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The C-terminal segment is essential for maintaining the quaternary structure and enzyme activity of the nitric oxide forming nitrite reductase from Achromobacter cycloclastes.

We have constructed and expressed a series of mutated nitrite reductase (NIR) mutants based on the sequence of NIR from Achromobacter cycloclastes. Deleting a pentapeptide, an undecapeptide, or a heptadecapeptide from the C-terminus of NIR resulted in a series of C-terminal deletion mutated proteins designated as NIR-5, NIR-11, and NIR-17, respectively. A C-terminally extended mutated protein, NIR+8, was also produced, which contains an extra octapeptide attached to the C-terminus of the wild-type NIR. An SDS-PAGE system using tris-tricine buffer could retain the native NIR in its trimeric form, thus offering a convenient method to check the quaternary structure of NIR analogs. By using this system it was found that NIR-5 was maintained as trimer and retained 72% of wild-type enzyme activity. However, both NIR-11 and NIR-17 behaved as monomers in the SDS-PAGE and lost all their enzyme activity. Although NIR+8 maintained its trimeric structure it was enzymatically inactive. These results clearly indicate that the C-terminal undecapeptide is essential for maintaining the quaternary structure as well as the full enzymatic activity, as expected from the X-ray crystallography studies.

Alcaligenes↗

Microassay with the NADH-induced light reaction, technique improved by means of purified enzymes from Achromobacter fischeri.

Purification of a commercial preparation of Achromobacter fischeri was carried out by agarose-suspension electrophoresis and by molecular-sieve chromatography. Both the luciferase and an oxidoreductase, catalyzing reduction of FMN with NADH, were obtained in more than one form. Flavins, liable to interfere with the light production in analytical applications, were present in amounts worthy of consideration, but seem to be firmly bound to protein. The major quantity was found in the enzymatically inactive fractions. In free zone electrophoresis of the main luciferase component, the mobility of the zone containing enzyme activity was calculated to -4.0 X 10(-5) cm2 sec-1 V-1 at 12 degrees C. Fractions of the two enzymes were separated and mixed in different proportions to study how the intensity and time course of NADH-induced light emission can be modified. These experiments disclosed how reaction mixtures will have to be composed in appropriate photokinetic assays, using NADH as measurable product. A regenerating system based on the purified fractions is described. Instead of the light flash, following the consumption of NADH, the light is emitted on a well maintained level, permitting assays with a less elaborate equipment than the one required for the recording of fast reactions.

Chemistry Techniques, Analytical↗

Alkanesulfonate degradation by novel strains of Achromobacter xylosoxidans, Tsukamurella wratislaviensis and Rhodococcus sp., and evidence for an ethanesulfonate monooxygenase in A. xylosoxidans strain AE4.

Novel isolates of Achromobacter xylosoxidans, Tsukamurella wratislaviensis and a Rhodococcus sp. are described. These grew with short-chain alkanesulfonates as their sole source of carbon and energy. T. wratislaviensis strain SB2 grew well with C(3)-C(6) linear alkanesulfonates, isethionate and taurine, Rhodococcus sp. strain CB1 used C(3)-C(10) linear alkanesulfonates, taurine and cysteate, but neither strain grew with ethanesulfonate. In contrast, A. xylosoxidans strain AE4 grew well with ethanesulfonate, making it the first bacterium to be described which can grow with this compound. It also grew with unsubstituted C(3)-C(5) alkanesulfonates and isethionate. Hydrolysis was excluded as a mechanism for alkanesulfonate metabolism in these strains; and evidence is given for a diversity of uptake and desulfonatase systems. We provide evidence for an initial monooxygenase-dependent desulfonation in the metabolism of ethanesulfonate and propanesulfonate by A. xylosoxidans strain AE4.

Actinomycetales↗

Cell-surface collagen-binding protein in the procaryote Achromobacter iophagus.

Collagen and its high-molecular-weight fragments specifically induce an extracellular collagenase (EC 3.4.24.8) in the Gram-negative Achromobacter iophagus. During the induction process the inducer is concentrated on the bacterial outer membrane. Two-dimensional electrophoresis of 125I-labelled outer membrane proteins has shown that, in particular, the amount of one protein which is already present on the surface of non-induced bacteria increases quantitatively when the inducer is added. After 125I-labelling of the cell membrane and its solubilization, the same protein is retained selectively on a gelatin-Sepharose column. It has isoelectric point of 4.9-5.1 and molecular weight of 40000. This molecular weight is close to that of the 35000 of the collagenase subunit. However, their non-identity was proved in three independent ways: upon two-dimensional electrophoresis, only those proteins in the range corresponding to the collagenase dimer (Mr 70000-80000) react with fluorescent anticollagenase antibody system, whereas the spot of the collagen-binding protein (mr 40000) is negative; the solubilized collagen-binding protein is not retained by anticollagenase-Sepharose affinity chromatography; in vivo, it is not protected by anti-collagenase antibodies against lactoperoxidase iodination. A hypothesis for the possible role of the collagen-binding protein in the induction of collagenase is proposed.

