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403 results for “morphological characteristics”
Fig. 4 in Short Communication Range extension and some morphological characteristics of Ptychoglossus brevifrontalis, Boulenger, 1912 (Squamata: Alopoglossidae) in Suriname
Fig. 4. Habitat where Ptychoglossus brevifrontalis was collected at the BNP. Picture by A. Gangadin.
Fig. 2 in Morphological and molecular characteristics of seven Sarcocystis species from sika deer (Cervus nippon centralis) in Japan, including three new species
Fig. 2. Light microscopic appearance of sarcocysts isolated from sika deer from Gifu Prefecture, Central Japan. a-d Thumb-like (a, b) and elongated finger-like (c, d) protrusions (P) of S. japonica. e, f Finger-like protrusions in S. cf. tarandi (e) and S. matsuoae (f). g, h Hair-like protrusions in S. pilosa (g) and S. gjerdei (h). i Indistinct protrusions on cyst S. cf. taeniata. j, k Oval sarcocyst of S. ovalis (j); cyst surrounded by fibrous layer (FL), making the slanting tongue-like protrusions (arrow) nearly invisible (k).
Fig. 1 in Morphological and molecular characteristics of seven Sarcocystis species from sika deer (Cervus nippon centralis) in Japan, including three new species
Fig. 1. Phylogenetic tree based on 322 partial sequences of cox1 of 61 taxa, including the seven Sarcocystis species (types 1–7) from this study and inferred using the neighbour-joining method and with evolutionary distances computed using the p-distance method. Bootstrap support (1000 replicates) is shown at each node. Subtrees formed by two or more haplotypes of the same species have been collapsed. The number of haplotypes included is given in parentheses. The number of sequences of each Sarcocystis species used in this analysis and their GenBank accession numbers are shown in Table S3.
Figure 4 in Karyological and some morphological characteristics of the Egyptian mongoose, Herpestes ichneumon (Mammalia: Carnivora), along with current distribution range in Turkey
Figure 4. Skull morphology of H. ichneumon from Hatay: A) dorsal, B) ventral, C) lateral view of the skull; D) mandible (lingual), E) mandible (labial) view.
Figure 1 in Karyological and some morphological characteristics of the Egyptian mongoose, Herpestes ichneumon (Mammalia: Carnivora), along with current distribution range in Turkey
Figure 1. Distribution of Herpestes ichneumon in Turkey. ▲: Selçuk (Danford and Alston, 1877); ◇◆: Bahçe (Gülen, 1971); ★: current distribution recorded during this study. 1) Göksu Delta; 2) Tarsus, near the Mersin–Adana highway; 3) 1 km west of Tabaklar village; 4) 7 km northeast of Kefeli village; 5) 2 km west of Gölyaka village; 6) 3 km south of Adana; 7) 3 km southeast of Adana; 8) 1 km southeast of Menekşe village; 9) 3 km south of Deveciuşağı village (sample no. 2429); 10) near Sakarcalı village; 11) near Yeniköy village; 12) 1 km east of Cevdetiye village; 13) 2 km north of Ahrazlar village; 14) 1 km east of Hasanlı village (sample no. 19); 15) 1 km west of Kapısuyu village; and 16) 1 km south of Emirler village (Karaisalı).
Figure. General head scalation pattern for Elaphe sauromates (cs – anterior chin shields; cs' – posterior chin shields; f – frontal; g – gulars; in – internasal; l – loreal; la – upper labials; la' – lower labials; m – mental; p – parietals; pf – prefrontal; prn – prenasal; ptn – postnasal; pto – postocular; pro – preocular; r – rostral; so – supraocular; sbo – subocular; t – temporals; v – ventral shields). in Morphological characteristics of the elusive blotched snake (Elaphe sauromates) at its northwestern range limit (Romania)
Figure. General head scalation pattern for Elaphe sauromates (cs – anterior chin shields; cs' – posterior chin shields; f – frontal; g – gulars; in – internasal; l – loreal; la – upper labials; la' – lower labials; m – mental; p – parietals; pf – prefrontal; prn – prenasal; ptn – postnasal; pto – postocular; pro – preocular; r – rostral; so – supraocular; sbo – subocular; t – temporals; v – ventral shields).
Fig. 3 in Morphological and ontogenetic characteristics of Miridex putorii (Acariformes: Demodecidae), a new genus and species of skin mite specific to the European polecat Mustela putorius
Fig. 3. Miridex putorii gen. nov., sp. nov. A, female, ventral view; B, male, ventral view; C, pharate male, deutonymph with visible male inside, a. anterior end of male gnathosoma, b. posterior end of male opisthosoma; D, pharate female, deutonymph with visible female inside, c. anterior end of female gnathosoma; d. posterior end of female opisthosoma.
