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6,040 results for “Cave”
Fig. 11 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 11. Phylogenetic relationships of Chaetonotidae inferred from the Bayesian analysis of 18S rRNA, 28S rRNA and COI sequence data (for details on the species names see Table 3).
Fig. 4 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 4. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., schematic drawings. A. Dorsal body view. B. Internal body view. C. Ventral body view.
Fig. 5 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 5. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., schematic drawings of the scales. A. Head region scales. B. Neck region scales. C. Trunk region scales. D. Ventral interciliary field scales. E. Posteriormost ventral field scales. F, H. Furcal appendages dorsolateral one–lobed scales. G. Furcal appendages dorsal three-lobed scales.
Fig. 3 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 3. Photographs of Obodska Cave. A. Entrance to the Cave. B. Sampling area inside the Cave. (Photographs by Przemysław Śmietana.)
Fig. 8 in Cave-dwelling Coecobrya from southern China with a survey of clypeal chaetae in Entomobryoidea (Collembola)
Fig. 8. Coecobrya oculata sp. nov. A. Labrum. B. Dorsal cephalic chaetotaxy. C. Lateral process of labial palp. D. Chaetae on the ventral side of head. E. Trochanteral organ, ventral view. F. Hind claw. G. Anterior face of ventral tube and lateral flap. H. Posterior face of ventral tube. I. Mucro. J. Thoracic chaetotaxy. K–M, Abdominal chaetotaxy. K. Abd. I–III. L. Abd. IV. M. Abd. V. Scale bars: A, C–I = 20 μm; B, J–M = 100 μm.
Fig. 7 in Cave-dwelling Coecobrya from southern China with a survey of clypeal chaetae in Entomobryoidea (Collembola)
Fig. 7. Abdominal chaetotaxy of Coecobrya ciliata sp. nov. A. Abd. I–III. B. Abd. IV. C. Abd. V. Scale bars: 50 μm.
Fig. 6 in Cave-dwelling Coecobrya from southern China with a survey of clypeal chaetae in Entomobryoidea (Collembola)
Fig. 6. Coecobrya ciliata sp. nov. A. Ant. III organ. B. Dorsal cephalic chaetotaxy. C. Lateral process of labial palp. D. Chaetae on the ventral side of head. E. Trochanteral organ, ventral view. F. Hind claw. G. Anterior face of ventral tube ad lateral flap. H. Posterior face of ventral tube. I. Mucro. J. Thoracic chaetotaxy. Scale bars: A, C–I = 20 μm; B, J = 100 μm.
Fig. 3 in Cave-dwelling Coecobrya from southern China with a survey of clypeal chaetae in Entomobryoidea (Collembola)
Fig. 3. Coecobrya gejianbangi sp. nov. A. Thoracic chaetotaxy. B–D. Abdominal chaetotaxy. B. Abd. I–III. C. Abd. IV. D. Abd. V. Scale bars: 200 μm.
Fig. 9. Clypeal chaetae. A. Diagram. B in Cave-dwelling Coecobrya from southern China with a survey of clypeal chaetae in Entomobryoidea (Collembola)
Fig. 9. Clypeal chaetae. A. Diagram. B. Coecobrya gejianbangi sp. nov. C. Coecobrya annulata sp. nov. D. Coecobrya ciliata sp. nov. E. Coecobrya brevis. F. Coecobrya pani. Figures of the latter two species after Xu et al. (2012). Scale bars: 40 μm.
Fig. 4 in Cave-dwelling Coecobrya from southern China with a survey of clypeal chaetae in Entomobryoidea (Collembola)
Fig. 4. Coecobrya annulata sp. nov. A. Ant. III organ. B. Dorsal cephalic chaetotaxy. C. Chaetae on the ventral side of head. D. Trochanteral organ, ventral view. E. Hind claw. F. Anterior face and lateral flap of ventral tube. G. Posterior face of ventral tube. H. Mucro. Scale bars: A, C–E, H = 50 μm; B, F–G = 100 μm.
Fig. 2 in Cave-dwelling Coecobrya from southern China with a survey of clypeal chaetae in Entomobryoidea (Collembola)
Fig. 2. Coecobrya gejianbangi sp. nov. A. Ant. III organ. B. Dorsal cephalic chaetotaxy. C. Lateral process of labial palp. D. Chaetae on the ventral side of head. E. Trochanteral organ, ventral view. F. Fore claw. G. Hind claw. H–J. Ventral tube. H. Anterior face. I. Posterior face. J. Lateral flap. K. Manubrial plaque. Scale bars: A, C, E–G, K = 40 μm; B, D, H–J = 100 μm.
Fig. 3 in The first blind spirostreptid millipede, found in a cave in Morocco; with notes on the genus Odontostreptus Attems, 1914 (Diplopoda, Spirostreptida, Spirostreptidae)
Fig. 3. Odontostreptus maroccanus (Attems, 1914). A. ♀ from the Asni area (NHMD 52994). B–C. ♂, from 10 km before Ouzzane (NHMD 53001). Scale bars = 5 mm.
