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11 results for “Acropomatiformes”
FIGURE 3 in Investigations into the ancestry of the Grape-eye Seabass (Hemilutjanus macrophthalmos) reveal novel limits and relationships for the Acropomatiformes (Teleostei: Percomorpha)
FIGURE 3 | Optimal cladogram resulting from the partitioned-likelihood analysis of the Sanger and UCE dataset of the 54 core taxa and 279.979 nucleotide characters. Clades with ≥95% bootstrap support are identified with a black circle, clades with 70–94% bootstrap support are identified with a gray circle, and clades with ≥50–69% bootstrap support are identified with a white circle.
FIGURE 2 in Investigations into the ancestry of the Grape-eye Seabass (Hemilutjanus macrophthalmos) reveal novel limits and relationships for the Acropomatiformes (Teleostei: Percomorpha)
FIGURE 2 | Hypotheses of relationships among the Acropomatiformes based on the following studies: Smith, Wheeler (2006); Smith, Craig (2007); Betancur-R et al. (2013b); Near et al. (2013, 2015); Thacker et al. (2015); Davis et al. (2016); Mirande (2016); Sanciangco et al. (2016); Ghedotti et al. (2018); Rabosky et al. (2018); Satoh (2018). The asterisk in Mirande refers to the polyphyly of Malakichthyidae, where some members of the family were resolved outside of the Acropomatiformes.
FIGURE 5 in Investigations into the ancestry of the Grape-eye Seabass (Hemilutjanus macrophthalmos) reveal novel limits and relationships for the Acropomatiformes (Teleostei: Percomorpha)
FIGURE 5 | Optimal cladogram resulting from the partitioned-likelihood analysis of the Sanger and UCE dataset of the family-level 57 taxa and 279.979 nucleotide characters. Clades with ≥95% bootstrap support are identified with a black circle, clades with 70–94% bootstrap support are identified with a gray circle, and clades with ≥50–69% bootstrap support are identified with a white circle.
FIGURE 6 in Investigations into the ancestry of the Grape-eye Seabass (Hemilutjanus macrophthalmos) reveal novel limits and relationships for the Acropomatiformes (Teleostei: Percomorpha)
FIGURE 6 | Simplified 57-taxon maximum-likelihood phylogeny of major acropomatiform clades with the maximum-likelihood optimization of depth illustrated as pie charts on the nodes (black: fishes that live in the deep sea; white: fishes that exclusively live in shallow water) and of bioluminescence on the branches (blue: clade includes bioluminescent fishes; black: clade does not include bioluminescent fishes). The depth ranges of the different acropomatiform clades (standard deviation from the mean) are plotted in gray and the depth mean values are represented by the colored silhouettes (blue: families with bioluminescent fishes; pink non-bioluminescent families).
FIGURE 1 in Investigations into the ancestry of the Grape-eye Seabass (Hemilutjanus macrophthalmos) reveal novel limits and relationships for the Acropomatiformes (Teleostei: Percomorpha)
FIGURE 1 | Images of preserved and radiographed specimens of Hemilutjanus macrophthalmos: USNM 77623 (upper); SIO 12- 3086 (middle); LACM 44038 (lower). Scale bars = 10 mm.
FIGURE 4 in Investigations into the ancestry of the Grape-eye Seabass (Hemilutjanus macrophthalmos) reveal novel limits and relationships for the Acropomatiformes (Teleostei: Percomorpha)
FIGURE 4 | Optimal cladogram resulting from the species-tree analysis of the Sanger and UCE dataset composed of the 54 core taxa and 466 loci. Clades with ≥95% LPP support are identified with a black circle, clades with 70–94% LPP support are identified with a gray circle, and clades with ≥50–69% LPP support are identified with a white circle.
FIGURE 4 in Malakichthys formosus, a new species of small seabass (Acropomatiformes: Malakichthyidae) from southwestern Taiwan
FIGURE 4. Proximal-middle radial of anal-fin pterygiophore of Malakichthys formosus sp. nov., NMMB-P37684, 72.1 mm SL, paratype: A, lateral view; B. details of the middle part; C. anterior view.
FIGURE 2 in Malakichthys formosus, a new species of small seabass (Acropomatiformes: Malakichthyidae) from southwestern Taiwan
FIGURE 2. Fresh coloration of Malakichthys formosus sp. nov., NMMB-P37683, 85.4 mm SL, holotype. Scale bar=10 mm.
FIGURE 1 in Malakichthys formosus, a new species of small seabass (Acropomatiformes: Malakichthyidae) from southwestern Taiwan
FIGURE 1. Four species of Malakichthys occur around Taiwan: A. M. barbatus, NMMB-P37691, 160.8 mm SL; B. M. elegans NMMB-P37692, 93.9 mm SL; C. M. griseus NMMB-P37693, 112.4 mm SL; D. M. wakiyae, collected from Keziliao, southwestern Taiwan, not retained (photo by C.-N. Tang). Scale bars=10 mm.
FIGURE 5 in Malakichthys formosus, a new species of small seabass (Acropomatiformes: Malakichthyidae) from southwestern Taiwan
FIGURE 5. Schematic drawing of the proximal-middle radial of anal-fin pterygiophore of Malakichthys formosus sp. nov.: A, lateral view; B. anterior view. Doted lines indicate the lamellar septum; short dashed lines indicate the contour of the hollow; long dashed line indicates the outline of the vane. Abbreviations: AFS, anal-fin spine; AS, anterior surface; EHO, end of the hollow; HO, hollow; LS, lamellar septum; LW, lateral wing; VA, vane.
FIGURE 3 in Malakichthys formosus, a new species of small seabass (Acropomatiformes: Malakichthyidae) from southwestern Taiwan
FIGURE 3. Fresh colorations of Malakichthys formosus sp. nov., paratypes: A, NMMB-P37685, 71.9 mm SL; B, NMMB-P37686, 64.9 mm SL; C, NMMB-P37687, 71.2 mm SL; D, NMMB-P37688, 74.1 mm SL. Scale bars=10 mm.
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
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DANDI Archive for NWB datasets
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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.