Alcaligenes↗

Collagenase production by Achromobacter iophagus.

Achromobacter iophagus produced collagenase (EC 3.4.24.3) when cultured aerobically in buffer containing 5% peptone. The bacterium is non-pathogenic and tests on rabbits indicated that the culture medium was atoxic. The collagenase, which hydrolyzed insoluble and soluble native collagen, was purified by (NH4)2 SO4 precipitation, starch block electrophoresis, and gel filtration. It was shown to be serologically distinct from Clostridium histolyticum collagenase and to have molecular weight and sedimentation coefficient values of approx. 112 000 and 5.3 S, respectively.

Alcaligenes↗

Chemical characterization and study of the autodigestion of pure collagenase from Achromobacter iophagus.

Only one collagenase (EC 3.4.24.3) is produced by the non-pathogenic Achromobacter iophagus strain. The chromatography of the crude enzyme on DE-32 cellulose followed by gel filtration on Sephadex G-100 in the presence of 1 M sodium chloride led to the isolation of a homogeneous enzyme. Its specific activity (1.642 mukat/mg) represents the highest value ever obtained for a bacterial collagenase. The amino acid composition of A. iophagus collagenase differs from that of Clostridium histolyticum mainly in the sulfur-containing amino acids. 1 mol of zinc was found for 1 mol of enzyme of molecular weight 104 000. The autodegradation of the A. iophagus collagenase results in the formation of at least three active fractions which can be separated by preparative polyacrylamide gel electrophoresis as well as rechromatography on DE-32 cellulose. They are active towards the synthetic substrate as well as towards the native collagen. The results of ORD have shown that the digestion of the last one occurs in the helical parts of the substrate.

Alcaligenes↗

Properties of taurine: alpha-ketoglutarate aminotransferase of Achromobacter superficialis. Inactivation and reactivation of enzyme.

The activity of taurine: alpha-ketoglutarate aminotransferase (taurine: 2-oxoglutarate aminotransferase, EC 2.6.1.55) from Achromobacter superficialis is significantly diminished by treatment of the enzyme with (NH4)2SO4 in the course of purification, and recovered by incubation with pyridoxal phosphate at high temperatures such as 60 degrees C. The inactive form of enzyme absorbing at 280 and 345 nm contains 3 mol of pyridoxal phosphate per mol. The activated enzyme contains additional 1 mol of pyridoxal phosphate with a maximum at 430 nm. This peak is shifted to about 400 nm as a shoulder by dialysis of the enzyme, but the activity is not influenced. The inactive form is regarded as a partially resolved form, i.e. a semiapoenzyme. The enzyme catalyzes transamination of various omega-amino aicds with alpha-ketoglutarate, which is the exclusive amino acceptor. Hypotaurine, DL-beta-aminoisobutyrate, beta-alanine and taurine are the preferred amino donors. The apparent Michaelis constants are as follows; taurine 12 mM, hypotaurine 16 mM, DL-beta-aminoisobutyrate 11 mM, beta-alanine 17 mM, alpha ketoglutarate 11 mM and pyridoxal phosphate 5 micron.

Alcaligenes↗

Chemical modifications of Achromobacter collagenase and their influence on the enzymic activity.

A study of the influence of chemical modifications on the activity of Achromobacter iophagus collagenase (EC 3.4.24.8) has led to the following conclusions: a modification of 4 out of 80 COOH groups with carbodiimide led to 90% loss of enzymic activity. A 70% inactivation was found after modification of two tyrosines out of 30 with tetranitromethane. The modification of four to six tryptophans out of 16 with 2-hydroxy-5-nitrobenzyl bromide decreased enzyme activity to 36%. This inactivation is accelerated in the presence of collagen. An increase of reagent/enzyme molar ratio led to a modification of 16 tryptophan residues and denaturation of Acahromobacter collagenase. A modification of two arginines out of 18 with 1,2-cyclohexanedione and eight NH2 groups out of 24 with 2,3-dimethyl maleic anhydride does not change the collagenolytic activity. All NH2 groups become available for 2,3-dimethyl maleic anhydride after dissociation of the dimer. A possible analogy of hydrolytic site of collagenase with that of two other known bacterial metalloproteinases (thermolysin and Bacillus subtilis neutral proteinase (EC 3.4.24.4)) is discussed.

