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14,185 results for “phylogenies”
Figs. 32–35. Postero lateral view and vertex. 32, P in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 32–35. Postero lateral view and vertex. 32, P. jocasta, arrow: swollen femur. 33, arrow: preoccipital area ridged. 34, P. mourella n.sp, arrow: not swollen femur. 35, arrow: preoccipital area not ridged. Scale bar: 1 mm.
Figs. 15–16. First metasomal tergum. 15, P in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 15–16. First metasomal tergum. 15, P. mimetica, arrow: T1 almost smooth. 16, P. spiloptera. Scale bar: 0.5 mm.
Figs. 20–23 in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 20–23. Metasoma, length of T3 bands indicated. 20, P. seabrai. 21, P. crossotos. 22, P. andromache. 23, P. spiloptera. Scale bar: 1 mm.
Figs. 36–39 in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 36–39. Detail of metasoma and mesosoma. 36, P. mimetica T1, arrow: smooth T1. 37, propodeum, arrow: shinning metapostnotum. 38, P. seabrai T1. 39, propodeum. Scale bar: 0.5 mm.
Figs. 9–12 in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 9–12. Head and posterior mesosoma: 9, Paroxystoglossa jocasta, face. 10, mesosoma; 11, P. mourella n.sp., face; 12, mesosoma. Scale bar: 0.5 mm (Figs. 9 and 11); 1 mm (Figs. 10 and 12).
Figs. 30–31. Metasomal S4 and S5 in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 30–31. Metasomal S4 and S5, modifications indicated by arrows. 30. P. levigata n.sp. 31. P. transversa. Scale bar: 0.5 mm.
Figs. 40–41 in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 40–41. Pronotum lobe (indicate with arrows). 40, P. seabrai. 41, P. spiloptera. Scale bar: 0.5 mm.
Figs. 7–8 in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 7–8. Second metasomal tergum: 7, P. transversa, arrow: punctuation on marginal area. 8, P. levigata n.sp. Scale bar: 1 mm.
Figs. 17–19 in Phylogeny and new species of the Neotropical bee genus Paroxystoglossa Moure (Hymenoptera, Apoidea)
Figs. 17–19. Pronotum lobe (indicate with arrows). 17, P. seabrai. 18, P. crossotos. 19, P. spiloptera. Scale bar: 0.5 mm.
Fig. 6. Batrachocamallanus xenopodis, photomicrographs. A in Novel information on the morphology, phylogeny and distribution of camallanid nematodes from marine and freshwater hosts in South Africa, including the description of Camallanus sodwanaensis n. sp.
Fig. 6. Batrachocamallanus xenopodis, photomicrographs. A – male, general view; B – anterior part of body, male, apical view; C – optical section at base of buccal capsule level, male, apical view; D – buccal capsule, female, lateral view; E – female, general view; F – posterior part of body, male, lateral view; G – part of body at vulva region, lateral view; H – posterior part of body, female, lateral view. Scale bars: A, E, F–H – 100, B–D – 50.
Fig. 8 in Novel information on the morphology, phylogeny and distribution of camallanid nematodes from marine and freshwater hosts in South Africa, including the description of Camallanus sodwanaensis n. sp.
Fig. 8. Phylogenetic tree of Camallanidae nematodes based on 491 nucleotides long alignments of 28 rDNA gene. Nodal support presented for Bayesian Inference and Maximum Likelihood analyses (BI/ML).
Fig. 3. Paracamallanus cyathopgharynx, photomicrographs. A in Novel information on the morphology, phylogeny and distribution of camallanid nematodes from marine and freshwater hosts in South Africa, including the description of Camallanus sodwanaensis n. sp.
Fig. 3. Paracamallanus cyathopgharynx, photomicrographs. A – anterior part of body, male, lateral view; B – buccal capsule, male, lateral view; C – anterior part of body, male, apical view; D – female, general view; E - optical section at level of buccal capsule valves mid-length, male, dorsal view; F - part of body at vulva region, lateral view; G – posterior end of body, female, lateral view; H – posterior end of body, male, lateral view. Scale bars: A–C, E–H – 100; D – 1 mm.
Fig. 1. Camallanus sodwanaensis n in Novel information on the morphology, phylogeny and distribution of camallanid nematodes from marine and freshwater hosts in South Africa, including the description of Camallanus sodwanaensis n. sp.
Fig. 1. Camallanus sodwanaensis n. sp., line-drawings. A – anterior part of body, female, lateral view; B – buccal capsule, female, lateral view; C – anterior part of body, female, apical view; D – posterior part of body, male, ventral view; E – dorsal trident, male, lateral view; F – posterior part of body, female, lateral view; G – spicules, lateral view. Scale bars: A – 500; B–D, F–G – 100; E – 50.
