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1,118 results for “subterranean biology”
Figure 7 from: Ando K (2019) The study of amphipods in rimstone pools of Akiyoshi-do Cave, Japan. Subterranean Biology 32: 81-94. https://doi.org/10.3897/subtbiol.32.35031
Figure 7 Fluctuation of the population density of Gammarus nipponensis in the type B pools (1971–1975, 2015–2016).
Figure 6 from: Ando K (2019) The study of amphipods in rimstone pools of Akiyoshi-do Cave, Japan. Subterranean Biology 32: 81-94. https://doi.org/10.3897/subtbiol.32.35031
Figure 6 Fluctuation of the population densities of Pseudocrangonyx akatsukai and Gammarus nipponensis in the type A pools (1971–1975, 2015–2016).
Figure 2 from: Ando K (2019) The study of amphipods in rimstone pools of Akiyoshi-do Cave, Japan. Subterranean Biology 32: 81-94. https://doi.org/10.3897/subtbiol.32.35031
Figure 2 Location of the Akiyoshi-do Cave in Japan and of the surveyed pools inside the cave. The cave river flows to the south. The map of Akiyoshi-do Cave was drawn based on karusuto.com (https://akiyoshido.karusuto.com/html/guide/).
Figure 4 from: Kunt KBB, Elverici M, Yağmur EA, Özkütük RS (2019) Kut gen. nov., a new troglomorphic spider genus from Turkey (Araneae, Dysderidae). Subterranean Biology 32: 95-109. https://doi.org/10.3897/subtbiol.32.46534
Figure 4 Kut dimensis sp. nov. A carapace B chelicerae C prosoma D male palp, retrolateral view E ditto, prolateral view F ditto, nearly anterior view G vulva, dorsal view H ditto, ventral view. Scale bars: 0.5 (D), 0.125 (G).
Figure 1 from: Kunt KBB, Elverici M, Yağmur EA, Özkütük RS (2019) Kut gen. nov., a new troglomorphic spider genus from Turkey (Araneae, Dysderidae). Subterranean Biology 32: 95-109. https://doi.org/10.3897/subtbiol.32.46534
Figure 1 Kut troglophilus (Brignoli, 1978) comb. nov. A carapace B chelicerae C prosoma D male palp, retrolateral view E ditto, prolateral view F ditto, nearly retrolateral view G vulva, dorsal view H ditto, ventral view. Scale bars: 0.5 (D), 0.125 (G).
Figure 2 from: Kunt KBB, Elverici M, Yağmur EA, Özkütük RS (2019) Kut gen. nov., a new troglomorphic spider genus from Turkey (Araneae, Dysderidae). Subterranean Biology 32: 95-109. https://doi.org/10.3897/subtbiol.32.46534
Figure 2 Kut izmiricus sp. nov. A carapace B chelicerae C prosoma D male palp, retrolateral view E ditto, prolateral view F ditto, nearly prolateral view G vulva, dorsal view H ditto, ventral view. Scale bars: 0.5 (D), 0.125 (G).
Figure 7 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 7 dbRDA ordination for the model of the investigated cave sites (based on Bray–Curtis similarity) factored with distance ranges: 1 – 0–60 m, 2 – 280–380 m, 3 – 460–650 m.
Figure 6 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 6 Changes in the biomass of stygobionts according to the distance from the cave entrance (2018–2019).
Figure 8 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 8 dbRDA ordination for the investigated cave sites during the research in autumn 2019 (based on Bray–Curtis similarity) factored with luminosity ranges: 0 – 0 lx, 1 – 0.07–2.7 lx, 2 – 13.17 lx, 3 – 555 lx.
Figure 3 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 3 Changes in the number of stygoxenes, stygophiles and stygobionts according to the distance from the cave entrance (2018–2019).
Figure 4 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 4 The most numerous stygobionts in the Lower Shakuranskaya Cave AXiphocaridinella osterloffi (Juzbaš'jan, 1941) BPontohoratia birsteini (Starobogatov, 1962).
Figure 1 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 1 A Location of the Lower Shakuranskaya Cave on the map of Abkhazia B sampling stations location scheme in the Lower Shakuranskaya Cave in 2018–2019. In numbers – stations, sampled in February 2018, May and October, 2019; in letters – additional stations, sampled in October, 2019 (for each station indicated numbers of stygobionts, stygophiles and stygoxenes). Views on the cave stream C at station 2 (ecotone zone) D at station 4 E at station 5.
Figure 2 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 2 The variation in the values of Shannon diversity index along the distance from the cave entrance (2018–2019).
Figure 5 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 5 Changes in the biomass of stygoxenes, stygophiles and stygobionts according to the distance from the cave entrance (2018–2019).
