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33 results for “Proteobacteria”
Fig. 2 in A report of 24 unrecorded bacterial species in Korea belonging to the Phyla Proteobacteria and Bacteroidetes isolated in 2020
Fig. 2. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the genus Pedobacter HMG1331, Mucilaginibacter HMG2653, Aquimarina KYW2188, and Flavihumibacter SM8. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.05 substitutions per nucleotide position, respectively.
Fig. 1 in A report of 24 unrecorded bacterial species in Korea belonging to the Phyla Proteobacteria and Bacteroidetes isolated in 2020
Fig. 1. Transmission electron micrographs of the strains isolated in this study. Strains: a, SM8; b, KYW2188; c, HMG1331; d, HMG2653; e, JHSTF-R13; f, HMG1343; g, CAU 1621; h, BDTF-M8; i, MA20; j, HMG2551; k, LW_53_Sal; l, SO215; m, AsT1; n, L1_74_Sal; o, BT648; p, KYW1991; q, L1_34_Aci; r, JHSTF-R6; s, L1_104_Sal; t, LW_92_Aci; u, DM7; v, HMG1413; w, MA7; x, 17bor-14.
Fig. 3 in A report of 24 unrecorded bacterial species in Korea belonging to the Phyla Proteobacteria and Bacteroidetes isolated in 2020
Fig. 3. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the genus Serratia SO215, Citrobacter MA20, Pantoea HMG2551, Providencia LW_53_Sal, Tolumonas JH- STF-R13, Oceanisphaera HMG1343, Halomonas KYW1991, Marinobacter CAU 1621, Microbulbifer BDTF-M8, Azotobacter DM7, Pseudomonas JHSTF-R6, Pseudomonas L1_104_Sal, Pseudomonas LW 92 Aci, Steroidobacter HMG1413, Lysobacter BT648, Stenotrophomonas L1_74_Sal, Stenotrophomonas MA7, Maritimibacter AST1 and Simulacricoccus 17bor-14. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 11 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 11. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Oryzomicrobium terrae. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 7 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 7. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Arthrobacter nitrophenolicus. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 1 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 1. Transmission electron micrographs of the strains isolated in this study. Strains: a, BT434; b, BT368; c, BT370; d, BT239; e, BT339; f, BT427; g, BT362; h, BT250; i, BT338; j, BT344; k, BT346; l, BT364.
Fig. 14 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 14. UV resistance graph of the strains isolated in this study. Survival rates of D. radiodurans R1T (), strains () and E. coli K12 () are ■ ● ◆ also shown. Strains: a, BT434; b, BT368; c, BT370; d, BT239; e, BT339; f, BT427; g, BT362; h, BT250; i, BT338; j, BT344; k, BT346; l, BT364.
Fig. 8 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 8. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Pseudomonas reidholzensis. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 13 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 13. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Sphingomonas azotifigens. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 4 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 4. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Variovorax gossypii. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 10 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 10. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Rhizobium alamii. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 9 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 9. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Microvirga lotononidis. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 3 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 3. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Paraburkholderia kirstenboschensis. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 12 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 12. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Sphingomonas sanguinis. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 5 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 5. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Massilia neuiana. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 2 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 2. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Caballeronia cordobensis. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 6 in Identification of 12 radiation-resistant bacterial species in the phylum Proteobacteria new to Korea
Fig. 6. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the species Noviherbaspirillum canariense. Bootstrap values (>70%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 and 0.02 substitutions per nucleotide position, respectively.
Fig. 3 in The first record of nine bacterial species belonging to the phylum Proteobacteria in Korea
Fig. 3. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives in the genera Pantoea (1) and Psychrobacter (2). Bootstrap values (>70%) are shown above nodes for the neighborjoining methods. Bar: 0.002 and 0.01 substitutions per nucleotide position, respectively.
Fig. 2 in Report of 29 unrecorded bacterial species from the phylum Proteobacteria
Fig. 2. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences, showing the relationship between 10 unrecorded bacterial species and other representatives of the class Alphaproteobacteria. Bootstrap values (>70%) based on 1000 resamplings are shown at branching points. Filled circles indicate that the corresponding nodes were recovered by all treeing methods. Open circles indicate that the corresponding nodes were recovered by the neighbor-joining and maximum-likelihood methods. Escherichia coli NCTC9001T (LN831047) was used as an outgroup (not shown). Bar, 0.02 substitutions per nucleotide position.
Fig. 3 in Report of 29 unrecorded bacterial species from the phylum Proteobacteria
Fig. 3. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences, showing the relationship between 12 unrecorded bacterial species and other representatives of the class Betaproteobacteria. Bootstrap values (>70%) based on 1000 resamplings are shown at branching points. Filled circles indicate that the corresponding nodes were recovered by all treeing methods. Open circles indicate that the corresponding nodes were recovered by the neighbour-joining and maximum-likelihood methods. Escherichia coli NCTC9001T (LN831047) was used as an outgroup (not shown). Bar, 0.02 substitutions per nucleotide position.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.