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684 results for “Phylogenetic placement”
Figures 8-13 from: del Rio M, Lanteri A (2011) Obrieniolus, a new monotypic genus of Naupactini (Coleoptera, Curculionidae, Entiminae) from the Peruvian Andes and its phylogenetic placement. ZooKeys 102: 51-60. https://doi.org/10.3897/zookeys.102.1240
Figures 8-13 - Antennae, ventrites and female genitalia of Obrieniolus robustus sp. n. 8 left antenna 9 ventrites 10 sternite VIII 11 ovipositor, ventral view 12 spermatheca 13 spermatheca with spermathecal duct. Scale line: 1 mm.
Figures 4-7 from: del Rio M, Lanteri A (2011) Obrieniolus, a new monotypic genus of Naupactini (Coleoptera, Curculionidae, Entiminae) from the Peruvian Andes and its phylogenetic placement. ZooKeys 102: 51-60. https://doi.org/10.3897/zookeys.102.1240
Figures 4-7 - Mouthparts of Obrieniolus robustus sp. n.. 4 prementum, external view 5 prementum, internal view 6 prementum, lateral view 7 left maxilla.
Figure 14 from: del Rio M, Lanteri A (2011) Obrieniolus, a new monotypic genus of Naupactini (Coleoptera, Curculionidae, Entiminae) from the Peruvian Andes and its phylogenetic placement. ZooKeys 102: 51-60. https://doi.org/10.3897/zookeys.102.1240
Figure 14 - Most parsimonious tree, based on morphological characters, analyzed under equal weights (L 195.20, CI 0.58, RI 0.53). Bootstrap values over 50% below the corresponding branches. Discrete characters (17 to 68) mapped on the branches:open circles=homoplasies, black circles=synapomorphies. Numbers of characters and character states as in table 1.
Figures 1-3 from: del Rio M, Lanteri A (2011) Obrieniolus, a new monotypic genus of Naupactini (Coleoptera, Curculionidae, Entiminae) from the Peruvian Andes and its phylogenetic placement. ZooKeys 102: 51-60. https://doi.org/10.3897/zookeys.102.1240
Figures 1-3 - Obrieniolus robustus sp. n., holotype 1 habitus, dorsal 2 habitus, lateral 3 head and rostrum, dorsal.
Figure 4 from: Onadeko A, Roedel M, Liedtke H, Barej M (2014) The rediscovery of Perret's toad, Amietophrynus perreti (Schiøtz, 1963) after more than 40 years, with comments on the species' phylogenetic placement and conservation status. Zoosystematics and Evolution 90(2): 113-119. https://doi.org/10.3897/zse.90.8234
Figure 4 - A specimen of the rediscovered Amietophrynus perreti from the type locality, the Idanre Hills, south-western Nigeria.
Figure 1 from: Onadeko A, Roedel M, Liedtke H, Barej M (2014) The rediscovery of Perret's toad, Amietophrynus perreti (Schiøtz, 1963) after more than 40 years, with comments on the species' phylogenetic placement and conservation status. Zoosystematics and Evolution 90(2): 113-119. https://doi.org/10.3897/zse.90.8234
Figure 1 - Habitat (right) of Amietophrynus perreti tadpoles (left) at the type locality, the Idanre Hills in Nigeria (photos: courtesy of A. Schiøtz).
Figure 2 from: Onadeko A, Roedel M, Liedtke H, Barej M (2014) The rediscovery of Perret's toad, Amietophrynus perreti (Schiøtz, 1963) after more than 40 years, with comments on the species' phylogenetic placement and conservation status. Zoosystematics and Evolution 90(2): 113-119. https://doi.org/10.3897/zse.90.8234
Figure 2 - The Idanre Hills inselbergs in south-western Nigeria (a-f), the type locality and only known habitat of Amietophrynus perreti. Survey site A was only about 50 m from the last house in a; b: figures a overflown part of rock at site B; c: some Amietophrynus perreti were observed close to the waste dumping site (left at the rock base), probably feeding on flies or other insects; d: a road leading to Site C, the cocoa farm being further in the background adjacent to the large rock; e: part of site C.
Figure 5 from: Onadeko A, Roedel M, Liedtke H, Barej M (2014) The rediscovery of Perret's toad, Amietophrynus perreti (Schiøtz, 1963) after more than 40 years, with comments on the species' phylogenetic placement and conservation status. Zoosystematics and Evolution 90(2): 113-119. https://doi.org/10.3897/zse.90.8234
Figure 5 - Systematic placement (Bayesian phylogenetic inference based on a mitochondrial fragment of the 16S rRNA gene) of Amietophrynus perreti within the genus Amietophrynus. Bayesian PP values are as follows: asterisks ('*') point to maximum support (1.00), full circles ('●') point to PP 0.95–0.99; empty circle ('○') point to PP 0.90–0.94; PP values below 0.90 not shown.