Fig. 2 in Morphological and ontogenetic characteristics of Miridex putorii (Acariformes: Demodecidae), a new genus and species of skin mite specific to the European polecat Mustela putorius
Fig. 2. Miridex putorii gen. nov., sp. nov., egg and immature stages. A, egg; B, larva, ventral view, a. vimineous seta, b. leg with claws, c. ventral scutum; C, protonymph, ventral view; D, deutonymph, ventral view; E, F, G, claw, various views; H, supracoxal spine of deutonymph, arrow indicate the orientation of left spine as viewed on the gnathosoma.
Fig. 1 in Morphological and ontogenetic characteristics of Miridex putorii (Acariformes: Demodecidae), a new genus and species of skin mite specific to the European polecat Mustela putorius
Fig. 1. Miridex putorii gen. nov., sp. nov. A, male, ventral view; B, male, dorsal view, a. aedeagus; C, female, ventral view, b. vulva; D, female, dorsal view; E, gnathosoma, male, dorsal view, c. seta dG, d. seta dF, e. supracoxal spine (seta elc.p), f. genital opening, g. anterior end of aedeagus, h. membrane capitulum; F, gnathosoma, male, dorsal view, i. everted anterior part of aedeagus; G, gnathosoma, male, ventral view, j. spines on palps, k. seta v"F, l. pharyngeal bulb, m. subgnathosomal seta (seta n); H, claw on the leg.
Fig. 1 in Baseline study of the morphological and genetic characteristics of Haemoproteus parasites in wild pigeons (Columba livia) from paddy fields in Thailand
Fig. 1. Haemoproteus columbae from the blood of wild pigeons (Columba livia); cytochrome b lineage HAECOL1 (a–d), COLIV03 (e–f) and COQUI05 (i–l); macrogametocytes (a–b; e–f; i–j) and microgametocytes (c–d; g–h; k–l); simple arrows: nuclei of erythrocytes; short triangle-head arrows: volutin granules; long trianglehead arrows: pigment granules; scale bar = 10 μm.
Fig. 2 in Baseline study of the morphological and genetic characteristics of Haemoproteus parasites in wild pigeons (Columba livia) from paddy fields in Thailand
Fig. 2. Haplotype network of partial cyt b sequence (479 bp) of Haemoproteus columbae from wild pigeons (Columba livia); (A) the three common haplotypes (HAECOL1, COLIV03 and COQUI05) found in this study and proportions between study sites; (B) proportions of each haplotype reported worldwide and in the two study sites; Nakhon Sawan (purple), Phitsanulok (pink), and previous reports (gray); number of sequences shown in a pie chart of the network, without number inside indicates one sequence. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 5 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 5. External view of 23 species examined of Loxoconcha: A — L. shanhaiensis (Ơ, LV); B — Loxoconcha japonica (Ơ, RV); C — Loxoconcha sp. 9 (LV); D — Loxoconcha sp. 10 (LV); E — Loxoconcha sp. 8 (LV); F — Loxoconcha sp. 1 (♀, RV); G — Loxoconcha sp. 30 (LV); H — L. mutsuensis (Ơ, LV); I — Loxoconcha sp. 13 (LV); J — L. tosaensis (LV); K — L. harimensis (LV); L — L. damensis (Ơ, LV); M — L. pulchra (LV); N — L. uranouchiensis (Ơ, LV); O — L. noharai (Ơ, LV); P — L. santosi (Ơ, LV); Q — Loxoconcha sp. 5 (LV); R — Loxoconcha sp. 4 (RV); S — Loxoconcha sp. 26 (♀, RV); T — L. kosugii (Ơ, LV); U — L. sesokoensis (Ơ, RV); V — L. yoshidai (Ơ, RV); W — Loxoconcha sp. 3 (Ơ, LV). Scale 200 µm. Abbreviations: LV, left valve; RV, right valve.
Fig. 3 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 3. Study sites in Japan. Details of occurrence are shown in Appendix 1. Star shapes (Sampling and using ready specimens), solid circles (Only using ready specimens).
Fig. 2 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 2. Loxoconcha elliptica (adult Ơ), seen from the left side with left valve removed, to show the general arrangement of the appendages (only one of each pair of appendages shown for clarity) (Athersuch et al., 1989).
