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80 results for “subterranean biodiversity”
Figure 1 in Terrestrial isopods and myriapods in a forested scree slope: subterranean biodiversity, depth gradient and annual dynamics
Figure 1. Distribution of Isopoda, Diplopoda and Chilopoda along the depth gradient of the scree slope expressed as the total number of individuals trapped in two sampling periods (November 2008–November 2009; November 2009–July 2010).
Fig. 5 in Two new species of the genus Deuteraphorura Absolon, 1901 (Hexapoda, Collembola, Onychiuridae) from Georgian caves with remarks on the subterranean biodiversity of the Caucasus Mountains
Fig. 5. Deuteraphorura kozmani Parimuchová, Barjadze & Kováč sp. nov. a. Dorsal chaetotaxy. b. AOIII. c. MVO (enlargment of modified chaeta). d. Tita and claw of leg III (DIC contrast image; chaeta in C-row not visible from this view).
Fig. 3 in Two new species of the genus Deuteraphorura Absolon, 1901 (Hexapoda, Collembola, Onychiuridae) from Georgian caves with remarks on the subterranean biodiversity of the Caucasus Mountains
Fig. 3. Histogram of COI K2P distances between specimens of Deuteraphorura Absolon, 1901. The red line indicates the threshold distance above which specimens are considered to belong to different species, according to ASAP method.
Fig. 2. A in Two new species of the genus Deuteraphorura Absolon, 1901 (Hexapoda, Collembola, Onychiuridae) from Georgian caves with remarks on the subterranean biodiversity of the Caucasus Mountains
Fig. 2. A neighbour-joining tree (NJ) with species delimitation of Georgian cave populations of Deuteraphorura Absolon, 1901 based on COI molecular marker, morphology and geographic location in karst areas. Numbers and coloured columns indicate groups (species) identified by particular methods ASAP (Assemble Species by Automatic Partitioning) and bPTP (Bayesian Poisson tree processes). The question mark (?) indicates ambiguous result in Shvilobisa Cave due to low number of studied specimens. For abbreviations of caves in the NJ tree see Table 1.
Fig. 4 in Two new species of the genus Deuteraphorura Absolon, 1901 (Hexapoda, Collembola, Onychiuridae) from Georgian caves with remarks on the subterranean biodiversity of the Caucasus Mountains
Fig. 4. Deuteraphorura colchisi Parimuchová, Barjadze & Kováč sp. nov. a. Dorsal chaetotaxy (the same scale as in Fig. 4b). b. Ventral chaetotaxy of abdomen. c. PAO. d. MVO in adult specimen (other than in Fig. 4b).
A dark side of conservation biology: protected areas fail in representing subterranean biodiversity. Databases.
<p>We obtained distribution data for leiodids by digitizing the information provided by Fresneda and Salgado (2017). This information was updated and expanded with additional data from several sampling campaigns (unpublished data). For subterranean spiders, we included the entirety of the Alps range extending from France in the east westward through Switzerland, Italy, Liechtenstein, Austria, Germany, and Slovenia, by integrating available data in Global Biodiversity Information Facility (GBIF), Spider of Europe), Araneae.it and other literature sources.</p>
Fig. 1 in Two new species of the genus Deuteraphorura Absolon, 1901 (Hexapoda, Collembola, Onychiuridae) from Georgian caves with remarks on the subterranean biodiversity of the Caucasus Mountains
Fig. 1. Locations of studied caves in Georgia. For cave abbreviations see Table 1.
Supplementary material 2 from: Glanville K, Schulz C, Tomlinson M, Butler D (2016) Biodiversity and biogeography of groundwater invertebrates in Queensland, Australia. Subterranean Biology 17: 55-76. https://doi.org/10.3897/subtbiol.17.7542
Biogeography of undescribed families and/or genera of groundwater invertebrates in Queensland, Australia. : Explanation note: This dataset contains a supplementary table of undescribed families and/or genera of groundwater invertebrates by higher rank in each subregion of Queensland, Australia.
Supplementary material 1 from: Glanville K, Schulz C, Tomlinson M, Butler D (2016) Biodiversity and biogeography of groundwater invertebrates in Queensland, Australia. Subterranean Biology 17: 55-76. https://doi.org/10.3897/subtbiol.17.7542
Biogeography of described families and genera of groundwater invertebrates in Queensland, Australia. : Explanation note: This dataset contains a supplementary table of described families and genera of groundwater invertebrates by higher rank in each subregion of Queensland, Australia.
FIGURES 16–21 in Two new sympatric troglobitic freshwater flatworms (Platyhelminthes: Dugesiidae) from a hotspot of subterranean biodiversity in the Neotropics
FIGURES 16–21. Girardia paucipunctata, holotype in sagittal section: (16) dorsal surface of the body; (17) testes in the anterior region of the body; (18–20) general view of the copulatory apparatus; (21) copulatory bursa and proximal part of the bursal canal. Anterior to the left.
