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The rpoD1 gene of Synechococcus sp. strain PCC 7942 encodes the principal sigma factor of RNA polymerase.

RNA polymerase was purified from the unicellular cyanobacterium, Synechococcus sp. strain PCC 7942, and found to be associated with a 52 kilodalton (kDa) polypeptide. The determined N-terminal sequence of the polypeptide was identical to the predicted amino-acid sequence of the rpoD1 gene product. Furthermore, the rpoD1 gene is suggested to be indispensable for viability by the inability to disrupt the gene. These results indicate that the rpoD1 gene product is the principal sigma factor of RNA polymerase.

Journal Article↗

Nucleotide sequence of the Synechococcus sp. PCC7942 hemE gene encoding the homologue of mammalian uroporphyrinogen decarboxylase.

We have determined the complete nucleotide sequence of a Synechococcus sp. PCC7942 gene encoding the homologue of mammalian uroporphyrinogen decarboxylase (UROD). The gene, designated hemE, encoded a polypeptide of 354 amino acids with a molecular weight of 39,283. The primary sequences of the polypeptide encoded by hemE and human and rat UROD had 32.5% identical amino acid residues. No invariant cysteine residues were found, despite the fact that UROD isolated from different sources has been shown to be inhibited by sulfhydryl reagents. The knowledge of the primary structure of this cyanobacterial protein may be helpful in better understanding the structural alterations and functional abnormalities of UROD in patients suffering from Porphyria Cutanea Tarda (PCT).

Amino Acid Sequence↗

A unique ascorbate peroxidase active component in the cyanobacterium Synechococcus PCC 7942 (R2).

Ascorbate peroxidase active component (APAC) was purified and characterized in Synechococcus PCC 9742 (R2) cells. APAC was isolated from freshly harvested cells, by ion exchange chromatography on DEAE cellulose, ultrafiltration through a 3000 dalton cut off filter and high pressure liquid chromatography through a reversed phase C-18 column. APAC was found to be extremely stable to harsh treatments of boiling water for 30 min, acidification to pH 2.0 and proteolytic digestion. A close correlation between activity and iron content of APAC was observed throughout the purification steps. E.S.R. spectrum of APAC showed a resonance line at g = 4.3 in the oxidized from. Peroxide reduction by ascorbate decreased the E.S.R. signal, which reappeared upon reoxidation by H2O2. The affinities of APAC to H2O2 and ascorbate were high (0.38 mM and 0.2 mM, respectively). Amino acid composition analysis of APAC revealed the presence of glutamic acid:glycine:cysteine residues at 2:1:1 ratio.

Ascorbate Peroxidases↗

Mossbauer spectroscopic study of functional thermal destruction of iron--sulfur proteins in membranes of thermophilic cyanobacteria synechococcus elongatus

A mathematical model of the Mossbauer spectrum (80K) of native membranes of Synechococcus elongatus was constructed on the basis of values of the quadruple splitting (Delta) and the isomeric shift (delta) of the iron-containing components of the photosynthetic apparatus obtained from the literature. Thermally induced changes in the intensity of the spectral components of membranes and isolated preparations of photosystem (PS) I were studied using this model. It was shown that exposure of membranes to 70-80 degrees C causes a decrease in the intensity of the components related to the FX, FA, and FB centers and surface-located ferredoxins of PS I, an increase in the intensity of the doublets of oxidized iron clusters that are nonspecifically absorbed by the membranes, and formation of a new doublet. Spectral parameters of this doublet (Delta = 3.10 mm/sec and delta = 1.40 mm/sec) are typical of inorganic hydrated forms of reduced iron. Heating of PS I preparations also causes a decrease in the intensity of doublets of the FX, FA, and FB centers and an increase in the intensity of doublets of nonspecifically bound oxidized iron. However, this does not cause formation of inorganic reduced iron. Comparison between the intensities of the Mossbauer spectral components in intact and heated samples suggests that the main source of reduced iron in membranes is surface-located ferredoxins. Nonspecifically bound oxidized iron is formed at the expense of the FX, FA, and FB centers. Disappearance of spectral components associated with ferredoxins and accumulation of reduced iron in membranes occur within the temperature range critical for inhibition of electron transport through PS I to oxygen. These findings suggest that the thermally induced processes of accumulation of reduced iron and inhibition of electron transport in PS I in membranes of thermophilic cyanobacteria are interrelated and caused mainly by degradation of the Fe--S centers of ferredoxins. The possible role of reduced iron accumulation in the degradation of the photosynthetic apparatus induced by heat and other extreme physical and chemical factors is discussed.

Journal Article↗

Non-flagellar swimming in marine Synechococcus.