Figure 3 from: Onadeko A, Roedel M, Liedtke H, Barej M (2014) The rediscovery of Perret's toad, Amietophrynus perreti (Schiøtz, 1963) after more than 40 years, with comments on the species' phylogenetic placement and conservation status. Zoosystematics and Evolution 90(2): 113-119. https://doi.org/10.3897/zse.90.8234
Figure 3 - Sites around Idanre Hills surveyed for Amietophrynus perreti; green circles: toads recorded, red crosses: toads not found.
Figure 1 from: Pedraza-Peñalosa P, Salinas NR, Virnig ALS, Wheeler WC (2015) Preliminary phylogenetic analysis of the Andean clade and the placement of new Colombian blueberries (Ericaceae, Vaccinieae). PhytoKeys 49: 13-31. https://doi.org/10.3897/phytokeys.49.8622
Figure 1 - Phylogram of the best found Maximum likelihood hypothesis based on nuclear and plastid sequence data (lnL= -13984.363979). Bootstrap support values greater than 50% are shown in front of nodes.
Figure 4-13 from: Lackner T (2016) Satrapister nitens Bickhardt, 1912: redescription and tentative phylogenetic placement of a mysterious taxon (Coleoptera, Histeridae, Saprininae). Deutsche Entomologische Zeitschrift 63(1): 1-8. https://doi.org/10.3897/dez.63.6363
Figure 4-13 - 4 Satrapister nitens Bickhardt, 1912 LECTOTYPE, eighth sternite and tergite, ventral view 5 ditto, dorsal view 6 ditto, lateral view 7 Satrapister nitens Bickhardt, 1912 LECTOTYPE, ninth tergite, dorsal view 8 Satrapister nitens Bickhardt, 1912 LECTOTYPE, tenth tergite, dorsal view 9 Satrapister nitens Bickhardt, 1912 LECTOTYPE, ninth tergite, lateral view 10 Satrapister nitens Bickhardt, 1912 LECTOTYPE, spiculum gastrale, ventral view 11 ditto, lateral view 12 Satrapister nitens Bickhardt, 1912 LECTOTYPE, aedeagus, dorsal view 13 ditto, lateral view
Figure 14 from: Lackner T (2016) Satrapister nitens Bickhardt, 1912: redescription and tentative phylogenetic placement of a mysterious taxon (Coleoptera, Histeridae, Saprininae). Deutsche Entomologische Zeitschrift 63(1): 1-8. https://doi.org/10.3897/dez.63.6363
Figure 14 - A The strict consensus of 1026 equally parsimonious trees; TL = 701, CI: 0.29, RI: 0.57, of the newly-performed analysis showing the position of Satrapister Bickhardt, 1912 and Phoxonotus Marseul, 1862, respectively. Double-digit numbers above branches show the percentage of bootstrap support (bootstrap values below 50% are not shown); single-digit numbers at nodes show Bremer indices for the nodes B Section of the cladogram of Lackner (2014d) showing the position of Phoxonotus Marseul, 1862.
Figures 8-13 from: Maddison WP, Maddison DR, Zhang J, Szűts T (2016) Phylogenetic placement of the unusual jumping spider Depreissia Lessert, and a new synapomorphy uniting Hisponinae and Salticinae (Araneae, Salticidae). ZooKeys 549: 1-12. https://doi.org/10.3897/zookeys.549.6171
Figures 8-13 - Male palps to show absence (8–10) or presence (11–13) of the cymbial apical groove (a depression in the cymbium that cradles the tip of the embolus, marked with an arrow) 8 Lyssomanes taczanowskii Galiano, 1980 9 Cocalodes papuanus Simon, 1900 10 Depreissia myrmex Lessert, 1942 11 Tomocyrba ubicki Szűts & Scharff, 2009 12 Hispo sulcata Wanless, 1981 13 Phidippus audax (Hentz, 1845). Triangle marks base of median apophysis (ma).