Fig. 2 in The first blind spirostreptid millipede, found in a cave in Morocco; with notes on the genus Odontostreptus Attems, 1914 (Diplopoda, Spirostreptida, Spirostreptidae)
Fig. 2. Odontostreptus fadriquei sp. nov., holotype, ♂ (MZB 2003-1301), right gonopod. A. Anterior view. B. Lateral view. C. Oblique latero-posterior view. D. Posterior view. E. Mesal view. F. Mesoposterior view. Abbreviations: atp = antetorsal process; in = incision; lap = lateral metaplical process; llp = ladle-like process; mp = metaplica; pp = proplica; px = paracoxite; slm = solenomere. Scale bars: A–E = 0.2 mm; F = 0.1 mm.
Fig. 15 in Morphological and molecular characterization of three new Parastenocarididae (Copepoda: Harpacticoida) from caves in Southern Italy
Fig. 15 (opposite page). Bayesian phylogram (95% majority rule consensus tree) of the investigated Parastenocarididae Chappuis, 1940 based on the 2090 bp fragment of the combined dataset including COI and 18S sequences. Bryocamptus (Rheocamptus) stillae Cottarelli & Bruno, 2012 and Bereraia sp. used as outgroups to root the tree. Node statistical support is reported as nodal posterior probabilities (Bayesian Inference of phylogeny, BI) / bootstrap values (Maximum Likelihood, ML). Asterisks indicate a bootstrap support value lower than 50.
Fig. 7 in Morphological and molecular characterization of three new Parastenocarididae (Copepoda: Harpacticoida) from caves in Southern Italy
Fig. 7. Cottarellicaris sanctiangeli Bruno & Cottarelli sp. nov., ♀ (NHMUK). a. Anal somite, anal operculum and caudal rami, dorsal view (variability). b. Anal somite, anal operculum and caudal rami, lateral view (variability). c. Rostrum, A1. d. P1, anterior view. e. P2, inner view. f. P3, posterior view. g. Coxa, basis, enp P3, inner view. h. P4, posterior view. i. Coxa, basis, enp P4, inner view (variability). a, c–i: Grotta Grotta Vucco Ucciardo; b: Grotta del Banco di ferro. Scale bar: 50 µm.
Fig. 5 in Morphological and molecular characterization of three new Parastenocarididae (Copepoda: Harpacticoida) from caves in Southern Italy
Fig. 5. Cottarellicaris sanctiangeli Bruno & Cottarelli sp. nov., ♂ (NHMUK). a. P1, coxa, basis and enp, inner view. b. P1, basis and exp, outer view. c. P2, posterior view. d. P3, anterior view. e. P3, posterior view (variability). f. P4, anterior view. g. P4, intercoxal sclerite, coxa, basis and enp, outer view. h. P4, posterior view. a, c, e, g: Grotta Vucco Ucciardo; b, h: Grotta del Banco di ferro; d, f: Grotta superiore di Sant'Angelo. Scale bar: 50 µm.
Fig. 4 in Morphological and molecular characterization of three new Parastenocarididae (Copepoda: Harpacticoida) from caves in Southern Italy
Fig. 4. Cottarellicaris sanctiangeli Bruno & Cottarelli sp. nov., ♂ (NHMUK). a. Rostrum and A1, ventral view. b. Rostrum and A1, ventral view. c. A1, disarticulated (antennular segments marked with Roman numerals). d. A2. e. Mdb. f. Mx1. g. Mx2. h. Mxp. a, e–g: Grotta Vucco Ucciardo; b–d, h: Grotta superiore di Sant'Angelo. Scale bar: 50 µm.
Fig. 14 in Morphological and molecular characterization of three new Parastenocarididae (Copepoda: Harpacticoida) from caves in Southern Italy
Fig. 14. Proserpinicaris specincola Bruno & Cottarelli sp. nov., ♀ (NHMUK). a. Rostrum and A1. b. P2 coxa, basis and exp, outer view. c. P2, enp. d. P3, basis and exp, outer view. e. P3, enp. f. P4, basis and exp, outer view. g. P4, enp. h. P4 coxa, basis and first exopodal segment, and enp, inner view. i. P5. j. P5, P6, genital double-somite and genital field, ventral view. Scale bar: 50 µm.
Figure 6 in Sharing the space: coexistence among terrestrial predators in Neotropical caves
Figure 6. Ordering diagram for the five model species produced by the canonical correspondence analysis (CCA). Legend: Hum = humidity; Temp = temperature; Subs = substrate.
Figure 2 in Sharing the space: coexistence among terrestrial predators in Neotropical caves
Figure 2. Substrate categories utilised for the field observations and the canonical correspondence analysis (CCA). Rocky substrates: (a) wall and (b) unconsolidated substrate (scale = 5 cm). Organic substrates: (c) guano (forceps for scale) and (d) leaf litter. Photographs by the authors.
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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.