Certain marine unicellular cyanobacteria of the genus Synechococcus exhibit a unique type of swimming motility characterized by the absence of flagella and of any other obvious organelle of motility. Although the mechanism responsible for this phenomenon remains mysterious, recent advances have included the development of testable models as well as the identification of a cell-surface polypeptide that is required for the generation of thrust. These developments, as well as the future research directions they suggest, are discussed.

Bacterial Proteins↗

[Photoautotrophic cultivation of Synechococcus sp. PCC7002 in photobioreactor].

The Photoautotrophic cultivation of Synechococcus sp. PCC 7002 in a 15 L-airlift photobioreactor was carried out. The changes of light intensity with cell density and optical length in the cultivation system were investigated. Based on experimental results, the light attenuation could be described by I = I0exp [-(-0.0239 + 0.0777 OD750).L]. The effects of the variations of light intensity, CO2 concentration in gas inlet and culture temperature on the growth of cells during the cultivation process have also been studied. The optimized condition was determined and a high dry cell density of 3.4 g/L was obtained. The volumetric productivity reached 0.57 g/(L.d) under the optimized condition.

Bioreactors↗

Thermally-induced delayed fluorescence of photosystem I and II chlorophyll in thermophilic cyanobacterium Synechococcus elongatus.

Stationary delayed fluorescence (DF) of chlorophyll in isolated membrane preparations from thermophilic cyanobacterium Synechococcus elongatus was investigated as a function of temperature. Two peaks at different temperatures were observed. The low-temperature peak (54-60 degrees C) coincided with the main maximum of the thermally-induced delayed fluorescence of chlorophyll in intact cells and PSII-particles with active oxygen-evolving system. The high-temperature peak (78 degrees C) coincided with the minor band of delayed light emitted by intact cells. It was also observed in the delayed fluorescence emission from a PSI-enriched fraction preparation. The intensities of the DF peaks were dependent on the presence of inhibitors, donors and acceptors that cause specific effects on electron transport of the two photosystems. The low-temperature and high-temperature peaks were related to PSII and PSI, respectively. The manifestation of delayed fluorescence from PSI and PSII at different temperatures seems to be a specific property of thermophilic cyanobacteria. The reason for this may be a high thermal stability of the photosystems and the lack of the PSII antenna complex in isolated membranes. Consequently, the relative yield of delayed fluorescence from PSI markedly increases. Thermally-induced fluorescence seen in membranes of cyanobacteria showed a high sensitivity to structural and functional membrane alterations induced by pH changes, different electron transport stabilizing agents or different concentrations of MgCl2.

Chlorophyll↗

The cpcE and cpcF genes of Synechococcus sp. PCC 7002. Construction and phenotypic characterization of interposon mutants.

The 3' region of the cpc operon of Synechococcus sp. PCC 7002 has been sequenced, transcriptionally characterized, and analyzed by interposon mutagenesis. The cpc operon contains six genes, 5' cpcB-cpcA-cpcC-cpcD-cpcE-cpcF 3', and gives rise to at least eight (more likely ten) discrete mRNA transcripts. The steady-state levels of transcripts for the cpcE and cpcF genes are very low and are estimated to represent only about 1-2% of the total transcripts arising from the cpc locus. The cpcE gene predicts a protein of 268 amino acid residues, whereas the cpcF gene predicts a protein of 205 amino acid residues. The deduced amino acid sequences of these proteins are about 50% identical and 70% similar to the predicted products of homologous genes which have been identified in other cyanobacterial cpc operons. Interposon insertion mutations were constructed in the cpcE and cpcF genes, and an interposon deletion mutation affecting both genes was constructed. The phenotypes of all mutant strains were similar. These strains were yellow-green in color, had doubling times approximately twice that of the wild-type strain, and failed to accumulate normal levels of phycocyanin. Further analyses indicated that these strains contained substantial amounts of apparently normal phycocyanin beta subunits; however the majority of the phycocyanin alpha subunit (about 90%) did not carry a phycocyanobilin chromophore. During serial subculturing of the mutant strains, suppressor mutations, which allowed cells to regain the ability to synthesize phycocyanin, arose at significant frequency. Based upon the results reported here, as well as those presented in the accompanying paper (Swanson, R. V., Zhou, J., Leary, J. A., Williams, T., de Lorimier, R., Bryant, D. A., and Glazer, A. N. (1992) J. Biol. Chem. 267, 16146-16154), we propose that the CpcE and CpcF polypeptides are the two subunits of a phycocyanobilin lyase specifically required for chromophorylation of the phycocyanin alpha subunit.

Amino Acid Sequence↗

Amino acid sequence of the 8-kDa protein in photosystem I reaction center complex from a thermophilic cyanobacterium, Synechococcus elongatus.