Figures 2-7 from: Maddison WP, Maddison DR, Zhang J, Szűts T (2016) Phylogenetic placement of the unusual jumping spider Depreissia Lessert, and a new synapomorphy uniting Hisponinae and Salticinae (Araneae, Salticidae). ZooKeys 549: 1-12. https://doi.org/10.3897/zookeys.549.6171
Figures 2-7 - Male palp of Depreissia myrmex 2 Cleared palp, ventral view. 3 Retrolateral view 4 Dorsal view 5 Ventral view, highlighting the path of spermaphore (yellow) and embolus (black) 6 Left palp, prolateral view 7 Right palp, prolateral view. Abbreviations: e' = origin of embolus; e'' = end of embolus; ma = median apophysis; s = spermophore; t = tegulum. Triangle marks base of median apophysis.
Figure 1 from: Maddison WP, Maddison DR, Zhang J, Szűts T (2016) Phylogenetic placement of the unusual jumping spider Depreissia Lessert, and a new synapomorphy uniting Hisponinae and Salticinae (Araneae, Salticidae). ZooKeys 549: 1-12. https://doi.org/10.3897/zookeys.549.6171
Figure 1 - Maximum likelihood phylogenetic tree from 28S sequences, constrained as described in text. Branches labelled by bootstrap percentages from 500 replicates, with selected branches also showing (after "/") bootstrap percentages for analysis with Eupoa and Agorius removed. Branch length of Agorius abridged to 50% of its actual length. Voucher specimen codes appended in brackets. Cocalodine, spartaeine and lapsiine lineages are colored as in Maddison et al. (2014). Stars mark clades constrained except for the freedom of Depreissia and Agorius.
Figure 1 from: Gadelha SS, Nunes JF, Zaldívar-Riverón A, Oliveira ML (2016) Venifurca, a new genus of neotropical Doryctinae (Hymenoptera: Braconidae), and its phylogenetic placement. Journal of Hymenoptera Research 51: 91-100. https://doi.org/10.3897/jhr.51.9634
Figure 1 - Bayesian phylogram derived from a 28S + COI matrix. The phylogram shows the phylogenetic affinity of the genus Venifurca gen. n. within the Doryctinae. Posterior probabilities ≥ 0.95 are indicate near branches.
Figure 2 from: Gadelha SS, Nunes JF, Zaldívar-Riverón A, Oliveira ML (2016) Venifurca, a new genus of neotropical Doryctinae (Hymenoptera: Braconidae), and its phylogenetic placement. Journal of Hymenoptera Research 51: 91-100. https://doi.org/10.3897/jhr.51.9634
Figure 2 - Venifurca leiosoma sp. n. (Holotype). Lateral habitus (A), lateral head and mesosoma (B), dorsal head and mesonotum (C), hind wing (D), hind wing with emphasis on the bifurcate m-cu (E), dorsal propodeum and metasoma (F).
Figure 1 from: Wood KR, Appelhans MS, Wagner WL (2016) Melicope oppenheimeri, section Pelea (Rutaceae), a new species from West Maui, Hawaiian Islands: with notes on its ecology, conservation, and phylogenetic placement. PhytoKeys 69: 51-64. https://doi.org/10.3897/phytokeys.69.8844
Figure 1 - Melicope oppenheimeri K.R. Wood, Appelhans & W.L. Wagner. A Flowering branch, Oppenheimer & Hansen H20505 (PTBG) B Inflorescence C Undehisced fruit, showing beaked carpels D Fruit, partly open E Fruit, fully opened F Fruit endocarp showing venation and hairs B–F from Oppenheimer & Miller H90609 (PTBG) (Illustration by Alice Tangerini).
Figure 4 from: Wood KR, Appelhans MS, Wagner WL (2016) Melicope oppenheimeri, section Pelea (Rutaceae), a new species from West Maui, Hawaiian Islands: with notes on its ecology, conservation, and phylogenetic placement. PhytoKeys 69: 51-64. https://doi.org/10.3897/phytokeys.69.8844
Figure 4 - Habit of Melicope oppenheimeri (Oppenheimer & Miller H90609). Photo by H. Oppenheimer, 12 Sep 2006.
Figure 5 from: Wood KR, Appelhans MS, Wagner WL (2016) Melicope oppenheimeri, section Pelea (Rutaceae), a new species from West Maui, Hawaiian Islands: with notes on its ecology, conservation, and phylogenetic placement. PhytoKeys 69: 51-64. https://doi.org/10.3897/phytokeys.69.8844
Figure 5 - Melicope oppenheimeri A Flowers B Fruit, showing beaked carpels (Oppenheimer & Miller H90609). Photos by H. Oppenheimer, 12 Sep 2006.
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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.