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501 results for “phylogenetic taxonomy”
FIGURE 1 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 1. Some morphological characters used to analyse the phylogenetic relationships of Phoebis. Numbers show character and state. More information is showed in table 1 and 2.
FIGURE 2 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 2. Phylogenetic tree obtained in Bayesian inference analysis for genus Phoebis, based on the combined data set of 20 morphological characters, one mitochondrial and tree nuclear markers. Values below the branches are posterior probabilities (BI analysis) those above the branches are bootstraps values (ML analysis).
FIGURE 3 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 3. Likelihood ancestral states reconstruction of some characters used for classifications of Phoebis and related genera. Character used in this analysis included dorsal spine of harpe, signum shape and line crossing wings.
Figure 3 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 3. In situ photographs of Apterodela spp. A) Apterodela ovipennis (Asia). B) Apterodela unipunctata (North America).
Figure 2 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 2. Representative dorsal habitus of Parvindela new genus. A) Parvindela debilis (type species. B) Parvindela terricola. C) Parvindela celeripes.
Figure 1 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 1. Maximum-likelihood phylogenetic hypothesis for North American lineages Ellipsoptera, Dromochorus, Brasiella, and Cylindera. Maximum-likelihood phylogeny inferred in IQ-TREE based on three mitochondrial fragments (16S, COX3 and CytB). Taxon naming follows previous naming conventions with different colors highlighting new generic groupings we propose. * denotes the C. lemniscata specimen from GenBank and † denotes the chimera specimen.
Figure 3 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 3. In situ photographs of Apterodela spp. A) Apterodela ovipennis (Asia). B) Apterodela unipunctata (North America).
Figure 2 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 2. Representative dorsal habitus of Parvindela new genus. A) Parvindela debilis (type species. B) Parvindela terricola. C) Parvindela celeripes.
Figure 1 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 1. Maximum-likelihood phylogenetic hypothesis for North American lineages Ellipsoptera, Dromochorus, Brasiella, and Cylindera. Maximum-likelihood phylogeny inferred in IQ-TREE based on three mitochondrial fragments (16S, COX3 and CytB). Taxon naming follows previous naming conventions with different colors highlighting new generic groupings we propose. * denotes the C. lemniscata specimen from GenBank and † denotes the chimera specimen.
FIGURE 8 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 8. Scale height as function of standard length for M. australis (orange) and M. oligolepis (blue).
FIGURE 7 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 7. Scale height comparison between syntopic species of the Moenkhausia oligolepis group (Rio Taquari, Rio Paraguai basin, Brazil) (a) M. australis, LBP 28570, 41.2 mm SL, and (b) M. oligolepis, LBP 10766, 41.0 mm SL. Comparative vertical line based on scale height of M. australis. Horizontal dashes indicate vertical scale limits.
FIGURE 6 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 6. Partial map of South America indicating the distribution of M. australis. Red triangle indicates type-locality. Rio Paraguai basin = orange; upper Rio Paraná = violet; Rio Uruguai basin = light brown; Rio Madeira basin = blue.
FIGURE 4. Moenkhausia australis, LBP 9714, 51.1 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 4. Moenkhausia australis, LBP 9714, 51.1 mm SL. (a) Left maxilla (medial view); (b) left premaxilla (medial view); (c) left dentary (medial view). Scale bar 1 mm.
FIGURE 3 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 3. Moenkhausia australis: (a) MZUSP 59317, 40.7 mm SL, Rio Taboco, Aquidauana, Mato Grosso do Sul, Brazil; (b) MCP 27464, 43.2 mm SL, Rio São Francisco, São Francisco de Assis, Rio Grande do Sul, Brazil; (c) LBP 9665, 37.5 mm SL, Córrego Azul, Ivinhema, Mato Grosso do Sul, Brazil; (d) MZUSP 115631, 36.2 mm SL, Rio Guaporé, Vila Bela da Santíssima Trindade, Mato Grosso, Brazil.
FIGURE 9 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 9. Relative frequencies of branched anal-fin rays for: (a) Moenkhausia australis (La Plata) and M. australis (Rio Madeira); (b) Moenkhausia forestii and M. australis (Rio Madeira); (c) Moenkhausia sanctaefilomenae (Rio Parnaíba) and M. australis (Rio Madeira); (d) Moenkhausia oligolepis and M. australis (Rio Madeira).
FIGURE 1 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 1. Molecular phylogenetic analysis by maximum likelihood method using the GTR model of nucleotide substitution and invariants for the data of COI gene. The numbers represent the groups frequencies observed using 1,000 bootstrap pseudoreplicas. Values below 50% are not represented.
FIGURE 2 in Taxonomy of Moenkhausia australis Eigenmann, 1908 (Characiformes, Characidae) with a discussion on its phylogenetic relationships
FIGURE 2. Moenkhausia australis (a) CAS 70818, lectotype, undetermined sex, 38.5 mm SL, Arroyo Trementina (= Rio Aquidaban in Concepcion, Paraguay); (b) CAS 70819, paralectotype, 30.7 mm SL, Arroyo Chagalalina (= Rio Aquidaban in Concepcion, Paraguay).
FIGURE 3. Phylogenetic relationships among 27 in Taxonomy and phylogeny of the genus Steinera (Arctomiales, Arctomiaceae) in the subantarctic islands of Crozet and Kerguelen
FIGURE 3. Phylogenetic relationships among 27 Steinera samples (with Gregorella humida as outgroup) based on a dataset of nuLSU, mtSSU, RPB1 and nuITS sequences that resulted from a Bayesian analysis using MrBayes. Posterior probabilities ≥ 0.95 are shown above internal branches, and Maximum Likelihood bootstrap values ≥ 70 obtained from a Garli analysis are shown below internal branches. Internal branches, considered strongly supported by both analyses, are represented by thicker lines. All Steinera samples are newly sequenced. Lineages representing new species of Steinera are highlighted.
FIGURE 2 in Phylogenetic taxonomy of Dematiopleospora fusiformis sp. nov. (Phaeosphaeriaceae) from Russia
FIGURE 2. Dematiopleospora fusiformis (MFLU 15-2133, holotype). a Herbarium label. b Herbarium specimen. c Appearance of ascomata on host. d Ascoma in vertical section. e Peridium. f Ostiole. g Pseudoparaphyses. h–j Asci. k–p Ascospores. Scale bars: d = 100 μm, e–f. h–j = 50 μm, g. k–n = 20 μm.
FIGURE 1 in Phylogenetic taxonomy of Dematiopleospora fusiformis sp. nov. (Phaeosphaeriaceae) from Russia
FIGURE 1. Maximum likelihood phylogenetic tree (lnL = -14877.362397) estimated from analysis of combined ITS, SSU and LSU sequence data for 58 strains of Phaeosphaeriaceae with Didymella exigua as the outgroup taxon. Bootstrap support values for RAxML higher than 60% and Bayesian posterior probabilities greater than 95% are indicated below the nodes. Hyphen (--) indicates a value lower than 60% (BS) or 0.95 (BYPP). The original strain numbers are noted after the species names. Ex-type strains are indicated in bold. The isolate from this study is indicated in blue.
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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)
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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.