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1,751 results for “molecular phylogenetics”
FIGURE 11 in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
FIGURE 11. Tectonic setting for the formation of mountain belts in central and Southwest Asia at 22 MYBP, Early Miocene. The map is after Dercourte et al. (1986) and uplifting in the Pamir and Karakoram mountains is schematic after Tapponier et al. (1981). Note the near docking of the Arabian Plate with Eurasia, forward movement of India into Eurasia, and Southwest movement of ancient Gondwanan Plates (Farah, Helmand, Iran).
FIGURE 8 in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
FIGURE 8. Strict consensus of three equally parsimonious trees of 5683 steps from the combined data with 4568 included (1288 informative) characters. These data consist of aligned mitochondrial DNA and nuclear RAG-1 DNA positions, as well as allozyme alleles coded as presence/absence characters. Bootstrap values are presented above branches and decay indices are presented below branches in bold. Outgroups (Laudakia, Bufoniceps, and Trapelus), and well-supported Phrynocephalus clades and lineages discovered in the mitochondrial DNA analysis are identified to the right as A–M.
FIGURE 4 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 4. Representatives of Phoebis, Aphrissa and Rhabdodryas (Males). Left side dorsal view, right side ventral view. A. Phoebis agarithe; B. Phoebis argante; C. Phoebis neocypris; D. Phoebis philea; E. Phoebis sennae; F. Aphrissa statira; G. Rhabdodryas trite; H. Phoebis avellaneda.
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 Molecular phylogenetic analysis of subfamilial placement of Haplotropis Saussure, 1888 (Orthoptera: Pamphagidae) based on mitochondrial and nuclear DNA markers
FIGURE 3. Phylogenetic tree based on the nucleotide sequences of ITS2 region of Pamphagidae. Support values shown as: SH-aLRT support/ ultrafast bootstrap (probability> 80/90 considered significant). The brackets on the right side show subfamily and family clusters.
FIGURE 2 in Molecular phylogenetic analysis of subfamilial placement of Haplotropis Saussure, 1888 (Orthoptera: Pamphagidae) based on mitochondrial and nuclear DNA markers
FIGURE 2. Phylogenetic tree based on the nucleotide sequences of COII mitochondrial gene of Pamphagidae. Support values shown as: SH-aLRT support/ ultrafast bootstrap (probability> 80/90 considered significant). The brackets on the right side show subfamily and family clusters.
FIGURE 1 in Molecular phylogenetic analysis of subfamilial placement of Haplotropis Saussure, 1888 (Orthoptera: Pamphagidae) based on mitochondrial and nuclear DNA markers
FIGURE 1. Phylogenetic tree, based on the nucleotide sequences of COI mitochondrial gene of Pamphagidae. Support values shown as: SH-aLRT support/ultrafast bootstrap (probability> 80/90 considered significant). The brackets on the right side show subfamily and family clusters.
Fig. 7 in Enlarging the monotypic Monocarpieae (Annonaceae, Malmeoideae): recognition of a second genus from Vietnam informed by morphology and molecular phylogenetics
Fig. 7. – Distribution of Leoheo domatiophorus Chaowasku, D.T. Ngo & H.T. Le (stars).
FIGURE 5 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 5. Orientelmis parvula (Nomura & Baba). A–C, habitus of the larva (scale bar is 1.0 mm); D, E, living larva; F, living adult. A, D, dorsal view; B, E, lateral view; C, ventral view.
FIGURE 6 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 6. Larva of Orientelmis parvula (Nomura & Baba). A, dorsal view; B, lateral view; C, ventral view.
FIGURE 9 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 9. Scanning electron microscopy photographs of larva of Orientelmis parvula (Nomura & Baba). A, mesothorax; B, meso- and metathorax; C–F, metathorax; G, thorax and abdominal segments I–III; H, abdominal segment II. A, D, E, F, dorsal view; G, H, lateral view; B, C, ventral view. Scale bars: 20 µm in F; 50 µm in A, D, E, H; 100 µm in B, C; 200 µm in G.
FIGURE 10 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 10. Scanning electron microscopy photographs of larva of Orientelmis parvula (Nomura & Baba). A, F, abdominal segments VI–IX; B, abdominal segment VIII; C–E, G, H, abdominal segment IX. A–E, dorsal view; F–H, ventral view. Scale bars: 20 µm in E; 50 µm in B, D, H; 200 µm in A, C, F, G.
FIGURE 1 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 1. Maximum-likelihood tree based on COI, ArgK, and 18S gene sequences obtained from 58 elimid and two dryopid species. Numbers on branches are bootstrap percentages (shown when>50%).
FIGURE 4 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 4. Scanning electron microscopy photographs of adult Orientelmis parvula (Nomura & Baba). A, habitus; B, pronotum and basal area of elytron; C, apical area of elytron; D, ventral surface; E, head and sterna of thorax; F, plastron setae of abdominal sternites. A–C, dorsal view; D–F, ventral view. Scale bars: 100 µm in F; 200 µm in A–C, E; 500 µm in D.
FIGURE 8 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 8. Scanning electron microscopy photographs of larva of Orientelmis parvula (Nomura & Baba). A–G, prothorax: B, middle part; C–F, left half. H, mesothorax. A–E, dorsal view; F, H. lateral view; G, ventral view. Scale bars: 20 µm in E; 50 µm in B–D; 100 µm in A, F–H.
FIGURE 7 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 7. Scanning electron microscopy photographs of larva of Orientelmis parvula (Nomura & Baba). A, head and prothorax; B, right half of the head; C, F, head and thorax; D, E, left side of the head; G, H, ventral side of the head. A, B, dorsal view; C–E, lateral view; F–H, ventral view. Scale bars: 20 µm in E; 50 µm in B; 100 µm in A, D, G, H; 200 µm in C, F.
FIGURE 3 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 3. Male (A–F) and female (G–J) genitalia of Orientelmis parvula (Nomura & Baba). A, G, tergite VIII; B, H, sternite VIII; C, sternite IX; D–F, aedeagus in dorsal (D), ventral (E), and lateral (F) views; I, ovipositor; J, stylus and distal part of coxite.
FIGURE 2 in Description of adults and larvae of Orientelmis parvula (Nomura & Baba, 1961) (Coleoptera: Elmidae) with their molecular phylogenetic analysis
FIGURE 2. Adult mouth parts of Orientelmis parvula (Nomura & Baba). A, Mandible in dorsal view; B, maxilla in ventral view; C, labium in ventral view; D, antenna.
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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.