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Figure 4 in Description of a new species of the genus Rana (Anura: Ranidae) from western Guizhou, China, integrating morphological and molecular genetic data
Figure 4. Haplotype networks of Rana zhijinensis Luo, Xiao & Zhou, sp. nov. and its related species constructed based on the nuclear gene sequences. Different species of the R. japonica group are shown as different colors.
Figure 3 in Description of a new species of the genus Rana (Anura: Ranidae) from western Guizhou, China, integrating morphological and molecular genetic data
Figure 3. Phylogenetic tree based on four mitochondrial genes and six nuclear genes. In this phylogenetic tree, UFB from ML analyses/ BPP from BI analyses are given beside nodes. The scale bar represents 0.03 nucleotide substitutions per site. Red lines represent species delimitation results of bPTP and BPP.
Fig. 4 in New data on distribution of Miramiola pusilla (Miram, 1927) (Orthoptera: Tettigoniidae
Fig. 4. Reliability test for the Miramiola pusilla. Maxent distribution model (bioclimatic variables for 1970–2000; 25 replicates with cross-validation).
Figs 6 – 12 in New data on the subgenus Callophrys (Ahlbergia) (Lepidoptera: Lycaenidae) from East Asia, with description of a new species from China and confirmation of the record of C. (A.) ferrea from Russia
Figs 6 – 12. Callophrys (Ahlbergia) spp., genitalia. 6-9 – C. (A.) abae sp. n.: 6 – holotype, ♂, genital capsule with valvae, ventral view; 7 – Id., aedeagus, lateral view; 8 – Id., vesica of aedeagus with cornuti; 9 – paratype, ♀, China, Sichuan Province, Ngawa Tibetan and Qiang Autonomous Prefecture, Songpan County, 2900 m and higher, 24.VI.1894, M.M. Berezovsky leg., lamella postvaginalis, antrum, ductus bursae and bursa, ventral view; 10-12 – C. (A.) ferrea (Butler, 1866): 10 – ♂, Russia, Kunashir Island, 4.5 km NW Mendeleevo airport, Tretyakovo village, 19.V 2021, S. Rybalkin leg., genital capsule with valvae, ventral view; 11 – Id., aedeagus, lateral view; 12 – Id., vesica of aedeagus with cornuti.
Figs 1–5 in New data on the subgenus Callophrys (Ahlbergia) (Lepidoptera: Lycaenidae) from East Asia, with description of a new species from China and confirmation of the record of C. (A.) ferrea from Russia
Figs 1–5. Callophrys (Ahlbergia) abae sp. n., adults, dorsal view (above), ventral view (below) and corresponding labels. 1 – holotype, ♂ (ZISP); 2 – labels of the holotype; 3 – paratype, ♂, voucher No. CAL075, GenBank accession No. OM630563, China, Sichuan Province, Ngawa Tibetan and Qiang Autonomous Prefecture, Jinchuan County, Jinchuan env., 1900 m, 07.VI.2015, V. Patrikeev leg. (VTM); 4 – paratype, ♀, [China, Sichuan Province, Ngawa Tibetan and Qiang Autonomous Prefecture, Songpan County / 9500 ft. [2900 m] [above sea level] and higher / M.M. Berezovsky leg. 24.VI.1894] (ZISP); 5 – labels of previous specimen. 24
Fig. 3 in New data on distribution of Miramiola pusilla (Miram, 1927) (Orthoptera: Tettigoniidae
Fig. 3. Predicted probabilities of suitable conditions for Miramiola pusilla according the Maxent model (all distribution data and bioclimatic variables for 1970–2000; point-wise mean for 25 replicates).
Fig. 6 in New data on distribution of Miramiola pusilla (Miram, 1927) (Orthoptera: Tettigoniidae
Fig. 6. Predicted probabilities of suitable conditions for Miramiola pusilla according the Maxent model for 2041–2060 (all distribution data and bioclimatic variables; point-wise mean for 25 replicates; CNRM-ESM2-1 (Séférian et al., 2019) climatic model for 3-7.0 Shared Socioeconomic Pathway (Meinshausen et al., 2020).
Fig. 5 in New data on distribution of Miramiola pusilla (Miram, 1927) (Orthoptera: Tettigoniidae
Fig. 5. Predicted probabilities of suitable conditions for Miramiola pusilla according the Maxent model for 2021–2040 (all distribution data and bioclimatic variables; point-wise mean for 25 replicates; CNRM-ESM2-1 (Séférian et al., 2019) climatic model for 3-7.0 Shared Socioeconomic Pathway (Meinshausen et al., 2020).
Figs 3–4 in New data on distribution of Decticus nigrescens Tarbinsky, 1930 (Orthoptera: Tettigoniidae) in Russia
Figs 3–4. Predicted probabilities of suitable conditions for Decticus nigrescens. 3 – according the Maxent model (all distribution data and bioclimatic variables for 1970–2000; point-wise mean for 25 replicates); 4 – according the ellipsoid envelope model (all distribution data and selected bioclimatic variables for 1970–2000; means for 25 replicates).