2-Hydroxy-5-nitrobenzyl Bromide↗

Kinetic studies of the copper nitrite reductase from Achromobacter cycloclastes and its interaction with a blue copper protein.

Transient state, burst and steady state kinetics of reactions of the blue copper nitrite reductase (NIR) and blue copper protein from Achromobacter cycloclastes are investigated. The two copper-containing species are reacted with each other and where possible with dithionite, ascorbate and nitrite. Both copper proteins are fully reduced by dithionite with both S2O4(2-) and SO2-. species active. NIR is only partially reduced by ascorbate in an unusual biphasic reaction consistent with complete reduction of type-one copper followed by partial reduction of type-two copper. The rate of reduction of the type-one copper is accelerated using phenazine methosulfate as mediator. Nitrite can oxidize dithionite-reduced NIR but cannot reduce oxidized NIR. Rate constants were determined for all observed reactions.

Alcaligenes↗

Isolation of a high specific activity pink, monomeric nitrous oxide reductase from Achromobacter cycloclastes.

Nitrous oxide reductase from Achromobacter cycloclastes has been purified to homogeneity under aerobic conditions via DEAE-cellulose, phenyl-Sepharose, hydroxyapatite, and Sephacryl S-200 chromatography. It consists of a single polypeptide of MW 72 kDa, and contains 3.8 +/- 0.1 copper atoms per molecule. The enzyme is pink as isolated, yet exhibits a specific activity (86 U/mg) that is ca. 40 times greater than that observed for other N2O reductases under similar conditions. Double integration of the anomalous EPR spectrum at 77K showed the presence of 2.0 +/- 0.1 spins per molecule, implying the presence of EPR-silent copper atoms and/or spin-coupled mixed-valent centers.

Alcaligenes↗

EPR spectra of ferric cytochromes c' from five strains of Achromobacter xylosoxidans at low temperature and their temperature dependence.

The EPR spectra at low temperature (6 K) and their temperature dependence (10-93 K) for five ferric cytochromes c' isolated from chemoheterotrophic bacteria, Achromobacter xylosoxidans NCIB 11015 (formerly Alcaligenes sp. NCIB 11015), GIFU 543, GIFU 1048, GIFU 1051, and GIFU 1764 are reported. The EPR spectral results indicate that the ground state of the heme iron(III) of cytochromes c' from these chemoheterotrophic bacteria can appear to be in an admixed spin state which consists of predominant S = 5/2 with a slight S = 3/2 character. The EPR spectra were compared with those for ferric cytochromes c' from photosynthetic bacteria and the other ferric hemoproteins.

Alcaligenes↗

Purification and properties of alpha-amino-epsilon-caprolactam racemase from Achromobacter obae.

We have purified a unique enzyme, alpha-amino-epsilon-caprolactam racemase 945-fold from an extract of Achromobacter obae by Octyl-Sepharose CL-4B and Thiopropyl-Sepharose 6B and some other chromatographies. The purified enzyme was found homogeneous by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and analytical ultracentrifugation. The enzyme has a monomeric structure with Mr approximately 50000 and a sedimentation coefficient (S20,w) of 4.28 S. The enzyme contains pyridoxal 5'-phosphate as a coenzyme. The pH optimum for the enzyme activity is approximately 9.0. D- and L-alpha-amino-epsilon-caprolactams are the only substrates. The Km values for the D- and L-isomers are, 8 and 6 mM, respectively.

Alcaligenes↗

Evidence for a NO-rebound mechanism for production of N2O from nitrite by the copper-containing nitrite reductase from Achromobacter cycloclastes.

Reduction of NO2- by the Cu-containing nitrite reductase from Achromobacter cycloclastes produces NO as the primary product initially, but as NO accumulates, NO production levels-off and N2O production becomes significant. Reaction of the enzyme with NO2- in the presence of NO increases the amount of N2O product significantly, while trapping the NO product as nitrosylhemoglobin or rapid removal of NO by sparging results in no detectable N2O production. Reaction of the enzyme with 15NO2- in the presence of 14NO results in rapid formation of the mixed isotope product (14N, 15N)O in ca. 45% yield. In contrast, the presence or absence of NO has no effect on N2O production by a prototypical heme cd1-containing nitrite reductase. These results are consistent with formation of a labile Cu(+)-NO+ species in the copper enzyme, which normally decomposes to NO. Production of N2O requires that the released NO must rebind to the enzyme to combine with a second NO2- or a species derived therefrom.

