH 5. EPR spectroscopy was also used to probe the ferric heme environment. A prominent signal at gmax congruent to 3.58 and the overall lineshape of the spectrum indicate an almost axial heme environment.

Alcaligenes↗

Isolation and characterization of an Achromobacter xylosoxidans strain B3 and other bacteria capable to degrade the synthetic chelating agent iminodisuccinate.

Three bacterial strains were isolated, which used the synthetic chelating agent iminodisuccinate (IDS) as sole carbon source for growth in mineral salts media (MSM). Taxonomic analysis and 16S rDNA sequence analysis identified one of these isolates (B3), which was isolated from sewage sludge, as a strain of Achromobacter xylosoxidans subsp. xylosoxidans. It exhibited a doubling time of approximately 3 h in liquid MSM supplemented with IDS and grew even in the presence of 1.0% (w/v) IDS. Since photometric and high performance liquid chromatography analysis showed that IDS, which came onto the market only recently as an alternative for ethylenediaminetetraacetate, was completely degraded by axenic cultures of bacteria; it will probably be readily degraded in the environment.

Alcaligenes↗

[Two cases of Achromobacter xylosoxidans sepsis].

Achromobacter xylosoxidans is a gram-negative bacterium whose natural habitat has not been clearly defined. It has been isolated from ear discharge and the large intestine of humans and from various hospital or environmental water sources. Infection with A. xylosoxidans in humans has been documented, and resulting illnesses include meningitis, pneumonia, cholecystitis, peritonitis and urinary tract infection. Bacteremia due to A. xylosoxidans is rare, and little information on treatment is available. Two cases of bacteremia due to A. xylosoxidans in patients with hemapoietic malignancies are reported herein. Case 1 involved a 70-yr. male whose clinical diagnosis was IgA lambda-type plasmacytoma. Case 2 involved 72-yr. male whose clinical diagnosis was acute lymphatic leukemia (L2). Both patients had been catheterized. Neutropenia was noted and the white blood cell counts were 20/microliter in case 1 and 35/microliter in case 2 when A. xylosoxidans was isolated from the blood culture. We suggest that bacteremia due to A. xylosoxidans may have been related to the presence of the catheter and neutropenia.

Aged↗

The 2.3 angstrom X-ray structure of nitrite reductase from Achromobacter cycloclastes.

The three-dimensional crystal structure of the copper-containing nitrite reductase (NIR) from Achromobacter cycloclastes has been determined to 2.3 angstrom (A) resolution by isomorphous replacement. The monomer has two Greek key beta-barrel domains similar to that of plastocyanin and contains two copper sites. The enzyme is a trimer both in the crystal and in solution. The two copper atoms in the monomer comprise one type I copper site (Cu-I; two His, one Cys, and one Met ligands) and one putative type II copper site (Cu-II; three His and one solvent ligands). Although ligated by adjacent amino acids Cu-I and Cu-II are approximately 12.5 A apart. Cu-II is bound with nearly perfect tetrahedral geometry by residues not within a single monomer, but from each of two monomers of the trimer. The Cu-II site is at the bottom of a 12 A deep solvent channel and is the site to which the substrate (NO2-) binds, as evidenced by difference density maps of substrate-soaked and native crystals.

Alcaligenes↗

l-Tryptophan Production by Achromobacter liquidum.

Conditions for the production of tryptophanase from Achromobacter liquidum and for the conversion of l-serine and indole to l-tryptophan were studied. The enzyme could be produced in amounts as great as 0.750 U/ml (degradation) and 0.294 U/ml (synthesis) by shaking cultures at 30 degrees C in a medium containing dextrin, yeast extract, l-tryptophan, and l-glutamic acid. l-Tryptophan was produced most efficiently by shaking the cells at 37 degrees C in a reaction mixture containing 60 mg of l-serine per ml, 60 mg of indole per ml, and 0.5 mM pyridoxal phosphate. After 3 days, 96 mg of l-tryptophan per ml was formed, and l-tryptophan was easily isolated to 85.4% yield by concentration of the reaction mixture.

Journal Article↗