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1,118 results for “subterranean biology”
Figure 2B from: Leray VL, Caravas J, Friedrich M, Zigler KS (2019) Mitochondrial sequence data indicate "Vicariance by Erosion" as a mechanism of species diversification in North American Ptomaphagus (Coleoptera, Leiodidae, Cholevinae) cave beetles. Subterranean Biology 29: 35-57. https://doi.org/10.3897/subtbiol.29.31377
Figure 2B Distribution of hirtus-group species. All known sites for members of the South Cumberlands lineage in Tennessee and Alabama. Exposed karst is shown in gray.
Figure 2A from: Leray VL, Caravas J, Friedrich M, Zigler KS (2019) Mitochondrial sequence data indicate "Vicariance by Erosion" as a mechanism of species diversification in North American Ptomaphagus (Coleoptera, Leiodidae, Cholevinae) cave beetles. Subterranean Biology 29: 35-57. https://doi.org/10.3897/subtbiol.29.31377
Figure 2A Distribution of hirtus-group species. All known sites for hirtus-group species in Kentucky, Tennessee, Alabama, and Georgia. P.shapardi sites in Oklahoma and Arkansas are indicated in upper right inset map. A dozen species from the southern Cumberland Plateau in Tennessee and Alabama are combined.
Figure 4 from: Leray VL, Caravas J, Friedrich M, Zigler KS (2019) Mitochondrial sequence data indicate "Vicariance by Erosion" as a mechanism of species diversification in North American Ptomaphagus (Coleoptera, Leiodidae, Cholevinae) cave beetles. Subterranean Biology 29: 35-57. https://doi.org/10.3897/subtbiol.29.31377
Figure 4 Distribution of Ptomaphagus species on the southern Cumberland Plateau, overlaid on a digital elevation model. Higher elevations (to 500 m) are indicated by darker shades, lower elevations (to 180 m) by lighter shades. Ptomaphagus species diverging early in the South Cumberlands lineage are limited to isolated ridges and mountains on the fringes of the plateau. These species are P.loedingi (yellow), P.longicornis (dark gray), P.julius (blue), P.solanum (dark green) and P.hazelae (light blue). The colors used here correspond to those in Figure 2B.
Figures 6-10 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467
Figures 6-10 Haplocampawagnelli Sendra, sp. n. 6 distal gouge sensilla whorl in a medial antennomere 7 medial antennomere 8 detail of the ending portion of a gouge sensillum 9 detail of external side of a gouge sensillum 10 detail of lateral side of a gouge sensillum.
Supplementary material 1 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467
: Data type: multimedia
Figures 29-33 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467
Figures 29-33 29 Map of Fossli Slots caves with spots where Haplocampawagnelli sp. n. was seen 30 entrance of Fossli Slot #2 cave 31 Kiku Pot cave with spots where Haplocampawagnelli sp. n. was seen 32 entrance of Kiku Pot cave with Felix Ossigi-Bonanno and Craig Wagnell after the success finding 33 entrance of Kiku Pot cave viewed from inside the cave.
Figures 1-5 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467
Figures 1-5 Haplocampawagnelli Sendra, sp. n. 1 last and penultimate antennomere 2 olfactory chemoreceptors within the cupuliform organ 3 detail of olfactory chemoreceptor, paratype 4 coniform sensilla on the last antennomeres 5 two rosette sensilla in the last antennomere.
Figures 13-16 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467
Figures 13-16 Haplocampawagnelli Sendra, sp. n. 13 pro-, meso- and metanotum, left side, holotype 14 detail of epicuticle surface on mesonotum 15 detail of epicuticle surface on mesonotum 16 detail of epicuticle surface on metanotum including external gland.
Figure 28 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467
Figure 28 Map of western of North-America, highlighting in red the limestone area near Port Alberni (Vancouver Island, Canada) where Fossli Slots and Kiku Pots caves are located.
Figures 17-21 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467
Figures 17-21 Haplocampawagnelli Sendra, sp. n. 17 distal portion of femur and tibia from a metathoracic leg 18 tarsus 19 end of the tarsus and telotarsus 20 detail of posterior claw, lateral side 21 detail of posterior claw, lateral side.
Figures 3-10 from: Grego J, Angyal D, Beltrán LAL (2019) First record of subterranean freshwater gastropods (Mollusca, Gastropoda, Cochliopidae) from the cenotes of Yucatán state. Subterranean Biology 29: 79-88. https://doi.org/10.3897/subtbiol.29.32779
Figures 3-10 3–6: Mexicenoticaxochii sp. n. 46 m deep from Cenote Xoch, Cenotillo, Yucatán, Mexico (holotype, HNHM 104156) 7–10: M.xochii sp. n. (paratype, coll. JG).
Figures 11-19 from: Grego J, Angyal D, Beltrán LAL (2019) First record of subterranean freshwater gastropods (Mollusca, Gastropoda, Cochliopidae) from the cenotes of Yucatán state. Subterranean Biology 29: 79-88. https://doi.org/10.3897/subtbiol.29.32779
Figures 11-19 11–13: Pyrgophorusthompsoni sp. n. 46 m deep from Cenote Xoch, Cenotillo, Yucatán, Mexico (holotype HNHM 104157) 14–16: P.thompsoni sp. n. (paratype) 17–19: Pyrgophoruscoronatus (L. Pfeiffer, 1840) 8 m deep in Cenote Tzitzila, Dzonot Aké, Yucatán, Mexico (17) 27 m deep from Cenote Dzontila, Mucuyché, Yucatán, Mexico (18–19).