Fig. 2. Camallanus sodwanaensis n in Novel information on the morphology, phylogeny and distribution of camallanid nematodes from marine and freshwater hosts in South Africa, including the description of Camallanus sodwanaensis n. sp.
Fig. 2. Camallanus sodwanaensis n. sp., photomicrographs. A – male, general view; B – anterior part of body, female, lateral view; C – buccal capsule, female, lateral view; D – optical section at level of buccal capsule valves mid-width, male, dorsal view; E – dorsal trident, male, dorsal view; F – anterior part of body, female, apical view; G - optical section at level of buccal capsule valves mid-length, male, apical view; H – right spicule, lateral view; I – posterior end of body, male, ventral view; J – part of body at vulva region, lateral view; K – posterior end of body, female, lateral view. Scale bars: A – 1 mm, B – 500, C–K – 100.
Fig. 3 in Molecular phylogeny provides new insights on the taxonomy and composition of Lyperosomum Looss, 1899 (Digenea, Dicrocoeliidae) and related genera
Fig. 3. Representatives of Lyperosomum petiolatum from different hosts: a – Pica pica; b – Garrulus glandarius; c – Corvus frugilegus; d – Corvus frugilegus, subadult specimen; e, f – Sylvia atricapilla. Lyperosomum sp., from Turdus merula: g – specimen fixed after death; h – specimen fixed under pressure. Scale bars – 1 mm.
Figure 1. Stichodactyla haddoni. A in Morphology and phylogeny of the sea anemone Stichodactyla haddoni (Cnidaria: Anthozoa: Actiniaria) from Chabahar Bay, Iran
Figure 1. Stichodactyla haddoni. A) CHIAS1 in situ, Chabahar Bay. B) CHIAS1 in aquaria. C) Specimen exposing exocoelic tentacles (Ex) and endocoelic tentacles (En). Scale bars: 10 cm for A and B, 5 mm for C. Photos A and B: Mohammad Bahman; Photo C: Pegah Javid.
Figure 3. Neighbor-joining consensus tree for 23 in Morphology and phylogeny of the sea anemone Stichodactyla haddoni (Cnidaria: Anthozoa: Actiniaria) from Chabahar Bay, Iran
Figure 3. Neighbor-joining consensus tree for 23 species, including Iranian sea anemone species (CHIAS1 and CHIAS2), based on 18S rDNA sequences. Cl1: Stichodactylidae; Cl2: Actiniidae; Cl3: Hormathiidae; Cl4: Aiptasiidae; Cl5: Actinostolidae. The numbers beside the branches are bootstrap values with 1000 replications. Bootstrap supports under 50% are not shown in this analysis.
Figure 2. Stichodactyla haddoni. A in Morphology and phylogeny of the sea anemone Stichodactyla haddoni (Cnidaria: Anthozoa: Actiniaria) from Chabahar Bay, Iran
Figure 2. Stichodactyla haddoni. A) CHIAS2 in situ (Ex: exocoelic tentacles are seen at the edge of the oral disc; En: endocoelic tentacles). B) CHIAS2 in aquaria. Note the coloration, tentacles, and red oral disc. The density of tentacles is lower near the mouth. C) Aboral view of CHIAS2: arrow shows the row of nonadhesive verrucae (V). The diameter of the oral disc is much broader than that of the pedal disc. Scale bars: 8 cm for A and B, 6 cm for C. Photo A: Mohammad Bahman; Photos B and C: Pegah Javid.
Figure 16 in Morphological phylogeny of Megachilini and the evolution of leaf-cutter behavior in bees (Hymenoptera: Megachilidae)
Figure 16. Cremnomegachile dolichosoma (Benoist), new combination. A. Facial view of female. B. Detail of female mesoscutum. C. Female metasoma in dorsal view. D. Lateral view of female. E. Male terminal terga. F. Lateral view of male.
Figure 15. Tribes Pseudoheriadini and Ochreriadini. A in Morphological phylogeny of Megachilini and the evolution of leaf-cutter behavior in bees (Hymenoptera: Megachilidae)
Figure 15. Tribes Pseudoheriadini and Ochreriadini. A. Female of Afroheriades hyalinus Griswold & Gonzalez in lateral view. B. Male terminal terga of Pseudoheriades moricei (Friese). C, D. Female of Ochreriades fasciatus (Friese) in dorsal and lateral views. E. Male terminal terga of O. fasciatus.
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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.