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FIGURE 21 in Contribution to the knowledge of Chinese Gryllacrididae (Orthoptera) V: Further study on the Chinese Capnogryllacris and comment on the phylogenetic relationships of the Gryllacrididae
FIGURE 21. Capnogryllacris sequestris sp. nov.. Male: A–B. habitus in lateral view; C–D. tegmina in dorsal view: C. left tegmen, D. right tegmen.
FIGURE 17 in Contribution to the knowledge of Chinese Gryllacrididae (Orthoptera) V: Further study on the Chinese Capnogryllacris and comment on the phylogenetic relationships of the Gryllacrididae
FIGURE 17. Capnogryllacris nigromarginata hainanensis ssp. nov.. Male: A. head in frontal view; B–C. head and pronotum: B. lateral view, C. dorsal view; D–G. apex of abdomen: D. lateral view, E. apical view, F. apico-ventral view, G. ventral view; H–I. tegmina in dorsal view: H. left tegmen, I. right tegmen.
FIGURE 15 in Contribution to the knowledge of Chinese Gryllacrididae (Orthoptera) V: Further study on the Chinese Capnogryllacris and comment on the phylogenetic relationships of the Gryllacrididae
FIGURE 15. Capnogryllacris nigromarginata hainanensis ssp. nov.. Male: A. head in frontal view; B–C. head and pronotum: B. dorsal view, C. lateral view; D. second and third abdominal tergites in lateral view; E–H. apex of abdomen: E. lateral view, F. dorsal view, G–H. ventral view.
FIGURE 23 in Contribution to the knowledge of Chinese Gryllacrididae (Orthoptera) V: Further study on the Chinese Capnogryllacris and comment on the phylogenetic relationships of the Gryllacrididae
FIGURE 23. Capnogryllacris spinosa (Li, Liu & Li, 2014). Male (from Mao´ershan, Guangxi, XZ61): A–B. head and pronotum: A. dorsal view, B. lateral view; C–F. apex of abdomen: C. dorsal view, D–E. lateral view, F. ventral view.
FIGURE 11 in Contribution to the knowledge of Chinese Gryllacrididae (Orthoptera) V: Further study on the Chinese Capnogryllacris and comment on the phylogenetic relationships of the Gryllacrididae
FIGURE 11. Capnogryllacris nigromarginata nigromarginata (Karny, 1928). Male: A. head in frontal view; B–C. head and pronotum: B. dorsal view, C. lateral view; D. second and third abdominal tergites in lateral view; E–I. apex of abdomen: E. dorso-apical view, F. lateral view, G. dorsal view, H. ventral view, I. apical view.
FIGURE 10 in Contribution to the knowledge of Chinese Gryllacrididae (Orthoptera) V: Further study on the Chinese Capnogryllacris and comment on the phylogenetic relationships of the Gryllacrididae
FIGURE 10. Capnogryllacris melanocrania (Karny, 1929). Male: A–B. habitus in lateral view; C–D. tegmina in dorsal view: C. left tegmen, D. right tegmen.
Fig. 1. Neighbour-joining phylogenetic tree derived using 16S rRNA gene sequences, showing the relationships between strain HNM0687T in Gordonia mangrovi sp. nov., a novel actinobacterium isolated from mangrove soil in Hainan
Fig. 1. Neighbour-joining phylogenetic tree derived using 16S rRNA gene sequences, showing the relationships between strain HNM0687T and other type strains of the genus Gordonia. Only values above 50% are shown. Asterisks represent clades that were also recovered by the maximum-likelihood and maximum-parsimony methods. Bar, one nucleotide substitution per 100 nucleotides.
Fig. 1. Phylogenetic relationship between strain Gsoil 809T in Arachidicoccus ginsenosidivorans sp. nov., with ginsenosideconverting activity isolated from ginseng cultivating soil
Fig. 1. Phylogenetic relationship between strain Gsoil 809T and other related species of the family Chitinophagaceae. The tree was reconstructed using the maximum-likelihood method based on 16S rRNA gene sequences. Bootstrap values (expressed as percentages of 1000 replications)>60 % are shown at branch points. Filled circles indicate that the corresponding nodes were also recovered in the tree generated with maximum-parsimony and neighbour-joining algorithms. Thermoflavifilum aggregans P373T (GenBank accession number AM749771) was used as an outgroup. Bar, 0.05 substitutions per nucleotide position.
