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513 results for “molecular characters”
FIGURE 36 in Phylogeny of the boulengeri group (Iguania: Liolaemidae, Liolaemus) based on morphological and molecular characters
FIGURE 36: Tree found for L.boulengeri group based on the combined analysis among morphological and molecular characters (Total Evidence analysis). Lenght: 4989.201 CI: 0.309 IR: 0.603.
FIGURE 9. A in Phylogeny of the boulengeri group (Iguania: Liolaemidae, Liolaemus) based on morphological and molecular characters
FIGURE 9. A: Differentiated scales, in the lower half of the anterior border of the External Auditory Meatus; B: Differentiated scales in the posterior- upper border of the External Auditory Meatus; LSA: Lateral-superior auricular scale; HeEAM: Heigth of External Auditory Meatus; WEAM: Width of External Auditory Meatus
FIGURE 27 in Phylogeny of the boulengeri group (Iguania: Liolaemidae, Liolaemus) based on morphological and molecular characters
FIGURE 27: Tail dorsal design: A: Smooth or with few small spots; B: "Longitudinal stripe"; C: With an striped design; D: Ring form.
FIGURE 19 in Phylogeny of the boulengeri group (Iguania: Liolaemidae, Liolaemus) based on morphological and molecular characters
FIGURE 19: Black antehumeral arch: A: Absent; B: Present with lineal disposition; C: Present, divided ventrally in two; D: Present, expanded ventrally.
FIGURE 32 in Phylogeny of the boulengeri group (Iguania: Liolaemidae, Liolaemus) based on morphological and molecular characters
FIGURE 32: Resultant tree with binary polymorphic characters, were analyzed like polymorphic and all the characters with equal weight. Length: 1499.900 Cl: 0.235 IR: 0.564
FIGURE 22 in Phylogeny of the boulengeri group (Iguania: Liolaemidae, Liolaemus) based on morphological and molecular characters
FIGURE 22: Paravertebrals spots-shape: A: Absent; B: As points, small; C: As circles or prominent subquadrangulars; D: As half-moon, posteriorly opened; E: As a line transverse to body`s axis; F: As a line longitudinal to body`s axis; G: As half-moon, posteriorly opened.
FIGURE 1 in The genus Xylaria (Xylariaceae) in the south of China-6. A new Xylaria species based on morphological and molecular characters
FIGURE 1. Xylaria fusispora (from holotype): a. Stromata; b. Stromatal surface; c. Ascospores; d. Asci; e. Ascospore bearing appendage; f. Germ slit; g. Ascus apical ring; h. Ascospore by scanning-electron microscopy; i. Colony on OA after 4 weeks of incubation. Scale bars: a = 5 mm, b = 0.5 mm, c,d = 20 µm, e,f = 5 µm, g,i = 15 µm.
FIGURE 2 in The genus Xylaria (Xylariaceae) in the south of China-6. A new Xylaria species based on morphological and molecular characters
FIGURE 2. Strict consensus tree illustrating the phylogeny of Xylaria fusispora and selected Xylaria species generated by maximumlikelihood, maximum-parsimony and neighbour-joining analyses based on ITS sequences. Hypoxylon fragiforme and Camillea obularia were used as outgroup taxa. Name in bold indicates the new species. The bootstrap values (>50%) of maximum-likelihood, maximum-parsimony and neighbor-joining analyses of 1000 resampled datasets are shown (ML/MP/NJ).
Figure 2 in Discovery of a predaceous drosophilid Acletoxenus indicus Malloch in South China, with descriptions of the taxonomic, ecological and molecular characters (Diptera: Drosophilidae)
Figure 2. Acletoxenus indicus Malloch. (A) Adult; (B) larvae (green) preying upon spiralling whitefly on the underside of guava leaf; (C) coarctate pupae of spiralling whitefly; (D) puparium after eclosion. [This figure can be viewed in colour online.]
Figure 1 in Discovery of a predaceous drosophilid Acletoxenus indicus Malloch in South China, with descriptions of the taxonomic, ecological and molecular characters (Diptera: Drosophilidae)
Figure 1. Acletoxenus indicus Malloch, male. (A) Head; (B) wing; (C) epandrium (epan), cercus (cerc) and surstylus (sur) (lateral view); (D) hypandrium (hypd), paramere (pm), aedeagus (aed) and aedeagal apodeme (aed a) (lateral view). Scale bars: 0.1 mm.
FIGURE 4 in A cryptic new species of Miniopterus from south-eastern Africa based on molecular and morphological characters
FIGURE 4. Graph showing width across upper canines plotted against complete upper canine-molar toothrow in different Miniopterus spp. (crosses = M. minor, filled circles = M. fraterculus, open squares = M. mossambicus sp. nov.; plus = M. natalensis). Arrows point to type specimens.
