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B Bowien

Publications and source records attributed to B Bowien.

At least 37 records · Page 2Linked to original sources

The Calvin cycle enzyme pentose-5-phosphate 3-epimerase is encoded within the cfx operons of the chemoautotroph Alcaligenes eutrophus.

Several genes (cfx genes) encoding Calvin cycle enzymes in Alcaligenes eutrophus are organized in two highly homologous operons comprising at least 11 kb. One cfx operon is located on the chromosome; the other is located on megaplasmid pHG1 of the organism (B. Bowien, U. Windhövel, J.-G. Yoo, R. Bednarski, and B. Kusian, FEMS Microbiol. Rev. 87:445-450, 1990). Corresponding regions of about 2.7 kb from within the operons were sequenced. Three open reading frames, designated cfxX (954 bp), cfxY (765 bp), and cfxE (726 bp), were detected at equivalent positions in the two sequences. The nucleotide identity of the sequences amounted to 94%. Heterologous expression of the subcloned pHG1-encoded open reading frames in Escherichia coli suggested that they were functional genes. The observed sizes of the gene products CfxX (35 kDa), CfxY (27 kDa), and CfxE (25.5 kDa) closely corresponded to the values calculated on the basis of the sequence information. E. coli clones harboring the cfxE gene showed up to about 19-fold-higher activities of pentose-5-phosphate 3-epimerase (PPE; EC 5.1.3.1) than did reference clones, suggesting that cfxE encodes PPE, another Calvin cycle enzyme. These data agree with the finding that in A. eutrophus, PPE activity is significantly enhanced under autotrophic growth conditions which lead to a derepression of the cfx operons. No functions could be assigned to CfxX and CfxY.

Alcaligenes↗

Identification of cfxR, an activator gene of autotrophic CO2 fixation in Alcaligenes eutrophus.

A regulatory gene, cfxR, involved in the carbon dioxide assimilation of Alcaligenes eutrophus H16 has been characterized through the analysis of mutants. The function of cfxR is required for the expression of two cfx operons that comprise structural genes encoding Calvin cycle enzymes. CfxR (34.8 kDa) corresponds with an open reading frame of 954 bp, with a translational initiation codon 167 bp upstream of the chromosomal cfx operon. The cfx operon and cfxR are transcribed divergently. The N-terminal sequence of CfxR is very similar to those of bacterial regulatory proteins belonging to the LysR family. Heterologous expression of cfxR in Escherichia coli was achieved using the pT7-7 system. Mobility shift experiments demonstrated that CfxR is a DNA-binding protein with a target site upstream of both the chromosomal and the plasmid-encoded cfx operons.

Alcaligenes↗

On the operon structure of the cfx gene clusters in Alcaligenes eutrophus.

Three transposon Tn5-induced mutants deficient in autotrophic CO2 fixation were isolated from a megaplasmid pHG1-cured strain of Alcaligenes eutrophus H16. Their phenotypes were initially characterized by their ability to form both key enzymes of the Calvin cycle, ribulose-1,5-bisphosphate carboxylase (Rubisco) and phosphoribulokinase (PRK). Since the transposon insertions were at different sites within the chromosomal cluster of cfx genes encoding Calvin cycle enzymes, the individual mutants showed different inactivation patterns for Rubisco and PRK synthesis. These data together with already known sequence data and the arrangement of cfx genes suggested that the Rubisco, fructose-1,6-bisphosphatase/sedoheptulose-1,7-bisphosphatase and PRK genes are constituents of the same operon. This was further confirmed by trans complementation analyses which indicated that the very similarly organized pHG1-encoded cfx genes additionally present in wild-type strain H16 are functional and also form a common operon. Each operon may also include a glyceraldehyde-3-phosphate dehydrogenase gene. Thus, the duplicated cfx operons of A. eutrophus H16 are large transcriptional units comprising at least about 8 kilobase pairs (kb) and possibly as much as 11 kb.

Alcaligenes↗

Sequence analysis of the chromosomal and plasmid genes encoding phosphoribulokinase from Alcaligenes eutrophus.

Two DNA fragments encoding the chromosomal and plasmid copies of the gene (cfxP) encoding phosphoribulokinase (PRK) from the chemoautotrophic bacterium Alcaligenes eutrophus, were sequenced and found to be highly homologous. The gene (cfxF) of another Calvin cycle enzyme, fructose-1,6-bisphosphatase (FBPase), was identified as terminating immediately upstream of cfxP, but was not completely contained on both fragments. A hypothetical, also incompletely contained, open reading frame starts closely downstream from cfxP. Genes cfxF, cfxP, and the third hypothetical gene seem to belong to the same operon. The cfxP genes encode highly homologous PRK isoenzyme subunits consisting of 292 aa residues with calculated Mrs of 33 319 (chromosomal PRKc) and 33 164 (plasmid-encoded PRKp). There is little overall sequence similarity between the bacterial and plant (spinach) PRK, apart from some structural motifs.

