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1,118 results for “subterranean biology”
Figure 9 from: Bernardi LFO, Borges-Filho EL (2018) Neocarus spelaion sp. n. (Parasitiformes, Opilioacaridae), a new species of cave dwelling Neocarus from Minas Gerais state, Brazil. Subterranean Biology 27: 1-16. https://doi.org/10.3897/subtbiol.27.25777
Figure 9 Neocarusspelaion sp. n.: A Lateral view of basitarsus and tibia, arrow indicating coronidia and mucronate setae (d) B Detail of the papiliform setae on tibia II; B lateral view of genu II.
Figure 5 from: Bernardi LFO, Borges-Filho EL (2018) Neocarus spelaion sp. n. (Parasitiformes, Opilioacaridae), a new species of cave dwelling Neocarus from Minas Gerais state, Brazil. Subterranean Biology 27: 1-16. https://doi.org/10.3897/subtbiol.27.25777
Figure 5 Neocarusspelaion sp. n.: A View of female sternitogenital region B View of male sternitogenital region C View of invaginated ovipositor D Sternapophyses. Abbreviations; sv = sternal verrucae, gv = genital verrucae, st1–5= sternitogenital setae, ly = lyrifissure.
Figure 3 from: Espinasa L, Robinson J, Soares D, Hoese G, Toulkeridis T, Toomey III R (2018) Troglomorphic features of Astroblepus pholeter, a cavefish from Ecuador, and possible introgressive hybridization. Subterranean Biology 27: 17-29. https://doi.org/10.3897/subtbiol.27.27098
Figure 3 AChaetostomamicrops (Surface catfish) BAstroblepuspholeter (Cave catfish). Both species inhabit the same river drainage.
Figure 4 from: Bernardi LFO, Borges-Filho EL (2018) Neocarus spelaion sp. n. (Parasitiformes, Opilioacaridae), a new species of cave dwelling Neocarus from Minas Gerais state, Brazil. Subterranean Biology 27: 1-16. https://doi.org/10.3897/subtbiol.27.25777
Figure 4 Neocarusspelaion sp. n. (female): A View of eyes and prodorsal setae B View of the stigmas C View of the sternitogenital setae (barbed and tapering).
Figure 6 from: Bernardi LFO, Borges-Filho EL (2018) Neocarus spelaion sp. n. (Parasitiformes, Opilioacaridae), a new species of cave dwelling Neocarus from Minas Gerais state, Brazil. Subterranean Biology 27: 1-16. https://doi.org/10.3897/subtbiol.27.25777
Figure 6 Neocarusspelaion sp. n.: A View of male sternitogenital region B Details of the duplicated lyrifissures. Abbreviations; St1–5 = sternitogenital setae.
Figure 4 from: Espinasa L, Robinson J, Soares D, Hoese G, Toulkeridis T, Toomey III R (2018) Troglomorphic features of Astroblepus pholeter, a cavefish from Ecuador, and possible introgressive hybridization. Subterranean Biology 27: 17-29. https://doi.org/10.3897/subtbiol.27.27098
Figure 4 Cross section of the eye from Astroblepuspholeter (A, E–G) and Chaetostomamicrops (B–D). Notice that the pigmented epithelium (G) and iris of A.pholeter (E) are black, implying that they are not albino. Furthermore, A.pholeter eye has retained its lens, optic nerve, and its retina has all the normal layers, as the surface fish eye.
Figure 8 from: Bernardi LFO, Borges-Filho EL (2018) Neocarus spelaion sp. n. (Parasitiformes, Opilioacaridae), a new species of cave dwelling Neocarus from Minas Gerais state, Brazil. Subterranean Biology 27: 1-16. https://doi.org/10.3897/subtbiol.27.25777
Figure 8 Neocarusspelaion sp. n.: Acrotarsus II, female; A posterolateral view B anterolateral view. Abbreviations; ωa = solenidia, d = dorsal setae, l = lateral setae, dl = dorsolateral setae, v = ventral setae, lv =lateroventral setae.
Figure 2 from: Espinasa L, Robinson J, Soares D, Hoese G, Toulkeridis T, Toomey III R (2018) Troglomorphic features of Astroblepus pholeter, a cavefish from Ecuador, and possible introgressive hybridization. Subterranean Biology 27: 17-29. https://doi.org/10.3897/subtbiol.27.27098
Figure 2 A–C Live specimens of cave AstroblepuspholeterD Two different surface Astroblepus sp. from the Apurimac drainage. Notice contrasting coloration between A and B both of which were collected in 2011. Pigmentation level variability within the cave population in 2011 spanned from pinkish-white white (A) to pigmented (B) at levels equivalent to some surface Astroblepus (D). Specimens collected in 2011 had longer fins (A) than those collected in 2015 (C). Notice as well that some surface Astroblepus (bottom one in D) can have small eyes of a size equivalent to cave specimens. A Modified from Haspel et al. (2012)B Modified from the Soares Lab web-page-photo C Specimen collected on 2015 D Modified from Schaefer et al. (2011).
