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10 results for “Aliterellaceae”
FIGURE 3. Secondary structures for the D1–D1 in New cyanobacterium Aliterella vladivostokensis sp. nov. (Aliterellaceae, Chroococcidiopsidales), isolated from temperate monsoon climate zone (Vladivostok, Russia)
FIGURE 3. Secondary structures for the D1–D1′ helices in the ITS regions for five Aliterella species and putative genus member Synechocystis sp. PCC 7509. Conservative nucleotides are grey colored.The unique marker mutations for the new species A. vladivostokensis are black colored. Arrowheads show compensatory (CBCs) and hemi-compensatory base changes (hCBCs). Homological base pairs among different species are indicated by dotted lines.
FIGURE 4. Predicted secondary structure for D1–D1 in Aliterella shaanxiensis (Aliterellaceae), a new coccoid cyanobacterial species from China
FIGURE 4. Predicted secondary structure for D1–D1′ helix of 16S–23S rRNA intergenic spacer of three Aliterella strains. (a) A. antarctica CENA408T; (b) A. atlantica CENA595T; (c) A. shaanxiensis FACHB–2293.
FIGURE 3 in Aliterella shaanxiensis (Aliterellaceae), a new coccoid cyanobacterial species from China
FIGURE 3. Maximum likelihood phylogenetic tree based on 16S rRNA gene. Numbers at nodes represent bootstrap support values (BP) / posterior probabilities (PP) from maximum likelihood and Bayesian inference, respectively. Only values above 0.50 are shown. The sequences obtained in our study are shaded grey.
FIGURE 2 in Aliterella shaanxiensis (Aliterellaceae), a new coccoid cyanobacterial species from China
FIGURE 2. Transmission electron micrographs of Aliterella shaanxiensis. A–B. Section of colonies surround by mucilaginous envelopes. C. Cell section showing unstratified firm mucilaginous envelope and polyphosphate body. D. Section of cell in binary fission. E–F. Section of cylindrical cell, showing cell wall, sheath, DNA fibrils, polyphosphate bodies, parietal thylakoids and phycobilisome. Scale bars: A–B, 1 μm; C–F, 0.5 μm. Abbreviations: CW, cell wall; D, DNA fibrils; PB, polyphosphate body; Py, phycobilisome; S, sheath; TH, thylakoids.
FIGURE 1 in Aliterella shaanxiensis (Aliterellaceae), a new coccoid cyanobacterial species from China
FIGURE 1. Light micrographs of Aliterella shaanxiensis. A, B. Compact and irregular thallus composed of numerous colonies or solitary cells with colourless and firm mucilaginous envelopes. C, D. Irregular or rounded colonies. E. Blue-green cells easily removed from colonies with pressure. F, G. Cylindrical cells with rounded ends. Scale bars: A–E, 10 μm; F–G, 5 μm.
FIGURE 5. Predicted secondary structure for Box-B in Aliterella shaanxiensis (Aliterellaceae), a new coccoid cyanobacterial species from China
FIGURE 5. Predicted secondary structure for Box-B helix of 16S–23S rRNA intergenic spacer of three Aliterella strains. (a) A. antarctica CENA408T; (b) A. atlantica CENA595T; (c) A. shaanxiensis FACHB–2293.
FIGURE 5 in New cyanobacterium Aliterella vladivostokensis sp. nov. (Aliterellaceae, Chroococcidiopsidales), isolated from temperate monsoon climate zone (Vladivostok, Russia)
FIGURE 5. Map showing distribution of sampling locations of Aliterella genus members according of Rigonato et al. (2016), Zhang et al. (2018), Jung et al. (2020), present study and GenBank data (created with https://www.simplemappr.net, CC 1.0; Shorthouse 2010). For the uncultured bacterial clones and Synechocystis sp. PCC 7509 GenBank accessions are given (see the legend).
FIGURE 1 in New cyanobacterium Aliterella vladivostokensis sp. nov. (Aliterellaceae, Chroococcidiopsidales), isolated from temperate monsoon climate zone (Vladivostok, Russia)
FIGURE 1. Light micrographs of Aliterella vladivostokensis. A–C. Compact and irregular thallus composed of numerous irregular or rounded colonies or solitary cells with colorless and firm mucilaginous envelopes. D. Cylindrical or irregular cells. Scale bars: 10 μm.
FIGURE 4. Secondary structures for the Box-B in New cyanobacterium Aliterella vladivostokensis sp. nov. (Aliterellaceae, Chroococcidiopsidales), isolated from temperate monsoon climate zone (Vladivostok, Russia)
FIGURE 4. Secondary structures for the Box-B helices in the ITS regions for five Aliterella species and putative genus member Synechocystis sp. PCC 7509. Conservative nucleotides are grey colored. Arrowheads show compensatory (CBCs) and hemi-compensatory base changes (hCBCs). Homological base pairs among different species are indicated by dotted lines.
FIGURE 2 in New cyanobacterium Aliterella vladivostokensis sp. nov. (Aliterellaceae, Chroococcidiopsidales), isolated from temperate monsoon climate zone (Vladivostok, Russia)
FIGURE 2. ML tree showing phylogenetic position of the new species A. vladivostokensis based on 16S rRNA gene sequence data (GTR+I+G model). Support [ML/BI, (BP) ≥ 50% and (PP) ≥ 0.95] are given above/below the branches. Branches with 100% BP, 1.00 PP and sequences obtained for this study are shown in boldface. Scale bar – substitutions per nucleotide position.
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