Alcaligenes↗

Crystallization of nitrite reductase from Achromobacter cycloclastes.

Crystals of a green copper-containing nitrite reductase from Achromobacter cycloclastes, which diffract to high resolution, belong to the cubic space group P213, with a = b = c = 98.4 A. Crystals of a nitrite reductase from Alcaligenes faecalis S-6 have been made, and belong to space group P212121, with a = 77.3 A, b = 94.6 A and c = 141 A. Crystals of the blue copper protein from Ac. cycloclastes have also been obtained: these belong to space group P21212, with cell dimensions a = 34.9 A, b = 91.1 A and c = 36.7 A (1 A = 0.1 nm).

Alcaligenes↗

Outbreak of infection with Achromobacter xylosoxidans from contaminated intravascular pressure transducers.

Achromobacter xylosoxidans contaminating transducers caused 15 cases of hospital infection. In the eight patients with bacteraemia the interval from inoculation to fever was an average of 6.6 days. All the infected patients recovered. Computerization of laboratory records allowed retrieval of previous isolates, and review of clinical records focused the problem on patients with cardiac and aortic diseases. The problem arose from the re-use of disposable equipment after disinfection with a benzalcone.

Aged↗

Mapping of the plasmid (pLQ3) from Achromobacter and cloning of its cephalosporinase gene in Escherichia coli.

We have constructed a physical map of the plasmid pLQ3 which was originally isolated from Achromobacter and which codes for a beta-lactamase. The enzyme specified by pLQ3 is expressed in Escherichia coli and is unusual in that it is a cephalosporinase, an enzyme usually coded for by chromosome. Plasmid pLQ3 is 12.4 kb in length and has a unique Bam HI site and two BglII sites. From a BamHI + BglII double digest of pLQ3, we have constructed a "shortened" plasmid, pLQ10, in which a 2.96-kb fragment is deleted. We have constructed a clone, pLQ22, in which a 3.27-kb fragment of pLQ3, carrying the beta-lactamase gene, is inserted into the BamHI site of pACYC184. By "comparative mapping" of single and multiple digests of each of these plasmids, we have been able to locate the cleavage sites for PstI, which makes seven cuts in pLQ3.

Alcaligenes↗

Purification and some properties of phospholipase C from Achromobacter xylosoxidans.

A non-haemolytic phospholipase C (EC 3.1.4.3) was purified from the culture medium of Achromobacter xylosoxidans with a 5% yield and a purification factor of 330. A combination of ultrafiltration, acetone precipitation and two subsequent affinity chromatographic steps was used. The affinity chromatography is a new application of 2-(4-aminophenylsulphonyl)ethyl-cellulose, a sorbent that has previously been used for the purification of phospholipase C from Bacillus cereus. The purified enzyme gave four distinct bands on polyacrylamide gel electrophoresis, and each band was catalytically active. Under our experimental conditions, the phospholipids examined were hydrolysed in the following order: phosphatidylcholine, phosphatidylethanolamine, sphingomyelin. Neither the synthetic substrate p-nitrophenylphosphorylcholine nor phosphatidylinositol was hydrolysed under different experimental conditions. For maximal hydrolytic activity toward phosphatidylcholine, the enzyme required Triton X-100 and Ca2+ ions. EDTA was inhibitory, but the enzyme activity was almost completely restored by Zn2+. The molecular mass of the phospholipase C, estimated by gel permeation, was 34,000 daltons.

Alcaligenes↗

Spectral properties of Achromobacter xylosoxidans cytochromes c' and their NO complexes.

Cytochromes c' have been isolated from six strains of Achromobacter xylosoxidans: NCIB 11015 (formerly Alcaligenes sp. NCIB 11015), GIFU 543, 1048, 1051, 1055 and 1764. They are dimeric proteins with more positive redox potentials than those of cytochromes c' from phototrophic bacteria at neutral pH. The electronic absorption, EPR and MCD spectra on NO-ferrous cytochromes c' at physiological pH showed that the major part of the heme-iron of nitrosylheme was penta-coordinated. The EPR spectral results indicated that the ground state of the heme-iron of ferric cytochromes c' appears to be in an admixed spin states which consists of predominant high-spin with a slight intermediate-spin character at pH 7.2. These spectra were compared with those for cytochromes c' from phototrophic bacteria and the other hemoproteins.

Alcaligenes↗