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Figs. 10–11 in Notes on the taxonomy of species of Sciomyzini with a predominantly setulose anepisternum (Diptera, Sciomyzidae)
Figs. 10–11. Ditaeniella milleri sp. nov.: 10 — microsetulae on meron; 11 — male holotype Рис. 10–11. Ditaeniella milleri sp. nov.: 10 — воΛоски на мероне; 11 — гоΛотип, самец
Fig. 20 in Notes on the taxonomy of species of Sciomyzini with a predominantly setulose anepisternum (Diptera, Sciomyzidae)
Fig. 20. Evolutionary relationships of taxa. The tree was inferred using the Neighbour-Joining method. The percentage of replicate trees in which the associated taxa clustered together in the bootstrap test (1000 replicates) are shown next to the branches. The evolutionary distances were computed by use of the K2P method. The rate variation among sites was modelled with a gamma distribution. This analysis involved 27 nucleotide sequences. Codon positions included were 1st + 2nd + 3rd + Noncoding. All ambiguous positions were removed for each sequence pair (pairwise deletion option). The final dataset included 657 positions. Evolutionary analyses were conducted in MEGA X14 Рис. 20. ЭвоΛюционные взаимоотношения таксонов. Àерево сΔеΛано с испоΛьзованием метоΔа Neighbor-Joining. Процент повторяющихся Δеревьев, в которых связанные таксоны сгруппированы вместе в тесте bootstrap (1000 повторов), показан ряΔом с ветвями. ЭвоΛюционные расстояния быΛи вычисΛены с испоΛьзованием метоΔа K2P. ВариабеΛьность участков быΛа смоΔеΛирована с испоΛьзованием гамма-распреΔеΛения. Этот анаΛиз вкΛючаΛ 27 нукΛеотиΔных посΛеΔоватеΛьностей. ВкΛючены все позиции коΔонов (1-й + 2-й + 3-й + некоΔирующий). Все неоΔнозначные позиции быΛи уΔаΛены ΔΛя кажΔой пары посΛеΔоватеΛьностей (опция попарного уΔаΛения). ОкончатеΛьный набор Δанных вкΛючаΛ 657 позиций. ЭвоΛюционный анаΛиз быΛ провеΔен в MEGA X14
Figs. 7–9 in Notes on the taxonomy of species of Sciomyzini with a predominantly setulose anepisternum (Diptera, Sciomyzidae)
Figs. 7–9. Postabdomen of Ditaeniella species in lateral view (modified from Steyskal 1963: figs. 8–10): 7 — D. grisescens; 8 — D. patagonensis; 9 — D. parallela Рис. 7–9. ПостабΔомен таксонов Ditaeniella, виΔ сбоку (по Steyskal 1963: figs. 8–10): 7 — D. grisescens; 8 — D. patagonensis; 9 — D. parallela
Figs. 4–6. 4 in Notes on the taxonomy of species of Sciomyzini with a predominantly setulose anepisternum (Diptera, Sciomyzidae)
Figs. 4–6. 4 — Ph. shatalkini, male postabdomen, ventral view, male terminalia, lateral view (from Rozkošný 1991: figs. 13–14); 5 — Ph. griseola, male terminalia, lateral view (from Rozkošný 1991: fig. 37); 6 — Ph. shatalkini (as Ph. griseola), male postabdomen, lateral and ventral views (from Steyskal 1954: fig. 1) Рис. 4–6. 4 — Ph. shatalkini, постабΔомен самца, виΔ снизу и сбоку (по Rozkošný 1991: figs. 13– 14); 5 — Ph. griseola, терминаΛии самца сбоку (по Rozkošný 1991: fig. 37); 6 — Ph. shatalkini (as Ph. griseola), постабΔомен самца, виΔ сбоку и снизу (по Steyskal 1954: fig. 1)
Fig 5 in Using mating-type loci to improve taxonomy of the Tuber indicum complex, and discovery of a new species, T. longispinosum
Fig 5. Phylogenetic relationships among Asian black truffles based on three combined datasets (ITS, β-tublin, and TEF1-α). The phylogram was obtained by maximum likelihood inference under the TN93+I model. SH-aLRT values and Bayesian posterior probabilities are shown as ML/BPP.
