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684 results for “Phylogenetic placement”
FIGURES 50–56 in A new genus of caponiid spiders with its phylogenetic placement within Nopinae and the description of a new species of Orthonops Chamberlin, 1924 from Eastern Mexico (Araneae: Synspermiata, Caponiidae)
FIGURES 50–56. Aamunops misi sp. n., 50, 51, 53, 55, 56, male; 52, 54, female. 50, leg I prolateral view; 51, leg II prolateral view; 52, leg I prolateral view; 53, claws prolateral view; 54, epigynum dorsal view; 55, embolus tip prolateral and retrolateral view; 56, pedipalp prolateral view. Scale bars: = 0.2 mm (Figs. 50–52, 54, 56), 0.1 mm (Fig. 53), 0.05 mm (Fig. 55).
Figure 3 in New specimens from Mid-Cretaceous Myanmar amber illuminate the phylogenetic placement of Lagonomegopidae (Arachnida: Araneae)
Figure 3. Hiatomegops spinalis, holotype CNU-ARA-MA2020002: A, habitus, dorsal view, showing fovea (arrow) and feathery setae (magnified at the top right) on carapace; B, schematic drawing of dorsal habitus; C, habitus, ventral view; D, schematic drawing of ventral habitus; E, cephalothorax, anterior view, showing peg teeth (magnified at the bottom left); F, tibia and tarsus of right pedipalp, lateral view, showing trichobothria (asterisks) and long macrosetae (arrow); G, basal part of abdomen, ventral view, showing female genitalia and tracheal spiracle; H, schematic drawing of basal ventral abdomen; I, spinnerets, ventral view; J, schematic drawing of spinnerets, showing spigots (lower arrow). Scale bars represent 0.5 mm (A, B, C, D), 0.2 mm (E) and 0.1 mm (F, G, H, I, J).
FIGURE 4 in First record of Larsonella pumilus (Teleostei: Gobiidae) from Japan, with phylogenetic placement of the genus Larsonella
FIGURE 4. Pigmentations around the eyes of Larsonella pumilus (OCF-P 3808, 21.6 mm SL) in dorsal (left) and lateral (right) views. Photos were taken after preservation.
FIGURE 6 in First record of Larsonella pumilus (Teleostei: Gobiidae) from Japan, with phylogenetic placement of the genus Larsonella
FIGURE 6. Molecular phylogeny of Larsonella pumilus and 19 related goby species from the Ryukyu Archipelago. Tree topology and branch lengths were obtained from maximum likelihood analysis of aligned mitochondrial genomes (15559 bp) with 100 bootstraps based on the GTR+I+Gamma model. The scale bar indicates 0.1 substitutions per site. Numbers on major nodes represent ML bootstrap support. Bayesian posterior probabilities are summarized as asterisks for values equal to 1.
FIGURES 44–51. 44, K in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 44–51. 44, K. erwini, dorsal head; 45, K. erwini, apex clava; 46, K. erwini, propodeum; 47, K. erwini, lateral procoxa; 48, K. erwini, digitiform ornamentation of postgenal bridge; 49, K. erwini, lateral petiole; 50, K. erwini, male antenna; 51, K. erwini, male antenna, pedicel to F4. Note: all females unless otherwise noted.
FIGURE 1 in On the monophyly of subfamily Tectarioideae (Polypodiaceae) and the phylogenetic placement of some associated fern genera
FIGURE 1. Phylogenetic relationships of species associated with Tectaria based on plastid DNA markers (atpA, rbcL and trnL-F IGS). A. Bayesian inference (BI) phylogram showing branch lengths; B. Fifty percent majority-rule consensus tree resulting from parsimonious analyses. Maximum parsimony (MP) bootstrap percentages are shown above the corresponding branches and posterior probabilities (PP) are given below the branches. Square brackets indicate nodes that do not appear in the BI phylogram. Dashes indicate MP bootstrap values of less than 50%. Arrows indicate accessions of genera previously segregated from Tectaria, from top to bottom Hemigramma (2 samples), Podopeltis, Quercifilix, Ctenitopsis, Dictyoxiphium and Fadyenia, and Psammiosorus formerly segregated from Arthropteris.
FIGURE 1 in A multiple gene genealogy reveals phylogenetic placement of Rhopalostroma lekae
FIGURE 1. The phylogram inferred from likelihood analysis of family Xylariaceae using ITS-LSU-RPB2 sequences. Strain/culture numbers are given following the taxon names; Type specimens and ex/epi-type strains are highlighted in bold. The bootstrap support values from likelihood analysis>50% from 1000 RAxML replicates are shown above the branches. The tree is rooted with Diatrype disciformis (out group).
Fig. 34 in Revision ofEutyphlusLeConte (Coleoptera: Staphylinidae: Pselaphinae), with Description of a New Species and Phylogenetic Placement within the Tribe Trichonychini
Fig. 34. Preferred tree of 26 most parsimonious trees (L = 347, CI = 0.37, RI = 0.52) with character states mapped. Open circles indicate homoplasious characters; black circles indicate unambiguous characters. Characters are listed above circles; character states are indicated below circles.