Alcaligenes↗

Single and twinned crystals of ribulose-1,5-bisphosphate carboxylase-oxygenase from Alcaligenes eutrophus.

Ribulose-1,5-bisphosphate carboxylase-oxygenase (L8S8) from Alcaligenes eutrophus has been crystallized by equilibrium vapor diffusion techniques with ammonium sulfate as precipitant. Crystals thus obtained either as the ternary complex with CO2 and Mg2+ or as the quaternary complex with CO2, Mg2+, and 2-carboxyarabinitol 1,5-bisphosphate, a transition state analogue, diffract at least to 2.8-A resolution. Both are essentially isomorphous to each other, having orthorhombic space group C222(1) with cell dimensions a = 159 A, b = 159 A, and c = 200 A, and there is half a molecule in the asymmetric unit. The crystals of the ternary complex are sometimes twinned about the c axis so that the space group appears to be tetragonal. In this light, our earlier report (Bowien, B., Mayer, F., Spiess, E., Pähler, A., Englisch, U., and Saenger, W. (1982) Eur. J. Biochem. 106, 405-410) on a tetragonal space group P4(2)2(1)2 with crystals obtained from the same enzyme with Mg2+ and CO2 but without 2-carboxyarabinitol 1,5-bisphosphate might be incorrect.

Alcaligenes↗

Chromosomal and plasmid locations for phosphoribulokinase genes in Alcaligenes eutrophus.

Genes coding for phosphoribulokinase (PRK), a key enzyme of the Calvin cycle, were localized in the genome of the chemoautotroph Alcaligenes eutrophus. The NH2-terminal sequence of the PRK subunit was determined. With a synthetic oligodeoxynucleotide probe complementary to a portion of this sequence, hybridization analysis revealed PRK genes to be located on both the chromosome and the megaplasmid pHG1 of A. eutrophus H16.

Alcaligenes↗

Small angle x-ray study on the structure of active and inactive ribulose bisphosphate carboxylase from Alcaligenes eutrophus. Evidence for a configurational change.

Two small angle x-ray scattering curves have been obtained from active and inactive ribulose 1,5-bisphosphate carboxylase from Alcaligenes eutrophus. The radius of gyration was calculated to be R = 47.8 +/- 0.1 nm for the active enzyme and R = 49.2 +/- 0.1 nm for the inactive enzyme. The maximum particle dimension amounts to 13.5 +/- 0.5 nm for the active and 15.7 +/- 0.5 nm for the inactive enzyme. A model of the active carboxylase is presented. It is in good agreement with models derived from electron microscopical data. Model calculations for the inactive enzyme show some evidence for a configurational change.

Alcaligenes↗

Control of autotrophic carbon assimilation in Alcaligenes eutrophus by inactivation and reactivation of phosphoribulokinase.

Phosphoribulokinase in Alcaligenes eutrophus was partially inactivated when an autotrophic culture was shifted to heterotrophic growth with pyruvate as the sole source of carbon and energy. A similar response was observed on addition of various organic substrates to autotrophic cultures during the transition to mixotrophic growth. The extent of inactivation depended on the added substrate. Pyruvate or lactate caused the strongest inactivation among the tested substrates. Up to 75% of the phosphoribulokinase activity found in the autotrophic cells was lost within 30 min after supplementation of the cultures with either of these two substrates. This loss of enzyme activity was not the result of degradation of enzyme protein. Inactivation of phosphoribulokinase was accompanied by a decrease in the CO2 fixation rate of the cells. Reactivation of the enzyme occurred after exhaustion of pyruvate from the medium. Neither inactivation nor reactivation required de novo protein synthesis; however, continued energy conversion was necessary for the inactivation to occur. We suggest that the pyruvate metabolism of A. eutrophus is involved in these regulatory processes which act on phosphoribulokinase. They appear to contribute to the control of autotrophic CO2 assimilation in this organism.

Alcaligenes↗

Unusual C3 and C4 metabolism in the chemoautotroph Alcaligenes eutrophus.

