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Figure 5 in An annotated checklist of supertribe Bariditae Schoenherr, 1836 (Coleoptera, Curculionidae, Conoderinae) in southeastern Baltic region
Figure 5. Baris species (Lithuania, KZM): A – dorsal habitus of B. artemisiae, B – dorsal habitus of B. nesapia, C, D – aedeagus of B.artemisiae, E, F – aedeagus of B. nesapia. Scale bar - 1 mm.
Figure 1 in An annotated checklist of supertribe Bariditae Schoenherr, 1836 (Coleoptera, Curculionidae, Conoderinae) in southeastern Baltic region
Figure 1. Limnobaris species (Lithuania, KZM): A – dorsal habitus of L. dolorosa, B – dorsal habitus of L. talbum, C – aedeagus of L. dolorosa, D – aedeagus of L. t-album. Scale bar - 1 mm.
Figure 3 in An annotated checklist of supertribe Bariditae Schoenherr, 1836 (Coleoptera, Curculionidae, Conoderinae) in southeastern Baltic region
Figure 3. Bariditae species (Lithuania, KZM): A – dorsal habitus of Aulacobaris lepidii, B – dorsal habitus of Melanobaris laticollis, C, D – aedeagus of A. lepidii, E, F – aedeagus of M. laticollis. Scale bar - 1 mm.
Figure 2 in An annotated checklist of supertribe Bariditae Schoenherr, 1836 (Coleoptera, Curculionidae, Conoderinae) in southeastern Baltic region
Figure 2. Maps of southeastern Baltic region with a grid of administrative units and shaded units with available records of Limnobaris species. A – L. dolorosa, B – L. t-album.
Figure 6 in An annotated checklist of supertribe Bariditae Schoenherr, 1836 (Coleoptera, Curculionidae, Conoderinae) in southeastern Baltic region
Figure 6. Maps of southeastern Baltic region with a grid of administrative units and shaded units area with available records of Baris species. A – B. artemisiae, B – B. nesapia.
Figure 1 in An annotated checklist of the Chilopoda from Azerbaijan
Figure 1. Distribution map of the centipede species records in Azerbaijan, based on literature data. For codes see Table 1.
Figures 9–12 in The Tabanidae (Diptera) of the Greek islands and Cyprus: An annotated checklist with remarks on ecology, zoogeography, and new records on the East Mediterranean fauna
Figures 9–12. Adults of Tabanidae, frontal view. 9. Atylotus agrestis. 10. Tabanus gratus. 11. Tabanus taeniola. 12. Tabanus sufis. Scale bar – 5 mm.
Figure 13 in The Tabanidae (Diptera) of the Greek islands and Cyprus: An annotated checklist with remarks on ecology, zoogeography, and new records on the East Mediterranean fauna
Figure 13. Map of the East Mediterranean islands and the neighboring territories considered in the study.
Figures 1–4 in The Tabanidae (Diptera) of the Greek islands and Cyprus: An annotated checklist with remarks on ecology, zoogeography, and new records on the East Mediterranean fauna
Figures 1–4. Adults of Tabanidae, dorsal view. 1. Atylotus agrestis. 2. Tabanus gratus. 3. Tabanus taeniola. 4. Tabanus sufis. Scale bar – 5 mm
Figures 2–3 in A preliminary annotated checklist of Chilopoda from Iraq
Figures 2–3. Mecistocephalus insularis (Lucas, 1863), female, ventral view: 2, head and forcipular segment; 3, terminal body part.
Fig. 5 in Description of Sarcocystis scandentiborneensis sp. nov. from treeshrews (Tupaia minor, T. tana) in northern Borneo with annotations on the utility of COI and 18S rDNA sequences for species delineation
Fig. 5. Phylogenetic tree based on analysis of mitochondrial COI sequences of the Sarcocystidae including the new Sarcocystis sp. examined in this study (black symbols). Other taxa of the Apicomplexa served as root. Evolutionary history was inferred by the Maximum Likelihood (ML) method based on the TamuraNei model, whereby 619 positions were included in the final data set. All positions with less than 95% site coverage were eliminated; that is, fewer than 5% alignment gaps, missing data, and ambiguous bases were allowed at any position. Bootstrap percentages (1000 iterations) are shown next to branches. COI sequences E357-13 and E120-13 (not shown in the tree) are available at GenBank (MN732561 and MN732562, respectively).
Fig. 2 in Description of Sarcocystis scandentiborneensis sp. nov. from treeshrews (Tupaia minor, T. tana) in northern Borneo with annotations on the utility of COI and 18S rDNA sequences for species delineation
Fig. 2. Ultrastructure of S. scandentiborneensis sp. nov. Note, due to ethanol-fixation some ultrastructural details are poorly resolved (e.g. membranes). A) Longitudinal section through the same sample as in Fig. 1C, showing a gross view of the sarcocyst and its villous protrusions (VP) that are sectioned in different orientations. The inset shows a cross section through various VP that reveals the arrangement of microtubules in their inner core; while in this case 16 microtubules are visible (asterisks), sections through more apical portions of the VP showed lower numbers. B) Longitudinal section through the fingerlike VPs that appear to be anchored in the ground substance (arrow) by microtubules (asterisks) that extend into each protrusion; note the electron-dense, U-shaped structure at each tip of the protrusions (arrowheads) and the apparently serrated surface of the VP (flat arrowheads). The inset shows a higher magnification of the apical part of a single VP with the typical U-shaped apex (asterisk), which appears to be connected with the host cell through an electronlucent contact zone (white arrowheads); interestingly, the protrusion appears fenestrated (also visible in the main image) possessing thorn-like structures (black arrows; the white arrow indicates a crosssectional view) that could be responsible for the serration visible at lower magnification. CZ, cystozoites; HC, host cell; VP, villous protrusion.