Figure 7 from: Bernardi LFO, Borges-Filho EL (2018) Neocarus spelaion sp. n. (Parasitiformes, Opilioacaridae), a new species of cave dwelling Neocarus from Minas Gerais state, Brazil. Subterranean Biology 27: 1-16. https://doi.org/10.3897/subtbiol.27.25777
Figure 7 Neocarusspelaion sp. n.: A Details of variation in morphology found in pregenital and genital setae in male B Detail of female genital setae.
Figure 4 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 4 Interaction plot showing the effect of the interaction between seasonality and the day–night cycle on the abundance of trogloxenes.
Figure 3 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 3 Boxplots showing the difference between relative humidity values during the day (white boxes) and at night (grey boxes) in the four seasons. Significant differences are highlighted by asterisks (Signif. codes: *** p<0.001, ** p<0.01).
Figure 2 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 2 Temperature variation in the study area. Data refer to record of temperature and relative humidity measured every 12 h (one measurement at midday and one at midnight). Top panel: annual trends of temperatures measured at the entrance (0 m; orange line) and inside the mine (10 and 20 m; purple and blue lines, respectively). Bottom panel: mean of monthly positive and negative temperature deviations at night, with respect to the daily temperature recorded during the same period.
Figure 1 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 1 Map of the study area and groundplan of the Seinera mine, with indication of sampling plots and dataloggers.
Figure 5 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 5 Predicted values (filled lines) and 95% confidence intervals (dotted lines) of the effect of distance from the main entrance in interaction with the sampling season on the abundance of troglophiles derived from the generalized linear mixed model (GLMM). Day and night trends are shown.
Figures 23-24 from: Sendra A, Yoshizawa K, Ferreira RL (2018) New oversize troglobitic species of Campodeidae in Japan (Diplura). Subterranean Biology 27: 53-73. https://doi.org/10.3897/subtbiol.27.28575
Figures 23-24 Pacificampanipponica Sendra, sp. n. 23 Pro-, meso- and metanotum, right side 24 Urotergites IV–IX, right side.
Figures 26-31 from: Sendra A, Yoshizawa K, Ferreira RL (2018) New oversize troglobitic species of Campodeidae in Japan (Diplura). Subterranean Biology 27: 53-73. https://doi.org/10.3897/subtbiol.27.28575
Figures 26-31 26 Karst landscape in the area where Mejiro-do cave is located 27 Map of Mejiro-do cave, indicating the touristic area (marked in pink), and the locations where specimens of P.daidarabotchi were found (red dots) 28 conduit in the non-touristic area, trespassed by a stream 29 touristic area near the cave entrance 30 speleothems, where some specimens can be observed 31 P.daidarabotchi, living specimen.
Figures 16-17 from: Sendra A, Yoshizawa K, Ferreira RL (2018) New oversize troglobitic species of Campodeidae in Japan (Diplura). Subterranean Biology 27: 53-73. https://doi.org/10.3897/subtbiol.27.28575
Figures 16-17 Pacificampadaidarabotchi Sendra, sp. n. 16 Urotergites V–IX, left side., paratype ME01 17 detail urostergite VIII, paratype.
Figures 1-6 from: Sendra A, Yoshizawa K, Ferreira RL (2018) New oversize troglobitic species of Campodeidae in Japan (Diplura). Subterranean Biology 27: 53-73. https://doi.org/10.3897/subtbiol.27.28575
Figures 1-6 Pacificampadaidarabotchi Sendra, sp. n. 1 Last and penultimate antennomere, paratype ME01 2 olfactory chemoreceptors within the cupuliform organ, paratype 3 detail olfactory chemoreceptor, paratype 4 coniform sensilla on the antennomeres, paratype 5 gouge sensilla on distal whorl on distal antennomere, paratype 6 detail gouge sensillum, paratype.
Figure 25 from: Sendra A, Yoshizawa K, Ferreira RL (2018) New oversize troglobitic species of Campodeidae in Japan (Diplura). Subterranean Biology 27: 53-73. https://doi.org/10.3897/subtbiol.27.28575
Figure 25 Map of Japan highlighting Kyushu (A) and Shikoku (B) Islands. The red star indicates the location of Mejiro-do Cave (habitat of P.daidarabotchi), while the yellow stars indicate the location of Goya Daiichi Shonyu-do (Kyushu) and Inaba-do (Shikoku) caves, both habitats of P.nipponica.
Figures 7-10 from: Sendra A, Yoshizawa K, Ferreira RL (2018) New oversize troglobitic species of Campodeidae in Japan (Diplura). Subterranean Biology 27: 53-73. https://doi.org/10.3897/subtbiol.27.28575
Figures 7-10 Pacificampadaidarabotchi Sendra, sp. n. 7 Pro-, meso- and metanotum, right side, holotype 8 detail epicuticle surface on mesonotum, paratype 9 detail epicuticle surface including external gland in the middle on mesonotum, paratype 10 detail epicuticle surface and the ecdysial suture on metanotum, paratype.
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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)
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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.