Phosphoenolpyruvate (PEP) carboxykinase was identified to be the only C3-carboxylating enzyme in Alcaligenes eutrophus. The enzyme requires GDP or inosine diphosphate (GTP or inosine triphosphate) for activity. Pyruvate- and other PEP-dependent CO2-fixing enzyme activities were not detected, regardless of whether the cells were grown autotrophically or heterotrophically. It is suggested that two pathways are present in the organism for the formation of PEP from C4 dicarboxylic acids. Besides decarboxylation of oxaloacetate by PEP carboxykinase, the consecutive action of NADP+-malic enzyme and PEP synthetase can also accomplish this synthesis. An oxaloacetate decarboxylase activity observed in the cell extracts may also contribute to the latter route. The properties of a mutant deficient in PEP synthetase supported the biochemical data. This mutant was unable to grow on pyruvate or lactate and grew slower than the wild type on direct or indirect metabolites of the tricarboxylic acid cycle such as succinate, glutamate, or acetate. Growth on fructose and autotrophic growth were not affected by the enzyme defect. The findings suggest that, depending on the growth substrate utilized, PEP carboxykinase can serve a dual physiological function in A. eutrophus, an anaplerotic function in oxaloacetate synthesis from PEP, or a gluconeogenic function in PEP synthesis from oxaloacetate.

Alcaligenes↗

Influence of the activation state on the sedimentation properties of ribulose bisphosphate carboxylase from Alcaligenes eutrophus.

Ribulose-1,5-bisphosphate carboxylase from the chemolithotrophic hydrogen bacterium Alcaligenes eutrophus was maximally active in the presence of 50 mM HCO3- plus 10 mM Mg2+. Deactivation occurred upon removal of these ions. Reactivation was achieved by incubation of the enzymes with HCO3- plus Mg2+. The concentration of HCO3- (CO2) required for half-maximal activation was 1.84 nM (0.064 mM). Sedimentation velocity studies revealed that activation/deactivation is associated with drastic changes in the sedimentation properties of the enzyme. While the inactive form had a sedimentation coefficient, s20,w, of 17.5 S, the s20,w gradually decreased as the enzyme was reactivated and the fully reactivated form exhibited an s20,w of 14.3 S. A structural analogue of ribulose 1,5-bisphosphate, xylulose 1,5-bisphosphate, caused a deactivation of the enzyme concomitant with an increase in the sedimentation velocity. It is suggested that the alterations in the hydrodynamic properties accompanying the activation/deactivation process are due to considerable conformational changes that affect the molecular volume and/or the shape of the enzyme. Dissociation/association events were not involved in the changes. The s20,w of about 18 S, generally reported for the large hexadecameric ribulose bisphosphate carboxylases, appears to be characteristic of the inactive form.

Alcaligenes↗

Effect of phosphoglycerate mutase deficiency on heterotrophic and autotrophic carbon metabolism of Alcaligenes eutrophus.

Mutants of Alcaligenes eutrophus were isolated on the basis of their inability to grow on succinate as the sole source of carbon and energy. The mutants also failed to grow on other gluconeogenic substrates, including pyruvate, acetate, and citrate. Simultaneously, they had lost their capability for autotrophic growth. The mutants grew, but slower than the wild type, on fructose or gluconate. Growth retardation on gluconate was more pronounced. The mutants lacked phosphoglycerate mutase activity, and spontaneous revertants of normal growth phenotype had regained the activity. The physiological characteristics of the mutants indicate the role of phosphoglycerate mutase in heterotrophic and autotrophic carbon metabolism of A. eutrophus. Although the enzyme is necessary for gluconeogenesis during heterotrophic growth on three- or four-carbon substrates, its glycolytic function is not essential for the catabolism of fructose or gluconate via the Entner-Doudoroff pathway. The enzyme is required during autotrophic growth as a catalyst in the biosynthetic route leading from glycerate 3-phosphate to pyruvate. It is suggested that the mutants accomplish the complete degradation of fructose and gluconate mutase lesion. The catabolically produced triose phosphates are converted to fructose 6-phosphate which is rechanneled into the Entner-Doudoroff pathway. This carbon recycling mechanism operates less effectively in mutant cells growing on gluconate.

Alcaligenes↗

On the structure of crystalline ribulosebisphosphate carboxylase from Alcaligenes eutrophus.

Ribulosebisphosphate carboxylase from the hydrogen bacterium Alcaligenes eutrophus having a molecular weight of 534000 and consisting of eight large and eight small subunits has been crystallized by microdialysis using inorganic as well as organic precipitating agents. Crystals have tetragonal space group P42212, a = b = 11.27 nm, c = 20.14 nm, and contain one quarter molecule per asymmetric unit. X-rays are diffracted to 0.35-nm resolution on still photographs. Light optical diffractions of electron micrographs of thin sectioned crystals displayed patterns which could be interpreted on the basis of the unit cell determined by X-rays. Packing considerations are in accord with our earlier proposal regarding the subunit arrangement of this enzyme which differs from that reported for tobacco ribulosebisphosphate carboxylase.

