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7,959 results for “sp. n.”
Figure 3 in Cotyorica nemethi n. gen. n. sp., a remarkable Tertiary relict of the subfamily Phaedusinae (Gastropoda: Pulmonata: Clausiliidae) from northern Turkey
Figure 3. Occurrence of highly endemic Phaedusinae species along the northeastern Aegean and the Black Sea coast. Graecophaedusa sperrlei Rähle, 1982 (1); Nothoserrulina subterranea Németh & Szekeres, 1995 (2); Cotyorica nemethi n. sp. (3); Pontophaedusella ofensis Nordsieck, 1994 (4); Truncatophaedusa evae Majoros, Németh & Szili- Kovács, 1994 (5).
Figure 2 in Cotyorica nemethi n. gen. n. sp., a remarkable Tertiary relict of the subfamily Phaedusinae (Gastropoda: Pulmonata: Clausiliidae) from northern Turkey
Figure 2. Lamella positions in the aperture of Cotyorica nemethi n. sp. The lamellae superior (Lsu), inferior (Lin) and subcolumellaris (Lsc) are marked.
Figure 2 in Amerizus (Tiruka) gaoligongensis sp. n. (Coleoptera: Carabidae): an endogean adapted representative of the genus
Figure 2.Amerizus gaoligongensis sp. n., head and pronotum, holotype (a, maxilla; b, galea). Scale bar = 0.5 mm.
Figure 6 in Amerizus (Tiruka) gaoligongensis sp. n. (Coleoptera: Carabidae): an endogean adapted representative of the genus
Figure 6. Surrounding vegetation at the type locality ofAmerizus gaoligongensis sp. n. (photo by B. Petrov).
Figure 5 in Amerizus (Tiruka) gaoligongensis sp. n. (Coleoptera: Carabidae): an endogean adapted representative of the genus
Figure 5. Scheme of the chasm Wu Shi Shan 2, with photograph of the holotype of Amerizus gaoligongensis sp. n., at the depth of 33 m (photo by B. Petrov).
Figure 4 in Amerizus (Tiruka) gaoligongensis sp. n. (Coleoptera: Carabidae): an endogean adapted representative of the genus
Figure 4. Map of the region around village Kongshuhe and cave Wu Shi Shan, yellow pointer indicates the approximate position of the cave.
Figure 3 in Amerizus (Tiruka) gaoligongensis sp. n. (Coleoptera: Carabidae): an endogean adapted representative of the genus
Figure 3. Amerizus gaoligongensis sp. n., median lobe of aedeagus, left lateral view, holotype (a, drawing; b, photo). Scale bars = 0.5 mm.
Figures 1–8. Neobisium radjai n in Neobisium radjai n. sp. (Neobisiidae: Pseudoscorpiones), a new cave-dwelling pseudoscorpion from Bosnia and Herzegovina
Figures 1–8. Neobisium radjai n. sp., holotype female: 1 - carapace; 2 - genital area; 3 - chelicera; 4 - epistome; 5 - pedipalp; 6 - pedipalpal chela; 7 - leg IV; 8 - flagellum. Scales: 0.25 mm (2–4 and 8) and 0.50 mm (1 and 5–7).
Fig. 2. Enchodelus macrodorns. A in Description of Xiphinema karachiense sp. n. and morphometric data on Enchodelus macrodorus (de Man, 1880), Thorne, 1939 (Nematoda : Dorylaimida) from Pakistan
Fig. 2. Enchodelus macrodorns. A: Female, entire; B: Anterior body region; C Head end showing amphid; D: Female sexual system; E: Female tail; F: Expanded region of oesophagus.
Fig. 1. Xiphinema karachiense n in Description of Xiphinema karachiense sp. n. and morphometric data on Enchodelus macrodorus (de Man, 1880), Thorne, 1939 (Nematoda : Dorylaimida) from Pakistan
Fig. 1. Xiphinema karachiense n. sp. A: Oesophageal region; B: Anteriorbodyregion; C: Male, entire; D: Female, emire; E: Posterior branch of female reproductive system; F, G: Four spherical inclusionsofpseudo-Z-differemiation; H: Maletail; l: Posterior body region of male;].- M.: Tails of juveniles; N: Female tail.
Fig. 1 in Enchodelus repis sp. n. and comments on E. laevis Thorne, 1939 and E. microdoroides Baqri & Jairajpuri, 1974 (Nematoda : Dorylaimoidea) from Korea
Fig. 1. Enchodelus repis sp. n. female. - A: Entire body; B: Head; C: Head showing amphid; D: Oesophageal region; E: VulvaJ region; F: Tai!. (Smal /esl unit of scale bar = JO pm.)
Fig. 3. Enchodelus laevis Thorns, 1939. - A in Enchodelus repis sp. n. and comments on E. laevis Thorne, 1939 and E. microdoroides Baqri & Jairajpuri, 1974 (Nematoda : Dorylaimoidea) from Korea
Fig. 3. Enchodelus laevis Thorns, 1939. - A: Posterior part ofoesophagus; B: Head; C:Vagina; D: Female tail; E: Male tail. r5mallesl unie ofscalebar = 10 f.lm.)
Fig. 3 in Description of Tresuncinidactylus wilmienae gen. et sp. n. (Monogenea: Gyrodactylidae), from the gills of the bulldog, Marcusenius macrolepidotus (Peters) from Lake Kariba, Zimbabwe
Fig. 3. Phylogenetic tree inferred from Bayesian inference (BI) based on 18S rDNA sequences alignment of 1,434 bp. Nodal support values are given as BI/ML (maximum likelihood). Support values lower than 50 (ML) are not presented. Newly generated sequences are highlighted in bold.