The 8-kDa protein in Photosystem I (PS I) reaction center complex was isolated from a thermophilic cyanobacterium, Synechococcus elongatus, by SDS-polyacrylamide gel electrophoresis using TRIS-Tricine buffer system. The complete amino acid sequence of the protein was determined. The 8-kDa protein consisted of 73 amino acid residues giving a calculated molecular weight of 7,472. No significant sequence homology were observed with the known other small subunits in PS I reaction center complex, except for the 6.5-kDa protein in PS I from another thermophilic cyanobacterium, S. vulcanus. The 8-kDa protein was characteristically rich in hydrophobic amino acid residues, especially the content of leucine. These suggest that the 8-kDa subunit is an intrinsic structure component in PS I core complex for stabilization of the reaction center.

Amino Acid Sequence↗

Phycoerythrins of marine unicellular cyanobacteria. I. Bilin types and locations and energy transfer pathways in Synechococcus spp. phycoerythrins.

Marine Synechococcus strains WH8103, WH8020, and WH7803 each possess two different phycoerythrins, PE(II) and PE(I), in a weight ratio of 2-4:1. PE(II) and PE(I) differ in amino acid sequence and in bilin composition and content. Studies with strain WH7803 indicated that both PE(II) and PE(I) were present in the same phycobilisome rod substructures and that energy absorbed by PE(II) was transferred to PE(I). Strain WH8103 and WH8020 PE(I)s carried five bilin chromophores thioether-linked to cysteine residues in sequences homologous to those previously characterized in C-, B-, and R-PEs. In contrast, six bilins were attached to strain WH8103 and WH8020 PE(II)s. Five of these were at positions homologous to bilin attachment sites in other phycoerythrins. The additional bilin attachment site was on the alpha subunit. The locations and bilin types in these PE(s) and in the marine Synechocystis strain WH8501 PE(I) (Swanson, R. V., Ong, L. J., Wilbanks, S. M., and Glazer, A. N. (1991) J. Biol. Chem. 266, 9528-9534) are: (table; see text) Since phycourobilin (PUB) (lambda max approximately 495 nm) transfers energy to phycoerythrobilin (PEB) (lambda max approximately 550 nm), inspection of these data shows that the invariant PEB group at beta-82 is the terminal energy acceptor in phycoerythrins. The adaptations to blue-green light, high PUB content and the presence of an additional bilin on the alpha subunit, increase the efficiency of light absorption by PE(II)s at approximately 500 nm.

Amino Acid Sequence↗

Oxidative stress responses in the unicellular cyanobacterium Synechococcus PCC 7942.

Oxidative stress responses were tested in the unicellular cyanobacterium synechococcus PCC 7942 (R-2). Cells were exposed to hydrogen peroxide, cumene hydroperoxide and high light intensities. The extent and time course of oxidative stress were related to the activities of ascorbate peroxidase and catalase. Ascorbate peroxidase was found to be the major enzyme involved in the removal of hydrogen peroxide under the tested oxidative stress. Catalase activity was inhibited in cells, treated with high H2O2 concentrations, and was not induced under photooxidative stress. Catalase was specifically induced in cells treated with cumene hydroperoxide. Superoxide dismutase activity increased under conditions generating superoxide, such as high light intensities. The induction of the antioxidative enzymes was light dependent and was inhibited by chloramphenicol.

Ascorbate Peroxidases↗

Amino acid sequence of the 14-kDa protein in the photosystem I reaction center complex from Synechococcus elongatus Naegeli.

One of the small components (14 kDa) of the photosystem I reaction center complex was isolated from a thermophilic alga, Synechococcus elongatus. The amino acid sequence was determined. The protein consists of 137 amino acid residues, corresponding to the molecular mass of 15,319. Alignment of this sequence with the ferredoxin-binding proteins of photosystem I from other cyanobacteria and higher plants suggests the possible biologically important residues and the residues responsible for thermostability in the sequence.

Amino Acid Sequence↗

Amino acid sequence of 10-kDa protein in photosystem I reaction-center complex from a thermophilic cyanobacterium, Synechococcus elongatus Naegeli.

Four small subunits (14, 13, 10, and 8 kDa) of the photosystem I reaction-center complex were isolated from a thermophilic cyanobacterium Synechococcus elongatus. The complete amino acid sequence of the 10-kDa subunit was determined to consist of 80 amino acid residues giving a molecular mass of 8855.3, excluding iron and sulfur atoms, and containing two special sequences of cysteine residues, Cys-X-X-Cys-X-X-Cys-X-X-X-Cys-Pro, at residues 10-21 and 47-58, which indicates that the subunit is an apoprotein carrying two iron-sulfur centers, FA and FB, assigned as [4Fe-4S] clusters. The amino acid sequence indicated an 87.5% identity compared with those deduced from the nucleotide sequences of chloroplast gene psa C from several plants.