Alcaligenes↗

Further studies on the quaternary structure of D-ribulose-1, 5-bisphosphate carboxylase from Alcaligenes eutrophus.

Homogeneous D-ribulose-1,5-bisphosphate carboxylase, isolated from the hydrogen bacterium Alcaligenes eutrophus, has been studied by analytical ultracentrifugation. Sedimentation equilibrium experiments showed the enzyme to have a molecular weight M c =0 r =534000. The sedimentation coefficient was S0(20); w = 14.1S. The two types of subunits constituting the ribulosebisphosphate carboxylase were separated by gel filtration in the presence of sodium dodecylsulphate and the amino acid compositions of the isolated large and small subunits were determined. Rabbit antibodies were developed against the ribulosebisphosphate carboxylase and its isolated subunits. The specific reactivity of the respective antibodies with their homologous antigens was proven by double immunodiffusion and quantitative immunoprecipitation analyses. Antibodies elicited against the whole enzyme also reacted with both the isolated large and small subunits as did the subunit-specific antibodies with the whole enzyme. There was no immunological correspondence between the large and the small subunits. The specific inhibition of the enzyme activity by antibodies directed against sites on the large subunit suggests that the catalytic function resides in the large subunit. Electron microscopic examination of antibody . carboxylase complexes formed upon mixing of the specific immunoglobulins G with the enzyme was used to verify the arrangement of the large and small subunits in our recently proposed structural model of the enzyme molecule. The results confirmed that the large subunits are located in the central two layers of the four-layered enzyme molecule, whereas the two outer layers consist of small subunits. The observations are discussed with respect to an alternative model for the quaternary structure of ribulosebisphosphate carboxylase from tobacco.

Alcaligenes↗

Purification, some properties and quaternary structure of the D-ribulose 1,5-diphosphate carboxylase of Alcaligenes eutrophus.

D-Ribulose 1,5-diphosphate carboxylase has been purified from autotrophically grown cells of the facultative chemolithotrophic hydrogen bacterium Alcaligenes eutrophus. The enzyme was homogeneous by the criteria of polyacrylamide gel electrophoresis. The molecular weight of the enzyme was 505000 determined by gel filtration and sucrose density gradient centrifugation, and a sedimentation coefficient of 18.2 S was obtained. It was demonstrated by sodium dodecyl sulphate-polyacrylamide gel electrophoresis that the enzyme consists of two types of subunits of molecular weight 52000 and 13000. Electron microscopy on the intact and the partially dissociated enzyme lead to the construction of a model for the quaternary structure of the enzyme which is composed of 8 large and 8 small subunits. The most probable symmetry of the enzyme molecule is 4:2:2. Michaelis constant (Km) values for ribulose 1,5-diphosphate, Mg2+, and CO2 were 0.59 mM, 0.33 mM, and 0.066 mM measured under air. Oxygen was a competitive inhibitor with respect to CO2 suggesting that the enzyme also exhibits an oxygenase activity. The oxygenolytic cleavage of ribulose 1,5-diphosphate was shown and a 1:1 stoichiometry between oxygen consumption and 3-phosphoglycerate formation observed.

Alcaligenes↗

Glycollate production and excretion by Alcaligenes eutrophus.

Autotrophic cultures of the facultative chemolithotroph Alcaligenes eutrophus have been found to excrete glycollate. This excretion was greatly stimulated by the incorporation of up to 20% (v/v) oxygen in the hydrogen used for gassing. The stimulatory effect of oxygen was prevented by the addition of 10% (v/v) CO2 to the gassing mixture. Glycollate excretion only in the presence of oxygen was increased by the addition of 2-pyridyl-hydroxymethane sulphonic acid (HPMS), an inhibitor of glycollate oxidation, indicating that glycollate formation itself was stimulated by oxygen. No glycollate excretion by cultures grown heterotrophically on pyruvate was detected, either in the absence or presence of HPMS, under heterotrophic or autotrophic cells showed phosphoglycollate phosphatase and glycollate oxidoreductase activities, which were considerably lower in extracts prepared from pyruvate- or fructose-grown (heterotrophic) cells. The increase in activity of both enzymes upon cell transfer from heterotrophic to autotrophic growth was prevented by chloramphenicol and resembled the induction of D-ribulose 1,5-diphosphate carboxylase under the same conditions.

Alcaligenes↗