Figure 10 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 10 The CCA ordination of hydrobionts species from Nizhnyaya Shakuranskaya Cave. Black points – stygobionts, blue points – stygophiles, green points – stygoxenes. Abbreviations: A gut – A. guttatus, B gem – B. gemellus, C hor – C. horatieformis, C schak – C. schakuranica, C shad – C. shadini, C sp – Caucasopsis sp., Ch abch – C. abchazica, Cn sp – Cnetha sp., E sp – Elmis sp., D sub – D. submaculata, D tau – D. taurocaucasica, Dend sp – Dendrocoelum sp., E ljov – E. cf. ljovuschkini, Es sp – Eisenia sp., E palp – E. palpatus, E zimm – E. zimmermanni, G kom – G. cf. komareki, H gor – H. gordioides, H sang – H. sanguisuga, L col – L. colchicus, L inc – L. incanus, L sp – Leuctra sp., M sp – Macropelopia sp., N abl – N. cf. ablaskiri, N iner – N. inermis, N magn – N. magnus, N mart – N. martynovia, O sp – Odeles sp., P birst – P. birsteini, P lat – P. latissima, Par sp – Parametriocnemus sp., P wern – P. werneri, R som – R. somcheticus, Rh sp – Rhynchelmis sp., S cach – S. cachetica, S clav – S. clavatus, Sty sp – Stylodrilus sp., T cauc – T. caucasica, T valv – T. valvatus, X falc – X. falcirostris, X ost – X. osterloffi, Z yak – Z. yakovi.
Figure 9 from: Borisov RR, Chertoprud ES, Palatov DM, Novichkova AA (2021) Variability in macrozoobenthic assemblages along a gradient of environmental conditions in the stream water of karst caves (Lower Shakuranskaya Cave, western Caucasus). Subterranean Biology 39: 107-127. https://doi.org/10.3897/subtbiol.39.65733
Figure 9 The two-dimensional nMDS ordination of the investigated cave sites, based on Bray–Curtis similarities (stress = 0.09) and factored with luminosity: 0 – 0 lx, 1 – 0.07–2.7 lx, 2 – 13.17 lx, 3 – 555 lx. Dots are labeled: first number – season/year of research: 1 – winter 2018, 2 – spring 2018, 3 – autumn 2019; second number – no of sampling station.
Figures 18-24 from: Czaja A, Gladstone NS, Becerra-López JL, Estrada-Rodríguez JL, Sáenz‑Mata J, Hernández-Terán F (2021) A remarkable new genus and species of subterranean freshwater snail from a recently dried-up spring of Viesca, Coahuila, Northern Mexico. Subterranean Biology 39: 129-141. https://doi.org/10.3897/subtbiol.39.67799
Figures 18-24 SEM images of Phreatoviesca spinosa gen. nov. et sp. nov. 18 shell apex with protoconch, UJMC 508 19 paratype 3, shell apex with protoconch, UJMC 503 20 shell apex with protoconch, UJMC 510 21 paratype 1, apex with protoconch, UJMC 501 22 smooth specimen with body whorl shows irregular, strong marked growth lines, UJMC 508 23 paratype 1, body whorl shows irregular, strong marked growth lines, UJMC 501 24 paratype 2, body whorl shows regularly spaced shovel-shaped spines, UJMC 502.
Figures 14-17 from: Czaja A, Gladstone NS, Becerra-López JL, Estrada-Rodríguez JL, Sáenz‑Mata J, Hernández-Terán F (2021) A remarkable new genus and species of subterranean freshwater snail from a recently dried-up spring of Viesca, Coahuila, Northern Mexico. Subterranean Biology 39: 129-141. https://doi.org/10.3897/subtbiol.39.67799
Figures 14-17 SEM images of Phreatoviesca spinosa gen. nov. et sp. nov. 14 specimen with strong spines, UJMC 506 15 specimen with ribs, UJMC 507 16 specimen with smooth whorls, UJMC 508 17 specimen with smooth whorls, UJMC 509. Scale bar: 1 mm.
Figure 1 from: Czaja A, Gladstone NS, Becerra-López JL, Estrada-Rodríguez JL, Sáenz‑Mata J, Hernández-Terán F (2021) A remarkable new genus and species of subterranean freshwater snail from a recently dried-up spring of Viesca, Coahuila, Northern Mexico. Subterranean Biology 39: 129-141. https://doi.org/10.3897/subtbiol.39.67799
Figure 1 Map of the study area with localization of the sampling site near the town of Viesca, Coahuila, Mexico.
Figures 2-13 from: Czaja A, Gladstone NS, Becerra-López JL, Estrada-Rodríguez JL, Sáenz‑Mata J, Hernández-Terán F (2021) A remarkable new genus and species of subterranean freshwater snail from a recently dried-up spring of Viesca, Coahuila, Northern Mexico. Subterranean Biology 39: 129-141. https://doi.org/10.3897/subtbiol.39.67799
Figures 2-13 Shells of Phreatoviesca spinosa gen. nov. et sp. nov. 2, 3 holotype, specimen from both sides, UJMC 500 4, 5 paratype 1, specimen from both sides, UJMC 501 6 paratype 2, specimen with a 'corkscrew'-like morphology, UJMC 502 7, 8 paratype 3, specimen from both sides, UJMC 503 9 paratype 4, specimen with smooth whorls and a trumpet-like aperture, UJMC 504 10, 11 paratype 5, specimen with smooth whorls, UJMC 505. Opercula 12, 13 paratype 5, specimen with smooth whorls, UJMC 505. Scale bar: 1 mm.
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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.