Figure 7. Phylogenetic relationships among 19 in Comparative morphology, phylogeny, and classification of West African callopanchacine killifishes (Teleostei: Cyprinodontiformes: Nothobranchiidae)
Figure 7. Phylogenetic relationships among 19 taxa of the Callopanchacini and 11 out-group taxa: left, strict consensus tree of the 24 most-parsimonious trees from the analysis of molecular data (3296 bp), comprising segments of the mitochondrial genes 16S and ND2, and the nuclear gene 28S; right, strict consensus tree of the two most-parsimonious trees from the combined analysis of the same molecular data set and 63 morphological characters. Numbers above the node are bootstrap percentages higher than 50%, below are posterior probabilities of the Bayesian analysis higher than 0.95.
FIGURE 11 in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 11. Posterior margin of preopercle. A: Scolopsis vosmeri, NTM S.14230-001, 140 mm SL, Sandakan. Sabah, Malaysia; B: Scolopsis japonica, WAM P.31312-002, 127.7 mm SL, Bintan Island, Indonesia; C: Scolopsis curite, NTM S.13160-013, 132.2 mm SL, Chilaw, Sri Lanka; arrow showing more rugose margin of latter. Photos by B.C. Russell.
FIGURE 12 in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 12. Maximum likelihood tree for species of Scolopsis based on publicly available partial sequences of the mitochondrial cytochrome oxidase I (COI) gene plus COI sequences generated in this study. Branch labels are bootstrap support values in percent obtained from 1.000 replicated analyses. Bar indicates the average number of nucleotide substitutions.
FIGURE 10. Scolopsis curite. A in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 10. Scolopsis curite. A: 'Kurite' of Russell (1803: pl. 106); B: Scolopsis kurite from Rüppell (1828: pl. 2, fig. 3); C: Neotype of Scolopsis curite, ZSI/ANRC M/23687, 122.3 mm SL, Puducherry, Tamil Nadu, India, photo by B.C. Russell.
FIGURE 9. Scolopsis curite, fresh specimens. A in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 9. Scolopsis curite, fresh specimens. A: SMF 34242 [KAU14-526], 115 mm SL, Jizan, Saudi Arabia; B: MUFS 33734, 120 mm SL, Oman. Photos by S.V. Bogorodsky (A), Y. Iwatsuki (B).
FIGURE 5 in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 5. Scolopsis japonica, KAUM–I.52620, 111.8 mm SL, Panay I., Philippines. Photo by K. Fujiwara.
FIGURE 8. Scolopsis curite, live individuals. A in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 8. Scolopsis curite, live individuals. A: south-western Madagascar; B: Alameh, Socotra. Photos by G.R. Allen (A), S.V. Bogorodsky (B).
FIGURE 1. Scolopsis vosmeri, live individuals. A in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 1. Scolopsis vosmeri, live individuals. A: Brunei; B: Sri Lanka; C: eastern Thailand. Photos by G.R. Allen (A & C), J.E. Randall (B).
FIGURE 7. A in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 7. A: Scolopsides pomotis Richardson, 1846, based on watercolor painting (Reeves Collection of Chinese fish drawings No. β.15); B: Scolopsis japonica (Bloch) mistakenly identified by Richardson (1846) as Scolopsides inermis Temminck & Schlegel (Reeves Collection of Chinese fish drawings No. 262); C: Scolopsis japonica (Bloch) mistakenly identified by Richardson (1846) as Scolopsides rupelii Cuvier (Reeves Collection of Chinese fish drawings No. 47). Photographs courtesy of Natural History Museum, London.
FIGURE 6. Scolopsis japonica. A in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 6. Scolopsis japonica. A: Anthias japonicus, Plate 325 from Bloch (1792); B: Neotype of Scolopsis japonica (Bloch), MNHN 0000-6460, 102.4 mm SL, Batavia (= Jakarta), Java, Indonesia, photo by J. Pfliger, MNHN.
FIGURE 2 in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 2. Scolopsis vosmeri: A: juvenile, Brunei; B: subadult, BPBM 18765, paratype of S. igcarensis, 74 mm SL, Sri Lanka; C: adult, BPBM 27195, 155.1 mm SL, Hikkaduwa, Sri Lanka. Photos by G.R. Allen (A & B), J.E. Randall (C).
FIGURE 3. Anthias vosmeri Bloch. A in The taxonomic identity of the monocle bream Scolopsis vosmeri species complex (Perciformes: Nemipteridae), with comments on molecular phylogenetic relationships within the genus Scolopsis
FIGURE 3. Anthias vosmeri Bloch. A: holotype, ZMB 8729, c.128.9 mm SL; B: Plate 321 from Bloch (1792).
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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.