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684 results for “Phylogenetic placement”
FIGURE 1. Lapidia apicifolia Roque & S.C. Ferreira. A. Flowering branch. B in Lapidia, a new monotypic genus of Asteraceae (Eupatorieae) from Brazil, and its phylogenetic placement
FIGURE 1. Lapidia apicifolia Roque & S.C. Ferreira. A. Flowering branch. B. Tomentose indumentum at apex of the branches. C–D. Tector trichomes uniseriate and biseriate. E. Leaf with truncate apex. F. Leaf with serrate margin. G. Capitate glandular trichomes on blade. H. Head pedicellate with bract at peduncle. I. Bracteole. J. Outer bract. K–L. Inner bracts. M. Flat and glabrous receptacle. N. Corolla. O. Anther. P. Style. Q. Cypselae with bristles fused at base and with varying lengths. R. Geminate trichome from cypselae (drawn from the holotype by Natanael Nascimento dos Santos).
FIGURE 2. Lapidia apicifolia Roque & S.C. Ferreira. A in Lapidia, a new monotypic genus of Asteraceae (Eupatorieae) from Brazil, and its phylogenetic placement
FIGURE 2. Lapidia apicifolia Roque & S.C. Ferreira. A. The rocky fields habitat with individuals of the species highlighted (red arrows). B–C. Terminal branches showing leaves opposite-decussate, petiolate, and blade conduplicate. D. Shape and abaxial surface of the leaf. E. Head showing purple colored anther appendages. F. Heads showing green involucral bracts, white corollas, and purplish pappus bristles. G. Fruits in dispersal. (Photographs: A, D, F–G: N.Roque, B–C, E: L.Barres).
FIGURE 4 in A new species of Chusquea subg. Chusquea (Poaceae-Bambusoideae- Bambuseae) from Minas Gerais, Brazil: morphological evidence and phylogenetic placement within the Euchusquea clade
FIGURE 4. Bayesian phylogeny of Chusquea based on combined nuclear (ITS) and plastid (3' portion of ndhF and trnD-trnT) DNA sequences. BI PP ≥ 0.90 / ML bootstrap support ≥ 50% are shown above branches, and MP bootstrap support ≥ 50% is shown below branches. Symbols before the species names indicate the distribution of the taxa, according to the map presented. Symbols after the names indicate the subgenera to which the species belong. Clade VI, including C. gouveiensis (in bold), is highlighted in blue. Map from Fisher et al. (2014, Fig. 3).
FIGURE 2. Chusquea gouveiensis. A–B. Scandent habit. C. Infravaginal branching. D. Extravaginal branching. E. Fertile branches, synflorescences. F in A new species of Chusquea subg. Chusquea (Poaceae-Bambusoideae- Bambuseae) from Minas Gerais, Brazil: morphological evidence and phylogenetic placement within the Euchusquea clade
FIGURE 2. Chusquea gouveiensis. A–B. Scandent habit. C. Infravaginal branching. D. Extravaginal branching. E. Fertile branches, synflorescences. F. Vegetative branches, ascending, and pilose band below the nodal line (Photos by K.V.A Vidal).
FIGURE 1. Chusquea gouveiensis. A in A new species of Chusquea subg. Chusquea (Poaceae-Bambusoideae- Bambuseae) from Minas Gerais, Brazil: morphological evidence and phylogenetic placement within the Euchusquea clade
FIGURE 1. Chusquea gouveiensis. A. Culm leaf, showing the band of trichomes at the base. B. Node and central bud, highlighting the pilose band below the nodal line. C. Bud complement. D. Branching and foliage leaves. E. Flowering branches, showing synflorescence branching. F. Detail of the synflorescence, showing the weakly paniculate pattern of ramification. G. Spikelet. H. Glume III. I. Glume IV. J. Anthecium, palea view. K. Anthecium, lemma view (based on Vidal et al. 213).
FIGURE 1 in A new species of Coccomyces on Cunninghamia lanceolata and its phylogenetic placement based on multi-gene analysis
FIGURE 1. Phylogenetic tree generated from maximum parsimony analysis of the combined ITS rDNA, LSU rDNA and mtSSU rDNA sequences, using Lophodermium piceae and Lirula microspora as the outgroups. Bootstrap values of maximum parsimony more than 70% are shown above the respective branches. Bayesian posterior probabilities more than 0.95 are marked below the branches.
FIGURE 3 in A new species of Coccomyces on Cunninghamia lanceolata and its phylogenetic placement based on multi-gene analysis
FIGURE 3. Coccomyces anhuiensis (Holotype, BJTC 201610): A. Ascoma in median vertical section; B. Detailed structure of an ascoma in vertical section; C. Paraphyses, discharged ascospores, mature asci with ascospores, and an empty ascus after ascospore discharged. D. Conidiomata in median vertical section.
FIGURE 2 in A new species of Coccomyces on Cunninghamia lanceolata and its phylogenetic placement based on multi-gene analysis
FIGURE 2. Coccomyces anhuiensis (Holotype, BJTC 201610) on Cunninghamia lanceolata: A. Ascomata on nature substrate; B. Mature ascoma observed under a dissecting microscope; C. Immature ascomata.
FIGURE 1 in Taxonomic placement of Tanaecium mutabile (Bignonieae, Bignoniaceae) based on new morphological data and phylogenetic analyses
FIGURE 1. Bayesian majority-rule phylogeny of the Arrabidaea and allies clade based on a comprehensive sampling of Tanaecium and Fridericia, using a combined ndhF and pepC dataset. The gray box highlights the Tanaecium clade while the purple box highlights the Fridericia s. str. clade. The phylogenetic placement of Tanaecium mutabile is highlighted in red. The black circles on the nodes represent the posterior probabilities (PP) equal 1, while the white circles represent PP ≥ 0.95. Nodes without circles have PP ≤ 0.95.