FIGURES 14–15 in Two new sympatric troglobitic freshwater flatworms (Platyhelminthes: Dugesiidae) from a hotspot of subterranean biodiversity in the Neotropics
FIGURES 14–15. Girardia paucipunctata: (14) photograph of the preserved holotype in dorsal view; (15) photograph of preserved holotype in ventral view. Anterior to the left.
FIGURE 13 in Two new sympatric troglobitic freshwater flatworms (Platyhelminthes: Dugesiidae) from a hotspot of subterranean biodiversity in the Neotropics
FIGURE 13. Girardia arenicola. Sagittal composite reconstruction of the copulatory apparatus of the holotype. The arrow indicates the joining point of the ovovitelline ducts. Anterior to the left.
FIGURE 22 in Two new sympatric troglobitic freshwater flatworms (Platyhelminthes: Dugesiidae) from a hotspot of subterranean biodiversity in the Neotropics
FIGURE 22. Girardia paucipunctata. Sagittal composite reconstruction of the copulatory apparatus of the holotype. The arrow indicates the joining point of the ovovitelline ducts. Anterior to the left.
FIGURES 8–12 in Two new sympatric troglobitic freshwater flatworms (Platyhelminthes: Dugesiidae) from a hotspot of subterranean biodiversity in the Neotropics
FIGURES 8–12. Girardia arenicola, in sagittal section: (8) ventral surface of the body of the holotype; (9) testes of the holotype in the anterior region of the body; (10) lateral view of the male copulatory apparatus of the holotype, showing the distal section of a sperm duct close to its opening into the bulbar cavity; (11) copulatory bursa and proximal part of the bursal canal of paratype MZU PL. 00275; (12) general view of the copulatory apparatus of the holotype. Anterior to the left.
FIGURES 5–7 in Two new sympatric troglobitic freshwater flatworms (Platyhelminthes: Dugesiidae) from a hotspot of subterranean biodiversity in the Neotropics
FIGURES 5–7. Girardia arenicola: (5) photograph of a live specimen in dorsal view; (6) photograph of a preserved specimen (holotype) in dorsal view; (7) photograph of a preserved specimen (holotype) in ventral view. The tip of the pharynx is protruded (arrow) through the mouth. Scale bar for the fig. 5 not available. Anterior to the left.
FIGURES 1–4 in Two new sympatric troglobitic freshwater flatworms (Platyhelminthes: Dugesiidae) from a hotspot of subterranean biodiversity in the Neotropics
FIGURES 1–4. Type-locality of Girardia arenicola and Girardia paucipunctata in "Areias de Cima" cave, in the karst area of "Areias system", Iporanga, state of São Paulo, Brazil: (1) location of the cave in southern America (modified from Rodrigues et al., 2014); (2) location of the sampling site within the cave; (3) travertine rock pool from where flatworms were collected; (4) flatworms at the bottom of the travertine rock pool. The arrowhead indicates the cave entrance; arrows indicate the sampling site.
Figure 8 in Cryptops (Trigonocryptops) didi sp. n. (Chilopoda: Scolopendromorpha: Cryptopidae): expanding the cryptopid biodiversity in a Brazilian hotspot of subterranean fauna
Figure 8. Cryptops (T.) didi sp. n. Paratype (CZUFMT-MY 0541). (a) Tibia and tarsus I of ultimate leg; (b) lateral view of ultimate leg; (c) saw teeth on femur of ultimate leg.
Figure 6 in Cryptops (Trigonocryptops) didi sp. n. (Chilopoda: Scolopendromorpha: Cryptopidae): expanding the cryptopid biodiversity in a Brazilian hotspot of subterranean fauna
Figure 6. Cryptops (T.) didi sp. n. Holotype (LES – UFSCAR 0026263). (a) Telopodite of second maxilla (left); (b) pretarsus of leg 10.
Figure 4 in Cryptops (Trigonocryptops) didi sp. n. (Chilopoda: Scolopendromorpha: Cryptopidae): expanding the cryptopid biodiversity in a Brazilian hotspot of subterranean fauna
Figure 4. Cryptops (T.) didi sp. n. Holotype (LES – UFSCAR 0026263). (a) Cephalic plate and antenna; (b) tergite 1; (c) ventral view of head; (d) proximal part of antenna and clypeus.
Figure 2 in Cryptops (Trigonocryptops) didi sp. n. (Chilopoda: Scolopendromorpha: Cryptopidae): expanding the cryptopid biodiversity in a Brazilian hotspot of subterranean fauna
Figure 2. (a) Entrance of Lage Branca Cave; (b) Lage Branca Cave gallery ('Salão das Dunas'), aphotic zone; (c, d) localities of occurence of Cryptops (T.) didi sp. n. in the aphotic zone of Lage Branca Cave – note the humid clay and rocky microhabitats. Photo 2b: A. Gambarini.
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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.