Fig. 6 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 6. External view of 18 species examined of Xestoleberis: A — Xestoleberis hanaii (Ơ, LV); B — Xestoleberi sp. 1 (Ơ, LV); C — Xestoleberi sp. 2 (♀, LV); D — Xestoleberi sp. 5 (♀, LV); E — Xestoleberi sp. 6 (Ơ, RV); F — Xestoleberis sp. 7 (Ơ, LV); G — X. vietnamensis (Ơ, LV); H — X. munensis (Ơ, LV); I — X. magutiensis (♀, LV); J — X. kamiya (Ơ, RV); K — X. ikeya (LV); L — X. planuventer (♀, LV); M — X. ryukyuensis (♀, LV); N — X. sesokoensis (Ơ, LV); O — X. setouchiensis (♀, RV); P — X. kuroshio (Ơ, LV); Q — X. magnoculus (♀, LV); R — X. notoensis (♀, LV). Scale 200 µm. Abbreviations: LV, left valve; RV, right valve.
Fig. 1 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 1. Sketching of male right valve in internal lateral view of carapace of Loxoconcha damensis (adult Ơ) indicating the adductor scars, mandibular scars and frontal scar. Scale 200 µm.
Fig. 10 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 10. Adult mandible in 17 species of the genus Xestoleberis: A — X. hanaii (Ơ); B — Xestoleberis sp. 1 (♀); C — Xestoleberis sp. 6 (Ơ); D — Xestoleberis sp. 7 (Ơ); E — X. magutiensis (♀); F — X. kamiya (Ơ); G — X. vietnamensis (Ơ); H — X. ikeya (Ơ); I — X. planuventer (Ơ); J — X. ryukyuensis (Ơ); K — X. sesokoensis (Ơ); L — X. setouchiensis (Ơ); M — X. Kuroshio (Ơ); N — X. magnoculus (Ơ); O — X. notoensis (Ơ); P — X. sagamiensis (Ơ); Q — X. munensis (Ơ). Note: E, F, after Hirosaki (2013); L, after Okubo (1979); O, P, after Sato & Kamiya (2007). Scale 100 µm.
Fig. 7 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 7. Muscle scars of 23 species of the genus Loxoconcha: A — L. shanhaiensis (Ơ, LV); B — Loxoconcha sp. 1 (♀, LV); C — L. japonica (Ơ, LV); D — Loxoconcha sp. 9 (LV); E — Loxoconcha sp. 10 (LV); F — Loxoconcha sp. 30 (RV); G — L. mutsuensis (Ơ, RV); H — L. modesta (Ơ, RV); I — L. tosaensis (Ơ, RV); J — L. harimensis (♀, LV); K — Loxoconcha sp. 8 (♀, LV); L — L. damensis (Ơ, LV); M — L. pulchra (Ơ, LV); N — L. kosugii (Ơ, LV); O — L. uranouchiensis (Ơ, LV); P — L. noharai (Ơ, RV); Q — L. santosi (♀, RV); R — Loxoconcha sp. 5 (♀, RV); S — Loxoconcha sp. 4 (LV); T — Loxoconcha sp. 26 (Ơ, LV); U — L. sesokoensis (Ơ, RV); V — L. yoshidai (Ơ, LV); W — Loxoconcha sp. 3 (Ơ, LV). Scale 100 µm. Abbreviations: LV, left valve; RV, right valve.
Fig. 4 in Added Morphological Characteristics Of Muscle Scars, Maxillula And Mandible Of Two Ostracod Genera Loxoconcha (Loxoconchidae) And Xestoleberis (Xestoleberididae)
Fig. 4. Map of Vietnam showing four surveyed areas with solid circles, Phu Quoc Island, Nha Trang Bay, Ha Long Bay and Cat Ba Island.
Figure 4 in Morphological and Molecular Characteristics of Kudoa viseuensis n. sp. (Myxosporea: Multivalvulida), Found in the Muscle of Batrachoides surinamensis (Teleostei: Batrachoididae) in the Brazilian Amazon Region
Figure 4. Phylogenetic tree derived from Bayesian Inference (BI), based on the partial sequences of the SSU rDNA gene of Kudoa vi- seuensis n. sp. and closely-related myxosporans. The GenBank access numbers are shown next to the species names, and the numbers at each node are the BI posterior probabilities. The new species is highlighted in bold type. Abbreviations: Msl – muscle; Dtr – digestive tract; Nsy – nervous system.
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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.