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ShareScore release 0.9.0
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125 results for “Species disjunctions”
FIGURE 1 in Garra rezai, a new species from two widely disjunct areas in the Tigris drainage (Teleostei: Cyprinidae)
FIGURE 1. Phylogenetic tree of mitochondrial COI barcode region resulted from the IQ-TREE. Numbers on branches indicate posterior probability values for Bayesian inference (BI) and ML bootstrap.
FIGURE 10 in Garra rezai, a new species from two widely disjunct areas in the Tigris drainage (Teleostei: Cyprinidae)
FIGURE 10. From left: Garra rezai, GUIC 7979, holotype, 80 mm SL; Iran: stream Bouein-Sofla; Garra rossica, VMFC GROS, 86 mm SL; Iran: spring Golbahar.
FIGURE 3 in Hypogean presumably sister species Quedius repentinus sp. n. from Altai and Q. roma from Sikhote-Alin (Coleoptera: Staphylinidae): a disjunct distribution or poorly sampled Siberia?
FIGURE 3. Quedius repentinus sp.n.: A, C, D, F–H (holotype), B (paratype, female), E (paratype, male); A, B, habitus; C, aedeagus (laterally); D, same (in parameral view); E, paramere, underside (side facing median lobe); F, tergite X; G, sternite IX; H, sternite VIII. Scale bars: A–D, F–H = 1 mm, E = 0.2 mm.
FIGURE 2 in Hypogean presumably sister species Quedius repentinus sp. n. from Altai and Q. roma from Sikhote-Alin (Coleoptera: Staphylinidae): a disjunct distribution or poorly sampled Siberia?
FIGURE 2. Quedius przewalskii, holotype: A, habitus; B, aedeagus (laterally); C, same (in parameral view); D, apex of paramere, underside (side facing median lobe); E, tergite X; F, sternite IX; G, sternite VIII; H, labels. Scale bars: A–C, E–G = 1 mm, D = 0.4 mm.
FIGURE 2. Neoschumannia gishwatiensis. A, B in Neoschumannia gishwatiensis (Apocynaceae, Asclepiadoideae-Ceropegieae) from Gishwati Forest, Rwanda-a third and new species from a disjunct African genus
FIGURE 2. Neoschumannia gishwatiensis. A, B, details of habit with inflorescence, scale bar 1 cm; C, D, flower, scale bar 1 cm; E, detail of flower with gynostegium, scale bar 5 mm; F, pair of pollinia, with translators and corpusculum, scale bar 0.2 mm; G, gynostegium, scale bar = 2 mm; H, seed, scale bar = 2 cm; I, mericarps, scale bar = 3 cm. All photos taken at the type locality by E. Fischer.
FIGURE 3. Neoschumannia kamerunensis. A, B in Neoschumannia gishwatiensis (Apocynaceae, Asclepiadoideae-Ceropegieae) from Gishwati Forest, Rwanda-a third and new species from a disjunct African genus
FIGURE 3. Neoschumannia kamerunensis. A, B, flower in lateral view, scale bar 5 mm in A, 3 mm in B; C, flower in top view (left), scale bar 5 mm. Neoschumannia cardinea. C, flower in top view (right), scale bar 5 mm; D, F, flower in lateral view, scale bar 5 mm; E, pendulous flower, scale bar 5 mm. All photos taken in cultivation at University of Bayreuth by U. Meve (N. kamerunensis from Meve & Etuge 910, N. cardinea from Liede & Meve 3359).
FIGURE 1. Neoschumannia gishwatiensis. A in Neoschumannia gishwatiensis (Apocynaceae, Asclepiadoideae-Ceropegieae) from Gishwati Forest, Rwanda-a third and new species from a disjunct African genus
FIGURE 1. Neoschumannia gishwatiensis. A, detail of habit, showing a pair of leaves with inflorescence; B, inflorescence; C, flower; D, petal; E, sepal; F, gynostegium with base of sepal and petals; G, gynostegial corona, interstaminal corona lobe removed; H, staminal corona lobe; I, base of petal; K, interstaminal corona lobe; L, pair of pollinia, with translators and corpusculum; M, clavate, vibratile corolla hair; N, mericarps. All from Fischer 13225. Drawing by E. Fischer.
Fig. 3 in What Caused the Disjunct Distributions of the Lachnaia tristigma Species-Group (Coleoptera: Chrysomelidae) on the Iberian Peninsula?
Fig. 3. Potential distributions of Lachnaia gallaeca (a, b), Lachnaia pseudobarathraea (c, d), and Lachnaia tristigma (e, f) during the Last Glacial Maximum as estimated from Bioclim (a, c, e) and Domain (b, d, f) models.