Linked collectors and determiners for: Taxonomy of Morellia Robineau-Desvoidy (Diptera: Muscidae): revision of the subgenera Morellia s. str. and Parapyrellia Townsend.
Natural history specimen data linked to collectors and determiners held within, "Taxonomy of Morellia Robineau-Desvoidy (Diptera: Muscidae): revision of the subgenera Morellia s. str. and Parapyrellia Townsend". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="http://bionomia.net/dataset/69b1046e-47bc-4f26-b32c-97d79da7a35d">https://bionomia.net/dataset/69b1046e-47bc-4f26-b32c-97d79da7a35d</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/69b1046e-47bc-4f26-b32c-97d79da7a35d">https://gbif.org/dataset/69b1046e-47bc-4f26-b32c-97d79da7a35d</a>. Formatted as a Frictionless Data package.
Fig. 4 in Taxonomy and distribution of two small Tryblionella (Bacillariophyceae) species from the Northeast Asian tidal flats
Fig. 4. Scanning electron microscope photographs of two newly recorded species. (a-d) Tryblionella adducta (a: external view of the whole valve, b: external view of the valve apex with slightly radiating striae, c: internal view of the whole valve, d: internal valve of valve apex with conspicuous fibulae); (e, f) Tryblionella hyalina (e: internal view of the whole valve, f: internal view of valve apex).
Fig. 2 in Taxonomy and distribution of two small Tryblionella (Bacillariophyceae) species from the Northeast Asian tidal flats
Fig. 2. Light microscope photographs of Tryblionella adducta from Korea (a-d) and China (e-u). Scale bar = 10 μm.
Fig. 1 in Taxonomy and distribution of two small Tryblionella (Bacillariophyceae) species from the Northeast Asian tidal flats
Fig. 1. Map showing the sampling locations along the coasts of the Yellow Sea where Tryblionella adducta and T. hyalina were observed.
Fig. 4 in Algal genomics perspective: the pangenome concept beyond traditional molecular phylogeny and taxonomy
Fig. 4. The pangenome concept based on a comparison of gene inventory. Colored squares indicate commonly shared or newly acquired genes between species or populations.
Fig. 1 in Algal genomics perspective: the pangenome concept beyond traditional molecular phylogeny and taxonomy
Fig. 1. Phase-contrast microscopy images of diverse algal taxa. A. Rhodella maculata CCMP736 (Rhodophyta). B. Dixoniella grisea CCMP1916 (Rhodophyta). C. Emiliania huxleyi (Haptophyta). D. Diacronema lutheri LIMS-PS-0073 (Haptophyta). E. Proteomonas sulcata (Cryptophyta). F. Rhinomonas nottbecki (Cryptophyta). G. Coolia monotis (Alveolata). H. Sungminbooa australiensis (Pelagophyceae; Stramenopiles). I. Halamphora pseudohyalina (Bacillariophyceae; Stramenopiles). J. Navicula avium (Bacillariophyceae; Stramenopiles). K. Thalassiosira gravida (= T. rotula; Bacillariophyceae; Stramenopiles). L. Ditylum sol (Bacillariophyceae; Stramenopiles). Multifocus light microscopy images were merged, and white balances were properly adjusted by Adobe Photoshop and Illustrator (scale bars: A-F, and H-J = 15 μm; G, and K = 40 μm; L = 100 μm).
Fig. 3 in Algal genomics perspective: the pangenome concept beyond traditional molecular phylogeny and taxonomy
Fig. 3. Major photosynthetic algal lineages in the eukaryote Tree of Life (eToL). The eToL is reconstructed based on previous studies (Burki et al., 2019; Keeling and Burki, 2019; Strassert et al., 2019; Bhattacharya and Price, 2020; Sibbald and Archibald, 2020).