Fig. 10 in Larval Description and Phylogenetic Placement of the South African Endemic Genera Coelhydrus Sharp and Darwinhydrus Sharp (Coleoptera: Dytiscidae: Hydroporinae: Hyphydrini)
Fig. 10. One of the most parsimonious trees obtained from the cladistic analysis of nine terminal taxa of Hydroporinae, with character changes mapped for each clade (using ACCTRAN optimization). Solid rectangles indicate unique character state transformations; open rectangles indicate homoplasious character state transformations. Numbers outside parentheses are characters listed in Table 3; numbers within parentheses are character states as given in Table 3.
Figs. 7–8 in Larval Description and Phylogenetic Placement of the South African Endemic Genera Coelhydrus Sharp and Darwinhydrus Sharp (Coleoptera: Dytiscidae: Hydroporinae: Hyphydrini)
Figs. 7–8. Darwinhydrus solidus, instar III, metathoracic leg. 7) Anterior surface; 8) Posterior surface. Scale bar = 0.50 mm.
Figs. 1–2. Coelhydrus brevicollis, instar III. 1 in Larval Description and Phylogenetic Placement of the South African Endemic Genera Coelhydrus Sharp and Darwinhydrus Sharp (Coleoptera: Dytiscidae: Hydroporinae: Hyphydrini)
Figs. 1–2. Coelhydrus brevicollis, instar III. 1) Head capsule, dorsal view; 2) Abdominal segment VIII and proximal portion of urogomphi, dorsal view. Scale bars = 0.50 mm.
FIGURE 5 in The odd one in: re-diagnosis and phylogenetic placement of the Assam Day Gecko Cnemaspis assamensis Das & Sengupta 2000 (Squamata: Gekkonidae)
FIGURE 5.Cnemaspis assamensis (ZSIWGRC3068): (A) Fore limb–Manus (B) Hind limb–Pes (C) Dorsal side of the tail (D) Ventral side of the tail.
FIGURE 3 in Description and phylogenetic placement of a new species of Patania (Lepidoptera Crambidae: Spilomelinae) resembling P. harutai (Inoue, 1955)
FIGURE 3. Tympanal organ, eighth abdominal segment, and hairpencil of P. crepuscularia sp. nov. A: tympanal organ with venulae secundae, B: eighth abdominal segment (gen. slide no. YM482). C: hairpencil dorsal view, D: ditto, lateral view (gen. slide no. YM427). Scale bars = 1.0 mm.
FIGURE 5 in Description and phylogenetic placement of a new species of Patania (Lepidoptera Crambidae: Spilomelinae) resembling P. harutai (Inoue, 1955)
FIGURE 5. Female genitalia of two Patania species. A: P. crepuscularia sp. nov. (gen. slide no. YM428), B: P. harutai (gen. slide no. YM066). Scale bars = 2.5 mm.
FIGURE 2 in A new species of Ecitonides Wasmann, 1894 (Coleoptera: Staphylinidae: Paederinae) from Peru and phylogenetic placement of the genus based on molecular data
FIGURE 2. Morphological details of Ecitonides constanceae sp. nov. A. Close up of head in dorsal view. B. Close up of head in lateral view. C. Close up of pronotum. D. Drawing of labrum. E. Antenna. Scale bars: A–C, E = 1.0 mm; D = 0.5 mm.
FIGURE 3 in A new species of Ecitonides Wasmann, 1894 (Coleoptera: Staphylinidae: Paederinae) from Peru and phylogenetic placement of the genus based on molecular data
FIGURE 3. Ecitonides constanceae sp. nov. A. Male sternite VIII. B. Aedeagus in dorsal view. C. Aedeagus in lateral view. Scale bar: 1.0 mm.
Fig. 16 in The Enigmatic Dead-Leaf Miner Geochus Broun (Coleoptera: Curculionidae): Phylogenetic Placement, a New Species, and Lectotype Designations
Fig. 16. Dorsal habitus photographs of representatives of the type series or holotypes of Geochus arranged into informal groups.
Fig. 12 in The Enigmatic Dead-Leaf Miner Geochus Broun (Coleoptera: Curculionidae): Phylogenetic Placement, a New Species, and Lectotype Designations
Fig. 12. Geochus inaequalis, female terminalia, confocal microscope images. A) Sternite VIII and spermatheca, B) Enlargement of sternite VIII, C) Enlargement of spermatheca.
Fig. 8 in The Enigmatic Dead-Leaf Miner Geochus Broun (Coleoptera: Curculionidae): Phylogenetic Placement, a New Species, and Lectotype Designations
Fig. 8. Geochus kuscheli, new species, male (A–C) and female (D–E) terminalia. A) Aedeagus, dorsal view, B) Aedeagus, lateral view, C) Sternites VIII (with spiculum gastrale) and IX, D) Spermatheca, E) Sternite VIII.
Fig. 7. SEM images, Geochus tibialis. A in The Enigmatic Dead-Leaf Miner Geochus Broun (Coleoptera: Curculionidae): Phylogenetic Placement, a New Species, and Lectotype Designations
Fig. 7. SEM images, Geochus tibialis. A) Left antenna, showing apex of scape and funicular articles, B) Mesonotum, C) Right elytron, D) Enlargement of elytron, showing canal openings of wax glands (arrows), E) Pro- and mesothorax, lateral aspect, showing partially fused metaventrite and metepisternum, F) Enlargement of metepisternum, showing stellate setae/tentacular scales on mes- and metanepisterna.
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
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.