Amino Acid Sequence↗

[Characteristics of a new cyanophage lysing unicellular cyanobacteria of the genus Synechococcus].

A new cyanophage S-2L growing on three strains of the cyanobacterium belonging to the Synechococcus genus has been isolated. The cyanophage has an icosahedral head, 56 nm in diameter, and flexible tail with a non-contracting sheath, 120 nm long. Over 95 per cent of the cyanophage particles are adsorbed within 10 min, the rate constant of adsorption being 3.2-10(-9) ml/min. The latent period lasts 5 hours, the yield is 100 particles per cell. The intracellular growth is characterized by the accumulation of the cyanophage particles at the poles of the cell. The photosynthetic lamellae remain intact up to the beginning of lysis which consists in local disruptions of the cell envelope.

Cyanobacteria↗

The purification and preliminary X-ray diffraction studies of recombinant Synechococcus ribulose-1,5-bisphosphate carboxylase/oxygenase from Escherichia coli.

X-ray crystallographic diffraction data has been collected for recombinant hexadecameric ribulose-P2 carboxylase from the cyanobacterium Synechococcus PCC6301 expressed in Escherichia coli. The enzyme has been purified and then crystallized in a number of crystal forms from polyethylene glycol solutions. The best crystals were obtained with enzyme that was first activated with the cofactors CO2 and Mg2+ in the presence of the tight-binding intermediate analogue, 2'-carboxyarabinitol 1,5-bisphosphate. One crystal form with plate-like morphology diffracts beyond 2.5 A but has one axis greater than 350 A. A second crystal form that diffracts to similar resolution grows with space group P212121 and unit cell dimensions of a = 223.9 A, b = 111.9 A, and c = 199.7 A. The crystal forms used to collect the diffraction data have been redissolved to determine that the recombinant ribulose-P2 carboxylase L8S8 molecule is indeed composed of equal numbers of large and small subunits and also that a quaternary complex between activated ribulose-P2 carboxylase E.CO2.Mg2+, and the analogue was present in the crystals. Denaturation of the redissolved enzyme in the absence of thiol-reducing agents established that the L-subunits of the L8 core are substantially dimeric, cross-linked by a disulfide bridge. Crystals of spinach ribulose-P2 carboxylase were likewise analyzed to show that dimers of the L-subunit were also predominant. This report identifies a single cysteine residue in the L-subunit that forms a bridge between those L-monomers that compose the four putative functional dimers of the L8 core.

Chromatography, Ion Exchange↗

N-terminal amino acid sequence analysis of small subunits of photosystem I reaction center complex from a thermophilic cyanobacterium, Synechococcus elongatus Nägeli.

Four small subunits (14, 13, 10, and 8 kDa) of the photosystem I reaction center complex were isolated from a thermophilic cyanobacterium Synechococcus elongatus and their N-terminal amino acid sequences determined. Sequence analysis of the 10-kDa subunit revealed that the distribution of cysteine residues, Cys-X-X-Cys-X-X-Cys-X-X-X-Cys-Pro, is characteristic of bacterial-type ferredoxins, and that its partial sequence is highly homologous to that deduced from the chloroplast gene frx A of liverwort. This indicates that the 10-kDa polypeptide is an apoprotein carrying two iron-sulfur centers, FA and FB, assigned as [4Fe-4S] clusters, which mediated the light-activated transfer of electrons from P700 in photosystem I reaction center complex to soluble ferredoxin. The amino acid sequence of the 14-kDa polypeptide also showed similarity to that of the 20-kDa polypeptide from spinach chloroplast that can be chemically crosslinked with soluble ferredoxin. Thus, the 14-kDa polypeptide appears to be the ferredoxin 'docking' protein.

Amino Acid Sequence↗

Heavy metal ion-induced changes of ribosomal RNA synthesis in Synechococcus sp. strain PCC 6301, a cyanobacterium.

We examined the effect of cadmium, zinc, copper and mercury ions on the rate of total RNA synthesis and on the accumulation of ribosomal RNAs in Synechococcus sp. PCC 6301, an obligate photoautotrophic cyanobacterium. It was found that treatment of cells with growth-inhibitory concentrations of cadmium and zinc ions severely decreased the rate of total RNA synthesis both under light (growing) and dark (non-growing) conditions, while copper and mercury ions had different inhibitory effects under these conditions. Moreover, cadmium and zinc ions substantially inhibited the "normal" processing of high-molecular-mass rRNAs and the in vivo postmaturational cleavage of 23S rRNA in the light and interfered with the accumulation of dark-specific RNAs of 0.33 x 10(6), 0.24 x 10(6) and 0.16 x 10(6) daltons in the dark. On the other hand, copper and mercury ions had a similar effect in the light, but did not abolish the accumulation of dark-specific, rRNA-derived, RNAs in the dark.

Cadmium↗