Fig. 2. The red algal phylogenomic approaches. A. Concatenated multigene phylogeny using 170 in Algal genomics perspective: the pangenome concept beyond traditional molecular phylogeny and taxonomy
Fig. 2. The red algal phylogenomic approaches. A. Concatenated multigene phylogeny using 170 plastid genes (Muñoz-Gómez et al., 2017). B. Concatenated multigene phylogeny using 4,777 nuclear genes (Lee et al., 2019). C. Intertwining phylogenetic network tree of red algal plastid and nuclear multigene phylogenies.
Fig. 15 in Taxonomy of 16 indigenous ciliate species (Protozoa, Ciliophora) from South Korea
Fig. 15. Photomicrograph of Metanophrys sinensis after protargol impregnation. A, B. Somatic and oral ciliatures. C. Macronucleus and caudal cilium. CC, caudal cilium; M1-3, oral membranelles; MA, macronucleus; PM, paroral membrane. Scale bars = 20 μm.
Fig. 7 in Taxonomy of 16 indigenous ciliate species (Protozoa, Ciliophora) from South Korea
Fig. 7. Photomicrograph of Trachelostyla pediculiformis in vivo (A, B) and after protargol impregnation (C, D). A. Typical body shape in vivo and reddish cytoplasmic inclusions and the rod-shaped cortical granules (arrow). B. Dorsal side with cortical granules (arrows) and dorsal bristles. C. Ventral ciliature. D. Ventrolateral view showing the ventral ciliature and the caudal cirri. TC, transverse cirri. Scale bars = 30 μm.
Fig. 6 in Taxonomy of 16 indigenous ciliate species (Protozoa, Ciliophora) from South Korea
Fig. 6. Photomicrograph of Pseudokeronopsis carnea in vivo (A) and after protargol impregnation (B, C). A. Body shape and details of the bright reddish cortical granulation. B. Ventral ciliature. C. Dorsal kineties. 1-5, dorsal kineties; CG, cortical granules; MVP, midventral pairs; PTC, pretransverse cirri; TC, transverse cirri. Scale bars = 50 μm.
Fig. 14 in Taxonomy of 16 indigenous ciliate species (Protozoa, Ciliophora) from South Korea
Fig. 14. Photomicrograph of Frontonia angusta solea in vivo (A-D), after protargol impregnation (E) and silver carbonate staining (F). A. Slightly squeezed living cell. B. Original body shape. C, D. Embedded and extruded extrusomes (arrows). E. Ventral ciliature of weakly impregnated specimen. F. Somatic and oral ciliature. Scale bars = 30 μm.
Fig. 5 in Taxonomy of 16 indigenous ciliate species (Protozoa, Ciliophora) from South Korea
Fig. 5. Photomicrograph of Apokeronopsis wrighti in vivo (A, B) and after protargol impregnation (C, D). A. Typical body shape in vivo. B. Details of reddish cortical granulation (arrowheads) and greenish minute cortical granules distributed all over the cortex. C. Ventral ciliature. D. Dorsal kineties. MVR, midventral cirral row; TC, transverse cirrus. Scale bars = 50 μm.
Fig. 13 in Taxonomy of 16 indigenous ciliate species (Protozoa, Ciliophora) from South Korea
Fig. 13. Photomicrograph of Paraspathidium apofuscum in vivo (A) and after protargol impregnation (B, C). A. Contracted body showing the cytoplasmic inclusions and the deep ciliary pits on the cortex. B. Somatic kineties and two macronuclear nodules. C. Detail of oral ciliature showing the dikinetidal part in ciliary rows (arrow). CP, ciliary pits. Scale bars = 100 μm (A), 50 μm (B).
Fig. 2 in Taxonomy of 16 indigenous ciliate species (Protozoa, Ciliophora) from South Korea
Fig. 2. Photomicrograph of Aspidisca orthopogon in vivo (A, B) and after protargol impregnation (C, D). A, B. Body shape in vivo (arrow indicates contractile vacuole in B). C. Ventral ciliature (arrow marks small frontoventral cirrus). D. Dorsal kineties. AZM1-2, adoral zone of membranelles 1 and 2; DK, dorsal kinety; TC, transverse cirrus. Scale bars = 50 μm (A, B); 30 μm (C).
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.