Fig. 1 in Description of Tresuncinidactylus wilmienae gen. et sp. n. (Monogenea: Gyrodactylidae), from the gills of the bulldog, Marcusenius macrolepidotus (Peters) from Lake Kariba, Zimbabwe
Fig. 1. Line drawings of Tresuncinidactylus wilmienae gen. et sp. n. from Marcusenius macrolepidotus (Peters). A – hamuli; B – ventral bar; C – details of hamuli roots and dorsal bar; D – pharynx; E – marginal hooks; F – male copulatory organ.
Fig 4 in Description of Tresuncinidactylus wilmienae gen. et sp. n. (Monogenea: Gyrodactylidae), from the gills of the bulldog, Marcusenius macrolepidotus (Peters) from Lake Kariba, Zimbabwe
Fig 4. Line drawings of male copulatory organs of genara of Gyrodactylidae parasitizing African freshwater fishes. A – Afrogyrodactylus Paperna, 1968 (modified from Přikrylová and Luus-Powell 2014); B – Citharodactylus Přikrylová, Shinn et Paladini, 2017 (original drawing from Přikrylová et al. 2017a); C – Diplogyrodactylus Přikrylová, Matějusová, Musilová, Gelnar et Harris, 2009 (modified from Přikrylová et al. 2009); D – Gyrodactylus von Nordmann, 1832 (modified from Přikrylová et al. 2012); E – Macrogyrodactylus Malmberg, 1957 (modified from Řehulková et al. 2018); F – Mormyrogyrodactylus Luus-Powell, Mashego et Khalil, 2003 (modified from Vianna et al. 2007); G – Tresuncinidactylus gen. n. (present study).
Fig. 14. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A in Rhabdochona angusticaudata sp. n. (Nematoda: Rhabdochonidae) from the Japanese eel Anguilla japonica, and new records of some other nematodes from inland fishes in Japan
Fig. 14. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A – posterior end of male, ventral view; B – tail of male, subventral view (arrows indicate postanal papillae); C – precloacal region, subventral view (arrows indicate preanal papillae; note weakly-developed ventral precloacal ridges); D – posterior end of male, sublateral view (arrows indicate two posteriormost pairs of postanal papillae; note ventral precloacal ridges); E – broken female body with eggs; F – egg with filaments on both poles; G – egg with filaments only on one pole.
Fig. 11. Rhabdochona zacconis Yamaguti, 1935 in Rhabdochona angusticaudata sp. n. (Nematoda: Rhabdochonidae) from the Japanese eel Anguilla japonica, and new records of some other nematodes from inland fishes in Japan
Fig. 11. Rhabdochona zacconis Yamaguti, 1935 from Tribolodon hakonensis (Günther), scanning electron micrographs. A, B – cephalic end of male, subapical and apical views, respectively (arrows indicate sublabia); C – deirid; D – tail of male, lateral view (arrow indicates cloaca); E – eggs dissected out from uterus; F – eggs with polar filaments. Abbreviations: a – cephalic papilla; b – amphid.
Fig. 13. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A–C in Rhabdochona angusticaudata sp. n. (Nematoda: Rhabdochonidae) from the Japanese eel Anguilla japonica, and new records of some other nematodes from inland fishes in Japan
Fig. 13. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A–C – cephalic end of female, lateral, apical and dorsoventral views, respectively; D – region of female mouth (another specimen), sublateral view; E – tail of female, ventral view; F – deirid; G – distal end of left spicule, ventral view. Abbreviations: a – amphid; b – cephalic papilla c – phasmid; d – anus; l – labium; p – pseudolabium with anterior tooth-like projection; s – sublabium.
Fig. 10 in Rhabdochona angusticaudata sp. n. (Nematoda: Rhabdochonidae) from the Japanese eel Anguilla japonica, and new records of some other nematodes from inland fishes in Japan
Fig. 10. Rhabdochona angusticaudata sp. n. from Anguilla japonica Temminck et Schlegel, scanning electron micrographs. A, B – anterior end of female body, sublateral and dorsoventral views (arrow indicates deirid); C – tail of male, lateral view; D – region of male tail with last postanal papilla and phasmid, lateral view; E – tail of gravid female, ventral view; F – vulva of gravid female, ventral view. Abbreviations: e – cloacal aperture; h – caudal papilla of last postanal pair; i – phasmid; k – anus.
Fig. 7. Heliconema anguillae Yamaguti, 1935 in Rhabdochona angusticaudata sp. n. (Nematoda: Rhabdochonidae) from the Japanese eel Anguilla japonica, and new records of some other nematodes from inland fishes in Japan
Fig. 7. Heliconema anguillae Yamaguti, 1935 from Anguilla japonica Temminck et Schlegel, scanning electron micrographs. A, B – cephalic end, subapical views (arrow indicates amphid); C – tail of male, sublateral view; D – ventral precloacal ridges and first two pairs of preanal papillae, ventral view; E – tail of male, ventral view; F – tail tip of male, ventral view (arrows indicate phasmids). Abbreviations: a – cephalic papilla; b – submedian tooth; c – lateral tooth; d – pseudolabial lateroterminal depression; e – cloacal aperture; f – papillae of first two preanal pairs; g – small ventral postanal papilla.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.