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FIGURE 5 in Redescription of three species of Hysterothylacium (Nematoda: Anisakidae) from marine fishes from the Yellow Sea, China, with the synonymy of Hysterothylacium muraenesoxin (Luo, 1999)
FIGURE 5. Hysterothylacium tasmaniense (Johnston & Mawson, 1945). A, anterior part of body of male, lateral view; B, cephalic end of male, dorsal view; C, cephalic end of female, ventral view; D, posterior end of male, lateral view; E, caudal region of male, lateral view; F, posterior end of female, lateral view; Scale bars in mm.
FIGURE 4 in Redescription of three species of Hysterothylacium (Nematoda: Anisakidae) from marine fishes from the Yellow Sea, China, with the synonymy of Hysterothylacium muraenesoxin (Luo, 1999)
FIGURE 4. Scanning electron micrographs of Hysterothylacium fabri (Rudolphi, 1819). A, cephalic end of female, lateral view; B, cephalic extremity, lateral view; C, cephalic extremity, apical view; D, subventral lip; E, dorsal lip; F, posterior end of female, lateral view; G, tip of female tail; a, lateral alae; i, interlabium; d, double papillae; s, single papillae; am, amphid.
FIGURE 3 in Redescription of three species of Hysterothylacium (Nematoda: Anisakidae) from marine fishes from the Yellow Sea, China, with the synonymy of Hysterothylacium muraenesoxin (Luo, 1999)
FIGURE 3. Hysterothylacium fabri (Rudolphi, 1819). A, anterior part of female, lateral view; B, cephalic end of female, dorsal view; C, cephalic end of female, lateral view; D, cephalic end of female, ventral view; E, tip of female tail; Scale bars in mm.
FIGURE 1 in Redescription of three species of Hysterothylacium (Nematoda: Anisakidae) from marine fishes from the Yellow Sea, China, with the synonymy of Hysterothylacium muraenesoxin (Luo, 1999)
FIGURE 1. Hysterothylacium amoyense (Hsü, 1933). A, cephalic end of female, lateral view; B, cephalic end of female, dorsal view; C, posterior end of male, lateral view; D, anterior part of male, ventral view; E, posterior end of male, lateral view; F, posterior end of female, lateral view; Scale bars in mm.
FIGURE 2 in Redescription of three species of Hysterothylacium (Nematoda: Anisakidae) from marine fishes from the Yellow Sea, China, with the synonymy of Hysterothylacium muraenesoxin (Luo, 1999)
FIGURE 2. Scanning electron micrographs of Hysterothylacium amoyense (Hsü, 1933). A, B, cephalic extremity of male, apical view; C, cephalic extremity of male, lateral view; D, dorsal lip; E, subventral lip; F, posterior end of male; G, postcloacal papillae; H, tip of female tail; I, tip of male tail; J, paracloacal papillae (arrows); K, posterior end of female, lateral view; L, anterior end of male, lateral view; i, interlabium; d, double papillae; s, single papillae; pd, postcloacal double papillae.
FIGURE 1 in Rhabditid nematodes found from a rocky coast contaminated with treated wastewater of Casey Station in East Antarctica, with a description of a new species of Dolichorhabditis Andrássy, 1983 (Nematoda: Rhabditidae)
FIGURE 1. Location of the sampling site on a rocky coast facing Shannon Bay, Budd Coast of Wilkes Land, East Antarctica. Arrow: sampling site located just below the outfall of the pipeline extending from Casey Station; black rectangles, buildings.
FIGURE 2 in Rhabditid nematodes found from a rocky coast contaminated with treated wastewater of Casey Station in East Antarctica, with a description of a new species of Dolichorhabditis Andrássy, 1983 (Nematoda: Rhabditidae)
FIGURE 2. Dolichorhabditis tereticorpus sp. n. Female (holotype ZIHU 3317; left side view, except F in right side view): A) Entire body. B) Anterior region. C) Stoma region. D) Posterior region of pharynx. E) Reproductive system. F) Anterior region of anterior ovary. G) Vulval region. Lateral field indistinct, only three longitudinal lines observed. H) Posterior region. Scales: A: 100 µm; B: 20 µm; C, D, F–H: 10 µm; E: 50µm.