Fig. 2 in What Caused the Disjunct Distributions of the Lachnaia tristigma Species-Group (Coleoptera: Chrysomelidae) on the Iberian Peninsula?
Fig. 2. Climatic niches of Lachnaia gallaeca (red dots), Lachnaia pseudobarathraea (green dots), and Lachnaia tristigma (blue dots), as represented in two Principal Components Analysis axes (first axis (RC1) is correlated with precipitation; second axis (RC2) is correlated with temperature) for the core (a) and extended (b) datasets.
Fig. 1 in What Caused the Disjunct Distributions of the Lachnaia tristigma Species-Group (Coleoptera: Chrysomelidae) on the Iberian Peninsula?
Fig. 1. Known records for Lachnaia gallaeca (red dots), Lachnaia pseudobarathraea (green dots), and Lachnaia tristigma (blue dots), using the core (a) and extended (b) datasets.
FIGURE 41 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURE 41. Maximum Likelihood tree of the Teleiopsis based on concatenated data of COI, CAD, EF-1a, IDH, MDH and wingless genes. The tree was rooted on Carpatolechia notatella (not depicted because of very long branch leading to it). Bootstrap support values for T. albifemorella and T. paulheberti are shown below the nodes.
FIGURES 29–32 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 29–32. Female genitalia of Teleiopsis paulheberti sp. nov., segment VIII and antrum. 29, paratype, Italy (Cuneo), slide GEL 1162; 30, paratype, France (Alpes-Maritimes), slide GEL 1161; 31, paratype, France (Hautes-Alpes), slide GEL 1171; 32, as 31, diagnostic details of antrum.
FIGURE 40 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURE 40. Neighbor-joining trees of the Teleiopsis (implemented under Kimura 2 Parameter model) of nuclear genes CAD, EF-1a, IDH, MDH and wingless.
FIGURE 39 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURE 39. Neighbor-joining tree of the Teleiopsis (implemented under Kimura 2 Parameter model) based on sequences of the mtDNA COI gene 5' fragment (DNA barcode, 658 bp). Bootstrap support values, based on 500 pseudoreplicates, are shown for internal nodes. The tree was rooted on T. terebinthinella, the presumed sister taxon of other species. The scale bar indicates 0.5% change in sequence composition.
FIGURES 33–38 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 33–38. Female genitalia of Teleiopsis albifemorella, details of signum. 33–35, T. albifemorella: 33, Austria (North Tyrol), slide GEL 1165; 34, Austria (Upper Austria), slide GEL 1168; 35, Slovenia, slide GEL 1164. 36–38, T. paulheberti sp. nov.: 36, paratype, Italy (Cuneo), slide GEL 1162; 37, paratype, France (Alpes-Maritimes), slide GEL 1161; 38, paratype, France (Hautes-Alpes), slide GEL 1171.
FIGURES 7–10 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 7–10. Adults of Teleiopsis paulheberti sp. nov., males. 7, paratype, Italy (Cuneo); 8, paratype, Italy (L´Aquila); 9, paratype, France (Alpes-Maritimes); 10, paratype France (Hautes-Alpes).
FIGURES 25–28 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 25–28. Female genitalia of Teleiopsis albifemorella, segment VIII and antrum. 25, Austria (North Tyrol), slide GEL 1165; 26, Austria (Upper Austria), slide GEL 1168; 27, Slovenia, slide GEL 1164; 28, as 25, diagnostic details of antrum.
FIGURES 19–24 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 19–24. Segment VIII of male Teleiopsis. 19–21, T. albifemorella: 19, Austria (North Tyrol), slide GEL 1166; 20, Austria (Upper Austria), slide GEL 1167; 21, Slovenia, slide GEL 1163. 22–24, T. paulheberti sp. nov.: 22, holotype, Italy (Cuneo), slide GEL 1159; 23, paratype, Italy (L´Aquila), slide GEL 1169; 24, paratype, France (Hautes-Alpes), slide GEL 1172.
FIGURES 15–18 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 15–18. Male genitalia of Teleiopsis paulheberti sp. nov. 15, holotype, Italy (Cuneo), slide GEL 1159; 16, paratype, Italy (L´Aquila), slide GEL 1169; 17, paratype, France (Hautes-Alpes), slide GEL 1172; 18, as 17, diagnostic details of uncusgnathos region.
FIGURES 1–6 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 1–6. Adults of Teleiopsis albifemorella, males. 1–2, Austria (North Tyrol); 3, Austria (Upper Austria); 4, Italy (Udine); 5, Italy (South Tyrol); 6, Italy (Verona).
ScienceDex guides
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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.