FIGURE 2 in Taxonomic placement of Tanaecium mutabile (Bignonieae, Bignoniaceae) based on new morphological data and phylogenetic analyses
FIGURE 2. Comparison between Tanaecium mutabile (Bureau & K.Schum.) L.G.Lohmann and morphologically similar taxa. A-D. Tanaecium mutabile: A. flower; B. leaflet; C. detail of fruit; D. seed. E-H. Fridericia conjugata (Vell.) L.G.Lohmann: E. flower; F. leaflet; G. detail of fruit; H. seed. I-L. Lundia corymbifera (Vahl) L.G.Lohmann: I. flower; J. leaflet; K. detail of fruit; L. seed. M-P. Tanaecium selloi (Spreng.) L.G.Lohmann: M. flower; N. leaflet; O. detail of fruit; P. seed. Photo A by D. Grasel (2012), E by L.G. Lohmann, and I by G. Gerlach. All other photos by A. Frazão.
FIGURE 1 in Placement of Cacoceria and phylogenetic relationships of the xylotine genera of the tribe Milesiini (Diptera, Syrphidae: Eristalinae) based on molecular characters
FIGURE 1. Strict consensus of three equally parsimonious trees resulting from POY analysis, ga cost 2, change cost 1. Length 2982 steps, C10, 10, RI 0.73. Bremer suppost values indicated above branches.
FIGURES 60–63. 60, K in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 60–63. 60, K. nr lanceolatus, dorsal head; 61, K. nr lanceolatus, male antenna; 62, K. nr lanceolatus, male antenna, clava; 63, K. nr lanceolatus, male antenna, pedicel to F3; 64, K. nr lanceolatus, propodeum; 65, K. gothmogi, lateral head; 66, K. gothmogi, lateral scutellum; 67, K. gothmogi, propodeum. Note: all females unless otherwise noted.
FIGURES 60–63. 60, K in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 60–63. 60, K. nr lanceolatus, dorsal head; 61, K. nr lanceolatus, male antenna; 62, K. nr lanceolatus, male antenna, clava; 63, K. nr lanceolatus, male antenna, pedicel to F3; 64, K. nr lanceolatus, propodeum; 65, K. gothmogi, lateral head; 66, K. gothmogi, lateral scutellum; 67, K. gothmogi, propodeum. Note: all females unless otherwise noted.
FIGURES 52–59. 52, K in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 52–59. 52, K. erwini, lateral gaster; 53, K. erwini, lateral petiole; 54, K. tolkeini, lateral head; 55, K. tolkeini, lateral habitus; 56, K. tolkeini, propodeum; 57, K. tolkeini, fore wing venation; 58, K. erwini, lateroventral mesosoma; 59, K. lanceolatus, lateral petiole. Note: all females.
FIGURES 36–43. 36, K in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 36–43. 36, K. erwini, lateral prepectus; 37, K. erwini, lateral mesosoma; 38, K. erwini, anterior head; 39, K. erwini, posterior head; 40, K. erwini, anterior fore leg; 41, K. erwini, scrobal depression; 42, K. erwini, lateral gaster; 43, K. erwini, malar space. Note: all females.
FIGURES 68–75. 68, P in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 68–75. 68, P. javensis, lateral mesosoma; 69, K. erwini, male antenna, dorsal flagellomeres; 70, M. oecanthi, posterior head, postgenal bridge; 71, M. oecanthi, anterior head; 72, Chryseida sp. Bolivia, anterior head; 73, P. latrodecti, posterior head; 74, Bephratelloides cubensis, posterior head; 75, B. cubensis, posterior head, postgenal bridge. Note: all females unless otherwise noted.
FIGURES 26–33. 26, K in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 26–33. 26, K. erwini (variant), lateral mesosoma; 27, Isosomodes n. sp., lateral mesosoma; 28, Philolema sp., lateral mesosoma; 29, Tenuipetiolus mentha, dorsal mesosoma; 30, K. lanceolatus, ventral costal cell; 31, K. gothmogi, fore wing venation; 32, Axima zabriskiei, ventral costal cell; 33, K. erwini, fore wing. Note: all females.
FIGURES 10–17. 10 in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 10–17. 10, Conura sp., antenna; 11, Aximopsis vogti, pedicel; 12, Heimbra opaca, antenna; 13, K. erwini, pedicel; 14, Axima diabolus, lateral head and basal antenna; 15, K. erwini, clypeus; 16, K. lanceolatus, clypeus; 17, Eurytoma solenozopheriae, apex clava. Note: all females.
FIGURES 76–81. 76 in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 76–81. 76, Plutarchia sp. Kenya, posterior head, postgenal bridge 77, Heimbra opaca, posterior head, postgenal bridge; 78, Axima n. sp. Ecuador, posterior head, postgenal bridge; 79, Systole albipennis, lateral mesosoma; 80, P. latrodecti, lateral mesosoma; 81, Chryseida sp. Bolivia, anterior procoxa. Note: all females.
FIGURES 2–9. 2 in Description of Khamul, gen. n. (Hymenoptera: Chalcidoidea: Eurytomidae), with a hypothesis of its phylogenetic placement
FIGURES 2–9. 2, Macrorileya oecanthi, propodeum; 3, K. erwini, propodeum; 4, K. lanceolatus, posterolateral propodeum; 5, Eurytoma bugbeei, antenna; 6, K. erwini, antenna; 7, K. erwini, flagellomere close up; 8, Systole albipennis, antenna; 9, Dirhinus n. sp., antenna. Note: all females.
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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)
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.