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Fig. 1 in Report of 22 unrecorded bacterial species in Korea belonging to phylum Bacteroidetes, discovered during surveys in 2018
Fig. 1. Transmission electron micrographs or scanning electron micrographs of cells of the strains isolated in the study. Strains: 1, LPB0213; 2, MaG24; 3, Wi-47; 4, GA076; 5, KYW1525; 6, Ast28; 7, HMF5202; 8, 18S4T3; 9, 18H1T5; 10, 18H3M2; 11, BT43; 12, BO204; 13, 18S4P11; 14, 18H3V6; 15, 18N3G15; 16, 18N3V8; 17, SC115; 18, HMF9181; 19, SC71; 20, HMF9088; 21, BO167; 22, 18SBM11.
Fig. 2 in Unrecorded bacterial species belonging to the phylum Actinobacteria originated from Republic of Korea
Fig. 2. Neighbor-joining phylogenetic tree, based on 16S rRNA gene sequences, showing the relationship between the strains isolated in this study and their relatives of the phylum Actinobacteria. Bootstrap values (>70%) are shown above nodes. Filled circles indicate the nodes recovered by three other treeing methods including maximum likelihood, maximum parsimony, and neighbor joining. Bar, 0.02 substitutions per nucleotide position.
Fig. 1 in Unrecorded bacterial species belonging to the phylum Actinobacteria originated from Republic of Korea
Fig. 1. Transmission electron micrographs or scanning electron micrographs of cells of the strains isolated in this study. Strains: 1, KHH20; 2, RDH8; 3, Ho-10; 4, KYW950; 5, LPB0110; 6, KYW1206; 7, HKS12; 8, HKS25; 9, C4-1; 10, HKS09; 11, C7-7; 12, C1-46; 13, HMF4427; 14, KHC15; 15, IMCC25612; 16, LPB0100; 17, Ho-14; 18, KHG7; 19, DO214; 20, IMCC25611; 21, HMF3875; 22, KHK4; 23, IMCC25615; 24, LPB0092; 25, bT304; 26, UT 4-03; 27, LPB0101; 28, KHC19; 29, C6-16; 30, IMCC25604; 31, KYW998; 32, HKS28; 33, Cip10; 34, IMCC25613; 35, C3-50; 36, HKS22; 37, C6-12; 38, C10-13; 39, C6-18; 40, G1; 41, KHO6; 42, C1-60; 43, C3-42; 44, C2- 18; 45, IMCC25607; 46, BK1I29; 47, MGS3Y-3-1; 48, MGS3Y-3-4; 49, HKS20; 50, TW1K13; 51, TW1K14; 52, BBT-4; 53, Tri-200-1; 54, TW1K20; 55, BBT-7; 56, TW1M1; 57, TW1K17; 58, HKS13; 59, MEC3Y-3-1; 60, TW1S1; 61, MMD3Y-3-3; 62, MK6Y-2-3.
Fig. 3 in Description of unrecorded bacterial species belonging to the phylum Actinobacteria in Korea
Fig. 3. Neighborjoining phylogenetic tree, based on 16S rRNA gene sequences, showing the relationship between the isolates and their relatives of the phylum Actinobacteria. Evolutionary distances, generated using the model of Jukes & Cantor (1969), are based on 1155 unambiguously aligned nucleotides. Bootstrap values (>70%) are shown above nodes. Filled circles indicate the nodes recovered by three other treeing methods including maximum likelihood, maximum parsimony and neighborjoining. Bar, 0.02 substitutions per nucleotide position.
Fig. 2 in Description of unrecorded bacterial species belonging to the phylum Actinobacteria in Korea
Fig. 2. Scanning electron micrographs of cells of the isolates. Bar, 1 μm. Strains: 1, G92; 2, S36; 3, SO100; 4, EAC30; 5, SO94; 6, JDB244.
Fig. 1 in Description of unrecorded bacterial species belonging to the phylum Actinobacteria in Korea
Fig. 1. Transmission electron micrographs of cells of the isolates. Bar, 1 μm. Strains: 1, LPB0331; 2, N20; 3, G24; 4, G9; 5, G37; 6, 19D1G4; 7, 19D1L6; 8, G56; 9, 13H3; 10, 19D1A19; 11, 19D1A72; 12, G36; 13, CAU 1605; 14, N14; 15, KR3; 16, 19D1C16; 17, 19D1A9; 18, SO98; 19, LPB0322; 20, SO111; 21, N40; 22, BSSPR25; 23, 19D2C13; 24, 19D2A1; 25, 13H2; 26, 19D1F19; 27, JBTFM16; 28, LPB0310; 29, KYW1971; 30, R21; 31, R_77; 32, BT360; 33, SR3; 34, FS100; 35, S5; 36, 19D2V10; 37, 19D1S1; 38, 19D1V24; 39, JDB110; 40, R12; 41, BSSPM28; 42, 19D1C14; 43, BT343; 44, BSSPM29; 45, BT46; 46, MMS19T35; 47, LPB0280; 48, R5; 49, 19D2C16; 50, BT63; 51, 9C1; 52, BG138; 53, EAC34; 54, 19D1L39; 55, R9; 56, MMS19T27; 57, 5C2; 58, 5C1; 59, 13H1; 60, 19D2F17; 61, CAU 1564; 62, 19D2S3; 63, R21; 64, DS12; 65, 19D1T8; 66, F111; 67, MMS19T31; 68, EAC17; 69, MMS19T12; 70, 19D1A31; 71, LPB0332.