FIGURE 4 in Rhabditid nematodes found from a rocky coast contaminated with treated wastewater of Casey Station in East Antarctica, with a description of a new species of Dolichorhabditis Andrássy, 1983 (Nematoda: Rhabditidae)
FIGURE 4. Rhabditidae sp. 1. Female (A, B, ZIHU 3326; left side view): A) Anterior region, with internal fungal hyphae. B) Tail. Rhabditidae sp. 2. Female (C–F, ZIHU 3328; left side view): C) Entire body. D) Anterior region. E) Stoma. F) Anal region. Scales: A, B, D–F: 10 µm; C: 80 µm.
FIGURE 3 in Rhabditid nematodes found from a rocky coast contaminated with treated wastewater of Casey Station in East Antarctica, with a description of a new species of Dolichorhabditis Andrássy, 1983 (Nematoda: Rhabditidae)
FIGURE 3. Dolichorhabditis tereticorpus sp. n. Female (A–C, holotype ZIHU 3317; D, ZIHU 3320; left side view): A) Middle of pharynx. Arrow: junction of corpus and isthmus; nr, nerve ring. B) Anterior branch of reproductive system: ova, ovary; ovi, oviduct; s, spermatheca; u, uterus. C, D) Rectum: r, rectum; r gl, rectal gland cells. Scales: A, B: 20 µm; C, D: 10 µm.
FIGURE 3. Free males. A–E, Gyrinicola chabadamsoni n in Gyrinicola chabadamsoni n. sp. and G. t b a (Dinnik 1933) (Nematoda, Oxyuroidea) from tadpoles of the hybridogenetic complex Rana lessonae-esculenta (Amphibia, Ranoidea)
FIGURE 3. Free males. A–E, Gyrinicola chabadamsoni n. sp. A. Habitus left lateral view. B. Cephalic region. C. Tail ventral view. D. Posterior region right lateral view. A to D male V10MI. E. Posterior region of holotype, left lateral view (V17MIII). F–I, G. t b a male E12MI. F. Habitus right lateral view. G. Cephalic region. H. Genital cone's region right lateral view. I. Idem semi-ventral view. Scales in Μm A,F, 150, B,C,D,G,H,I, 20, E, 50.
FIGURE 2. Female genital apparatus and uterine contents. A–D, Gyrinicola chabadamsoni n in Gyrinicola chabadamsoni n. sp. and G. t b a (Dinnik 1933) (Nematoda, Oxyuroidea) from tadpoles of the hybridogenetic complex Rana lessonae-esculenta (Amphibia, Ranoidea)
FIGURE 2. Female genital apparatus and uterine contents. A–D, Gyrinicola chabadamsoni n. sp. A. Fourth stage larva left lateral view (V62FII). B. Same larva, female genital primordium sub-ventral view (V62FII). C. Long genital tract before production of thick-shelled eggs, right lateral view (V12FII). D. Same female, left lateral view, ovary and uterine pouch with four embryo and larvae, oviduct with particular enlarged section (V12FII). E–H, G. t b a. E. Fourth stage larva right lateral view (V20FI). F. Same larva, female genital primordium left lateral view (V20FI). G. Slender genital tract with aligned embryos some of them degenerate (V398FI). H. Part of the long genital tract: end of ovary, oviduct with particular enlarged section and pseudocoelomocytes nearby and first egg in uterus (V53FI). I,J, Gyrinicola chabadamsoni n. sp. Male larvae in utero I. Fourth larval stage (V11FII). J. Adult in exuvium left lateral view (V10FIII). Scales in Μm: A,C–E,G–I, 150, B,F, 20, J, 100.
FIGURE 1. Mature females. A–I, Gyrinicola chabadamsoni n in Gyrinicola chabadamsoni n. sp. and G. t b a (Dinnik 1933) (Nematoda, Oxyuroidea) from tadpoles of the hybridogenetic complex Rana lessonae-esculenta (Amphibia, Ranoidea)
FIGURE 1. Mature females. A–I, Gyrinicola chabadamsoni n. sp. A. Habitus left lateral view (anatomical genital parts shown: beginning of the thick ovary, thick-shelled eggs, embryos and males, V10FIII). B. C. D. Head in lateral, median and apical view, respectively (V10FII). E. Mouth surrounded with flaps showing the internal crests (V10FII). F. Base of the buccal cavity (V10FII). G. Tail ventral view (V10FIII). H. Thick-shelled egg two cells stage (V10FII). I. Detail of operculum in lateral view (V10FII). J–Q, G. t b a. J. Habitus left lateral view (anatomical genital parts shown: beginning of the thick ovary, thick-shelled eggs, V60FI). K. Head apical view (V402). L. Mouth and cuticular lips of another specimen (E6FII). M. Base of buccal cavity (V402). N. Head in lateral view (V402). P. Thick-shelled egg four cells stage (V16FII). Q. Detail of operculum in sub-median view (V16FII). Scales in Μm A,J, 200, B–F,K–N,I,Q, 20, G,O, 150, H,P, 50.