Fig. 5 in New data on distribution of Decticus nigrescens Tarbinsky, 1930 (Orthoptera: Tettigoniidae) in Russia
Fig. 5. Reliability test for the Decticus nigrescens Maxent distribution model (bioclimatic variables for 1970–2000; 25 replicates with cross-validation).
Figs 42–47. Pronotal and prosternal morphology. 42 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 42–47. Pronotal and prosternal morphology. 42 – Notocupes pulcher; 43 – Notocupes excellens; 44 – Rhabdocupes vitimensis; 45 – Notocupes elegans; 46 – Brachilatus nigrimonticola; 47 – Notocupes caudatus. Abbreviations: pl – propleuron; s.n.pl. – notopleural suture; s.pl.st. – pleurosternal suture. Scale bar = 1 mm.
Figs 29–31 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 29–31. Characteristic of cuticular coverings five investigated genera of Archostemata. 29 – Rhabdocupes oxypygus, covered with one type of cuticular tubercles; 30 – Notocupes caudatus, covered with two types of cuticular tubercles; 31 – Brachilatus caducus, covered with three types of cuticular tubercles. Scale bar = 1 mm.
Figs 32–37. Head tubercles located and form. 32–34 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 32–37. Head tubercles located and form. 32–34 – linedrawings: 32 – Rhabdocupes laticella; 33 – Rhabdocupes tenuis; 34 – Notocupes caudatus; 35–37 – head photographs: 35 – Rhabdocupes laticella; 36 – Rhabdocupes tenuis; 37 – Notocupes caudatus. Abbreviations: Р1 – supraantennal protuberance; Р2 – supraocular protuberance; Р3 – posteromesal protuberance. Scale bar = 1 mm.
Figs 25–28 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 25–28. Elytron venation types of five investigated genera of Archostemata. 25, 26 – Zygadenia alexrasnitsyni Strelnikova et Yan, 2021: 25 – photograph; 26 – interpretative linedrawing; 27, 28 – Notocupes elegans Ponomarenko, 1994: 27 – photograph; 28 – interpretative linedrawing. Elytral fields marked with Roman numerals, veins – with Arabic. Scale bar = 1 mm.
Fig. 24. Tubercles size-density variability among different Archostemata genera. B in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Fig. 24. Tubercles size-density variability among different Archostemata genera. B (violet) – Brachilatus; C (yellow) – Conexicoxa; N (blue) – Notocupes; O (red) – Odontomma; Rh (green) – Rhabdocupes; Z (grey) – Zygadenia. Species with veins 2 and 3 merging before reaching elytron apex are marked with "+", or with "?" if this character is unclear.
Figs 38–41. Antennae morphology. 38 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 38–41. Antennae morphology. 38 – filiform of Notocupes pulcher; 39 – moniliform of Notocupes excellens; 40 – weakly serrated of Rhabdocupes minisculus; 41 – filiform of Brachilatus nigrimonticola. Scale bar = 1 mm.
Figs 14–23 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 14–23. Integuments of extant Archostemata. 14, 16, 19, 20, 22 – Omma stanleyi Newman, 1839: 14 – abdominal sternite, tomography image; 16 – SEM–micrography of scales; 19 – SEM–micrograph of wide scales attached to larger tubercles; 20 – SEM–micrograph of narrow scales, attached to middle–sized tubercles; 22 – SEM–micrograph of abdominal sternite; 15, 17, 18 – Priacma serrata (LeConte, 1861): 15 – abdominal sternite, tomography image; 17 – SEM–micrograph of scales on large tubercles; 18 – SEM–micrograph of two types of scales and tubercles; 21, 23 – Distocupes varians (Lea, 1902): 21 – abdominal sternites, tomography image; 23 – SEM–micrograph of scales on large tubercles. Dashed and dotted lines indicate narrow elevated portions of sternites. Scale bar = 1 mm if not stated otherwise.
Fig. 13 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Fig. 13. Size and density of cuticular tubercles in species studied of ancient Rhabdocupes, Conеxicoxa, Notocupes, Brachilatus, Odontomma, Zygadenia and some extant Omma and Distocupes. Tubercles of Odontomma sulcatum were examined from photographs in Kirejtshuk (2020). Yellow – Triassic species; Red – Early Jurassic; Blue – Middle to Late Jurassic; Green – Cretaceous. Here and further orange columns represent density of small (0.01–0.02 mm in diameter), blue – density of middle-sized (0.02–0.04 mm in diameter), violet – density of large (0.04–0.07 mm in diameter) tubercles. Names of localities are given above columns.
Figs 57–60. Abdomen morphology. 57 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 57–60. Abdomen morphology. 57 – Rhabdocupes rostratus; 58 – Conexicoxa longicollis; 59 – Brachilatus caducus; 60 – Notocupes lapidarius. Scale bar = 1 mm.
Figs 48–52 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 48–52. Form and size of elytral cells. 48 – large round cells of Rhabdocupes vitimensis; 49 – medium-sized ovate cells of Conexicoxa kirghizica; 50 – square large cells of Notocupes excellens; 51 – multifaceted small cells of Notocupes dundulaensis; 52 – small ovate cells with pronounced intercalary of Rhabdocupes tenuis.
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.