FIGURE 3 in A cryptic new species of Miniopterus from south-eastern Africa based on molecular and morphological characters
FIGURE 3. Portrait of the holotype of Miniopterus mossambicus sp. nov. (FMNH 213651). (Photograph by Ara Monadjem.)
FIGURE 1 in A cryptic new species of Miniopterus from south-eastern Africa based on molecular and morphological characters
FIGURE 1. Bayesian phylogenetic tree topology showing (Bayesian/Maximum Likelihood/Neighbour joining) support at the major nodes.
FIGURE 2 in A cryptic new species of Miniopterus from south-eastern Africa based on molecular and morphological characters
FIGURE 2. Map of southern Africa showing the type locality for Miniopterus mossambicus sp. nov., as well as localities for the other mainland African specimens mentioned in this study. Miniopterus mossambicus—D; M. fraterculus—•; M. minor— X; M. natalensis—+.
FIGURE 7 in A cryptic new species of Miniopterus from south-eastern Africa based on molecular and morphological characters
FIGURE 7. Skull of holotype of Miniopterus mossambicus sp. nov. (FMNH 213651). (Photograph taken by John Weinstein, Field Museum image number Z94640_08d.)
FIGURE 3 in Exploring character conflict in molecular data*
FIGURE 3. Likelihood mapping results for three hypothetical data sets. Each corner of the triangle represents a different phylogenetic hypothesis for the arrangement of four taxa. Figures represent the percentage of dots in each part of the triangle, where dots represent quartets of sequences sampled from an alignment of DNA sequences. In (a) most points cluster in all three corners; in the general approach to likelihood mapping this would represent a dataset with strong phylogenetic signal, in the context of testing a specific hypothesis it would represent a data set in which the results depend on which taxa are sampled from each group. In (b) most points cluster in the middle; in either approach this would represent a data set with little or no phylogenetic signal. In (c) most points cluster in one corner (lower left); this would represent a strong and consistent phylogenetic signal in favour of one particular hypothesis.
FIGURE 2. A phylogenetic network for a hypothetical data set. This network represents the relationships between four taxa, A-D in Exploring character conflict in molecular data*
FIGURE 2. A phylogenetic network for a hypothetical data set. This network represents the relationships between four taxa, A-D. The length of branch (a) is proportional to the strength of support for the relationship (A,C)(B,D). The length of branch (b) is proportional to the strength of support for the relationship (A,B)(C,D). In this example there is conflicting support for both of these arrangements, but more weight is given to (A,C)(B,D) than to (A,B)(C,D).
FIGURE 21. Maximum parsimony 16S rRNA phylogram for the Boophis albipunctatus group. From 485 total characters, 391 were constant and 72 in Integrative taxonomy of Malagasy treefrogs: combination of molecular genetics, bioacoustics and comparative morphology reveals twelve additional species of Boophis 2383
FIGURE 21. Maximum parsimony 16S rRNA phylogram for the Boophis albipunctatus group. From 485 total characters, 391 were constant and 72 parsimony informative. MP searches retained 26 trees of which a strict consensus is shown. Consensus support values higher than 50, from 2000 bootstrap replicates, are shown; an asterisk indicates Bayesian posterior probabilities equal or higher than 95%. Species newly described herein are in bold.
FIGURE 2 in New record genus and a new species of Allodiatrype from China based on morphological and molecular characters
FIGURE 2 Allodiatrype trigemina (FCATAS841, Holotype). a, c Stromata on host substrate. b Cross section of stroma. d Close up of stromata surface, showing ostiolar opening appearing with Y-shaped or trigeminal-shaped structure.) e–g Vertical section of stroma, showing perithecia. h–j Asci. k–m Ascospores. n Paraphyses. Bars: a–g = 500 μm, h–j = 20 μm, n = 10 μm, k–m = 5 μm.
FIGURE 1 in New record genus and a new species of Allodiatrype from China based on morphological and molecular characters
FIGURE 1. Phylogeny of Diatrypaceae inferred from ITS-SSU-TUB2 sequences. Topology is from RaxML analysis with maximum likelihood bootstrap values (≥75 former) and Bayesian posterior probability values (≥0.95, latter) shown along the branches. Different genera are indicated as coloured blocks. The new species is set in bold. Scale bar: 0.1 nucleotide substitutions per site. Branches with 100% ML and 1.00 BYPP are shown with a blue dot.
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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Annotated Behaviour and Observability Dataset (ABODe)
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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.