FIGURE 4 in Gyrinicola chabadamsoni n. sp. and G. t b a (Dinnik 1933) (Nematoda, Oxyuroidea) from tadpoles of the hybridogenetic complex Rana lessonae-esculenta (Amphibia, Ranoidea)
FIGURE 4. Distinct infection patterns in G. chabadamsoni n. sp. and G. t ba with two sampling dates, June and August. n: total number of nematodes recovered; %: prevalence; X: mean intensity. In June an equal number of RL and LL were dissected, in August four folds more RL than LL.
FIGURE 2 in Redescription of Cucullanus robustus (Nematoda: Cucullanidae) from the conger eel Conger myriaster off Korea
FIGURE 2. Scanning electron micrographs of Cucullanus robustus Yamaguti, 1935. A—cephalic end, lateral view; Bbuccal denticles; C—deirid; D—excretory pore; E, F — tail of male, subventral and ventral views, respectively; Gpostanal papilla; H—tail of female, lateral view. Abbreviations: a–c, third-fifth pairs of preanal papillae; d, unpaired median preanal papilla; e, adanal papilla; f–j, first-fifth pairs of postanal papillae; k, spicule; l, phasmid.
FIGURE 6 in A review of the genus Tripylina Brzeski, 1963 (Nematoda: Triplonchida), with descriptions of five new species from New Zealand
FIGURE 6. Tripylina yeatesi sp. nov. female. A: Entire body. B: Pharyngeal region, lateral. C: Genital region, lateral. D: Spinneret. Scale bars: A, B, C = 50 μm; D = 25 μm.
FIGURE 5 in A review of the genus Tripylina Brzeski, 1963 (Nematoda: Triplonchida), with descriptions of five new species from New Zealand
FIGURE 5. Tripylina tamaki sp. nov. female. A: Entire body. B: Pharyngeal region, lateral, showing a single cervical seta. C: Pharyngeal region, ventral, showing two pairs cervical setae. D: Genital region, lateral. E: Tail. F: Spinneret. Scale bars: A, B, C, D, E = 50 μm; F = 25 μm.
FIGURE 1. Bayesian tree inferred from SSU gene DNA sequences. Posterior probabilities exceeding 50 in A review of the genus Tripylina Brzeski, 1963 (Nematoda: Triplonchida), with descriptions of five new species from New Zealand
FIGURE 1. Bayesian tree inferred from SSU gene DNA sequences. Posterior probabilities exceeding 50% are given on appropriate clades. Nematode species, GenBank numbers, locations are listed for each taxon if known.
FIGURE 7 in A review of the genus Tripylina Brzeski, 1963 (Nematoda: Triplonchida), with descriptions of five new species from New Zealand
FIGURE 7. Tripylina kaikoura sp. nov. female. A: Entire body. B: Pharyngeal region, lateral. C: Genital region, lateral. D: Tail. E: Spinneret. Scale bars: A, B, C, D = 50 μm; E = 25 μm.
FIGURE 2. Bayesian tree inferred from LSU gene DNA sequences. Posterior probabilities exceeding 50 in A review of the genus Tripylina Brzeski, 1963 (Nematoda: Triplonchida), with descriptions of five new species from New Zealand
FIGURE 2. Bayesian tree inferred from LSU gene DNA sequences. Posterior probabilities exceeding 50% are given on appropriate clades. Nematode species, GenBank numbers, locations are listed for each taxon if known.
FIGURE 3 in A review of the genus Tripylina Brzeski, 1963 (Nematoda: Triplonchida), with descriptions of five new species from New Zealand
FIGURE 3.Tripylina tearoha sp. nov. female. A: Entire body. B: Pharyngeal region, lateral, showing the single cervical seta. C: Pharyngeal region, ventral, showing two pairs cervical setae. D: Genital region, lateral. E: Tail. F: Spinneret. Scale bars: A, B, C, D, E = 50 μm; F = 25 μm.
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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.