Fig. 2 in Twenty-five unrecorded bacterial species of the Republic of Korea belonging to the phylum Actinomycetota discovered during surveys in 2021
Fig. 2. Transmission electron micrographs of scanning electron micrographs of cells of the strains isolated in the study. Strains: 1, 14MAJJD-20; 2, HMF4597; 3, HMG2333; 4, HMG2352; 5, HMG2897; 6, HMG2989; 7, HMG2990; 8, HMG2992; 9, HMG3831; 10, CAU 1649; 11, BT757; 12, BT385; 13, BT764; 14, BE15; 15, I4-8; 16, I4-10; 17, I4-30; 18, PS14; 19, PS18; 20, PS22; 21, PS26; 22, PS28; 23, TS34; 24, RMG20M; 25, RG5.
Fig. 1 in Twenty-five unrecorded bacterial species of the Republic of Korea belonging to the phylum Actinomycetota discovered during surveys in 2021
Fig. 1. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences showing the relationships between 25 strains isolated and their closely related species from the orders Cellulomonadales, Dermatophilales, Microbacteriales, Micrococcales, Propionibacteriales, Pseudonocardiales, Solirubrobacterales, Streptomycetales, and Streptosporangiales of the phylum Actinomycetota. Dots indicate that the nodes also recovered in the maximum-likelihood and maximum-parsimony trees, and bootstrap values>70% (NJ/ML/MP) are shown at branching points. Bar, 0.02 substitutions per nucleotide position.
Fig. 2 in Report on 30 unrecorded bacterial species of the phylum Firmicutes isolated from Korea in 2016
Fig. 2. Maximum-likelihood phylogenetic tree of isolates and related taxa belonging to the order Bacillales. Filled circles indicate the nodes that were recovered in the trees generated by both the neighbour-joining (NJ) and the maximum-likelihood (ML) methods. Numbers at nodes represent bootstrap values (NJ/ML) based on 1000 replicated datasets. Only values above 50% are shown. Bar, 0.1 substitutions per nucleotide position.
Fig. 1 in Report on 30 unrecorded bacterial species of the phylum Firmicutes isolated from Korea in 2016
Fig. 1. Transmission election micrographic and scanning electron micrographic images of isolated cells. Strains: 1, HMF7750; 2, ATS3402; 3, PTS2210; 4, AR23209; 5, PR23219; 6, PR23304; 7, AR23203; 8, PMA3404; 9, AMR3201; 10, AMR3203; 11, PR22215; 12, AR23201; 13, AMA2302; 14, ATS2307; 15, PR22212; 16, AR23202; 17, H18Y; 18, CAU 1342; 19, CAU 1339; 20, LPB0128; 21, LPB0129; 22, LPB0134; 23, LPB0160; 24, CF2; 25, NF3-3-1; 26, BE2-15; 27, BE2-30; 28, BE3-11; 29, JMW-27; 30, DMHB11.
Fig. 3 in Report on 30 unrecorded bacterial species of the phylum Firmicutes isolated from Korea in 2016
Fig. 3. Maximum-likelihood phylogenetic tree of isolates and related taxa belonging to the order Lactobacillales. Filled circles indicate the nodes that were recovered in the trees generated by both the neighbour-joining (NJ) and the maximum-likelihood (ML) methods and numbers at nodes represent bootstrap values (NJ/ML) based on 1000 replicated datasets. Only values above 50% are shown. Bar, 0.1 substitutions per nucleotide position.
Fig. 1 in Report on 24 unrecorded bacterial species of Korea belonging to the phylum Firmicutes
Fig. 1. Transmission electron micrographs or scanning electron micrographs of cells of the strains isolated in this study. Strains: 1. RS35 B; 2. DE L 1 4; 3. DE L 2 2; 4. J27; 5. J29; 6. WRM2W; 7. MA19; 8. HME8790; 9. KYW872; 10. PM1; 11. OR L 1 6; 12. OR L 2 3; 13. MR1; 14. IK36; 15. HY M 2 2; 16. H421 H; 17. RS51; 18. Rk57 B; 19. MS514; 20. MK52; 21. UEJ41 D; 22. CT11; 23. SJ26; 24. ES05 9M1MA; 25. CNS51; 26. OR Y 1 1.
Fig. 2 in Report on 24 unrecorded bacterial species of Korea belonging to the phylum Firmicutes
Fig. 2. Neighborjoining phylogenetic tree based on 16S rRNA gene sequences, showing the relationship between the strains isolated in this study and their relatives of the family Bacillaceae. Bootstrap values (>50%) are shown at nodes. Filled circles indicate the nodes recovered by three other treeing methods including maximum likelihood, maximum parsimony, and neighbor joining. Bar, 0.01 substitutions per nucleotide position.
Fig. 4 in Report on 24 unrecorded bacterial species of Korea belonging to the phylum Firmicutes
Fig. 4. Neighborjoining phylogenetic tree based on 16S rRNA gene sequences, showing the relationship between the strains isolated in this study and their relatives of the family Paenibacillaceae. Bootstrap values (>50%) are shown at nodes. Filled circles indicate the nodes recovered by three other treeing methods including maximum likelihood, maximum parsimony, and neighbor joining. Bar, 0.01 substitutions per nucleotide position.
Fig. 3 in Report on 24 unrecorded bacterial species of Korea belonging to the phylum Firmicutes
Fig. 3. Neighborjoining phylogenetic tree based on 16S rRNA gene sequences, showing the relationship between the strains isolated in this study and their relatives of the family Enterococcaceae, Lactobacillaceae, Planococcaceae, Staphylococcaceae, and Streptococcaceae. Bootstrap values (>50%) are shown at nodes. Filled circles indicate the nodes recovered by three other treeing methods including maximum likelihood, maximum parsimony, and neighbor joining. Bar, 0.02 substitutions per nucleotide position.
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.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
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.