Fig. 1 in Description of Sarcocystis scandentiborneensis sp. nov. from treeshrews (Tupaia minor, T. tana) in northern Borneo with annotations on the utility of COI and 18S rDNA sequences for species delineation
Fig. 1. Light microscopy of Sarcocystis scandentiborneensis sp. nov. A and B, Haematoxylin & Eosinstained histological sections of striated musculature; C and D, Richardson's dye-stained 1.0 μm thin sections of sarcocysts. A) Tissue section of laryngeal muscle with various sarcocysts in cross section (asterisks), indicating a relatively high density of cysts in this part of musculature. B) Longitudinal section through a sarcocyst, showing a cigar-shaped appearance; however, isolated native sarcocysts, which were not available, may look different. C) Part of a longitudinal section through the tip of a sarcocyst, note the very thin ground substance (arrows) and the fine septae extending into the interior of the cyst (arrowheads); cystozoites (CZ) were loosely scattered within chambers while metrocytes were rarely seen, indicating maturity of the cyst; bars indicate the variable thickness of the cyst wall: the wall was thinner in regions where the villous protrusions were bent (right bar); note that the intense staining at the interface between host cell (HC) and parasite is part of the host cell. D) Cross-section through a sarcocyst showing cystozoites and the cyst wall (bar) including its thin ground substance (arrows).
Fig. 4 in Description of Sarcocystis scandentiborneensis sp. nov. from treeshrews (Tupaia minor, T. tana) in northern Borneo with annotations on the utility of COI and 18S rDNA sequences for species delineation
Fig. 4. Mapping (to the Toxoplasma gondii reference molecule M97703) of frequencies (%) of base pair changes observed in sequence comparisons of nu clear 18S rDNA within the new Sarcocystis sp. from treeshrews (intraspecific variation: isolates E364–13 versus E357–13) and between the new species and Sarcocystis zuoi and/or S. clethrionomyelaphis (interspecific variation: E364–13 versus S. zuoi/clethrionomyelaphis). Results were combined for the two latter species to simplify the graph. Here, 87.2% of 2118 alignment positions showed moderate to high levels of consistency, while sections of ambiguous alignment did not relate to the species under investigation. Due to gaps in the alignment, not all of the observed nt changes could be mapped to a homologous position of the reference molecule (i.e., 7 out of 24 bp changes in intraspecific comparison; 33 out of 74 bp changes in interspecific comparison), in which case the position of each nt relative to the helix was inferred from neighboring nt for which such position was known. Gaps were mainly due to insertions in helices V2, V4, and V9 rendering E357-13/E364-13 longer than the sequence of T. gondii. The percentage of parsimony-informative (pi) bp changes per helix is shown for helices V1, V2, V4, V7, and V9 above each column. Also shown is the ratio of transitions versus transversions (Ti/Tv) for selected helices.
Figure 12 in An annotated checklist of Chilopoda from Afghanistan
Figure 12. Provinces of Afghanistan where Lithobius paghmanensis Eason, 1986, L. pappi Eason, 1986, and Thereuonema turkestana Verhoeff, 1905 have been reported.
Figure 5 in An annotated checklist of Chilopoda from Afghanistan
Figure 5. Provinces of Afghanistan where Mecistocephalus cephalotes Meinert, 1870 has been reported.
Figure 8 in An annotated checklist of Chilopoda from Afghanistan
Figure 8. Provinces of Afghanistan where Rhysida longipes afghanistana Loksa, 1971 and Scolopendra canidens Newport, 1844 have been reported.
Figure 1 in An annotated checklist of Chilopoda from Afghanistan
Figure 1. Map of Afghanistan. Provinces: 1 – Herat; 2 – Badghis; 3 – Faryab; 4 – Dschuzdschan; 5 – Balch; 6 – Kunduz; 7 – Tachar; 8 – Badachschan; 9 – Farah; 10 – Ghor; 11 – Sar-i Pul; 12 – Samangan; 13 – Baglan; 14 – Nimrus; 15 – Helmand; 16 – Daikondi; 17 – Bamiyan; 18 – Kandahar; 19 – Uruzgan; 20 – Ghazni; 21 – Wardak; 22 – Parwan; 23 – Kapisa; 24 – Panjshir; 25 – Zabul; 26 – Paktika; 27 – Chost; 28 – Paktia; 29 – Lugar; 30 – Kabul; 31 – Nangarhar; 32 – Lagh-man; 33 – Nuristan; 34 – Kunar.
Fig. 1 in Annotated checklist of the herpetofauna (Amphibia, Reptilia) of Mount Ararat and surroundings
Fig. 1. The region under study, comprising the province of Iğdır and the community of Doğubayazıt in the province of Ağrı.
Fig. 2 in Turtles of Colombia: an annotated analysis of their diversity, distribution, and conservation status
Fig. 2. Cluster diagram comparing turtle community species compositions of the five macro-drainages in Colombia.
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.