Figure 2 from: Grego J, Angyal D, Beltrán LAL (2019) First record of subterranean freshwater gastropods (Mollusca, Gastropoda, Cochliopidae) from the cenotes of Yucatán state. Subterranean Biology 29: 79-88. https://doi.org/10.3897/subtbiol.29.32779
Figure 2 Images of cenote Xoch, the type locality of Mexicenoticaxochii n. gen. sp. n. and Pyrgophorusthompsoni sp. n.
Figure 1 from: Grego J, Angyal D, Beltrán LAL (2019) First record of subterranean freshwater gastropods (Mollusca, Gastropoda, Cochliopidae) from the cenotes of Yucatán state. Subterranean Biology 29: 79-88. https://doi.org/10.3897/subtbiol.29.32779
Figure 1 Map of the cenote distribution in the Yucatán state, Mexico with studied localities. The type locality of Mexicenoticaxochii n. gen. sp. n. and Pyrgophorusthompsoni sp. n. in Cenote Xoch marked in red. Blue color indicates cenotes cited in this article as localities for Pyrgophoruscoronatus.
Figures 2-11 from: Czaja A, Cardoza-Martínez GF, Meza-Sánchez IG, Estrada-Rodríguez JL, Saenz-Mata J, Becerra-López JL, Romero-Méndez U, Estrada-Arellano JR, Garza-Martínez MA, Paulín JAD (2019) New genus, two new species and new records of subterranean freshwater snails (Caenogastropoda; Cochliopidae and Lithoglyphidae) from Coahuila and Durango, Northern Mexico. Subterranean Biology 29: 89-102. https://doi.org/10.3897/subtbiol.29.34123
Figures 2-11 Shells and opercula of Phreatomascogosgregoi gen. n. et sp. n. 2, 3 holotype, UJMC 400 4, 5 paratype 1, UJMC 401 6, 7 paratype 2, UJMC 401a, shell apex with protoconch 8 umbilicus almost completely covered by a basal keel, UJMC 401b 9 paratype 3, UJMC 401d, conical specimen 10, 11 opercula 11 operculum showing the strongly campanulate shape. Scale bars: 0.5 mm (2–5, 9–11); 0.3 mm (8).
Figures 12-23 from: Czaja A, Cardoza-Martínez GF, Meza-Sánchez IG, Estrada-Rodríguez JL, Saenz-Mata J, Becerra-López JL, Romero-Méndez U, Estrada-Arellano JR, Garza-Martínez MA, Paulín JAD (2019) New genus, two new species and new records of subterranean freshwater snails (Caenogastropoda; Cochliopidae and Lithoglyphidae) from Coahuila and Durango, Northern Mexico. Subterranean Biology 29: 89-102. https://doi.org/10.3897/subtbiol.29.34123
Figures 12-23 Shells of Balconorbissabinasense sp. n. and Coahuilixparrasense Czaja, Estrada-Rodríguez, Romero-Méndez, Ávila-Rodríguez, Meza-Sánchez & Covich, 2017. 12–14B.sabinasense n. sp., holotype, UJMC 410. 15–18 Paratype 1, UJMC 411. 19–21C.parrasense, UJMC 418, from Nazas River, Durango. 22, 23C.parrasense, fossil specimen from Parras de la Fuente, Coahuila, holotype, UJMC-320, from Czaja et al. 2017c, Fig. 4A, C. Scale bar: 0.5 mm (12–14, 19–23).
Figure 1 from: Czaja A, Cardoza-Martínez GF, Meza-Sánchez IG, Estrada-Rodríguez JL, Saenz-Mata J, Becerra-López JL, Romero-Méndez U, Estrada-Arellano JR, Garza-Martínez MA, Paulín JAD (2019) New genus, two new species and new records of subterranean freshwater snails (Caenogastropoda; Cochliopidae and Lithoglyphidae) from Coahuila and Durango, Northern Mexico. Subterranean Biology 29: 89-102. https://doi.org/10.3897/subtbiol.29.34123
Figure 1 Map of the study area with localization of the sampling sites along the Álamos and Sabinas River in Coahuila and Nazas River in Durango. Sampling sites as in Table 1.
Supplementary material 3 from: Gladstone NS, Niemiller ML, Pieper EB, Dooley KE, McKinney ML (2019) Morphometrics and phylogeography of the cave-obligate land snail Helicodiscus barri (Gastropoda, Stylommatophora, Helicodiscidae). Subterranean Biology 30: 1-32. https://doi.org/10.3897/subtbiol.30.35321
: Data type: multimedia
Supplementary material 2 from: Gladstone NS, Niemiller ML, Pieper EB, Dooley KE, McKinney ML (2019) Morphometrics and phylogeography of the cave-obligate land snail Helicodiscus barri (Gastropoda, Stylommatophora, Helicodiscidae). Subterranean Biology 30: 1-32. https://doi.org/10.3897/subtbiol.30.35321
: Data type: multimedia
Supplementary material 1 from: Gladstone NS, Niemiller ML, Pieper EB, Dooley KE, McKinney ML (2019) Morphometrics and phylogeography of the cave-obligate land snail Helicodiscus barri (Gastropoda, Stylommatophora, Helicodiscidae). Subterranean Biology 30: 1-32. https://doi.org/10.3897/subtbiol.30.35321
: Data type: list
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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.