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Рис. 1. Пункты сбора материаΛов в районе Ботчинского заповеΑника. Пункты сбора обозначены красными кружками, наибоΛее крупный из которых соответствует основному месту сбора — корΑону «ТепΛый КΛюч». Номера пунктов сбора соответствуют номерам в тексте при их описании. БΛизко распоΛоженные пункты сборов показаны оΑним симвоΛом Fig. 1. Points of collection of materials in the area of the Botchinsky Nature Reserve. Collection points are marked with red circles, the largest of which corresponds to the main collection point — the cordon "Teply Klyuch". The collection point numbers correspond to the numbers in the text when they are described. Closely located collection points are shown with one symbol in Fauna of the geometrid moths (Lepidoptera, Geometridae) of the eastern Sikhote-Alin in the area of the Botchinsky State Nature Reserve I: History of research and subfamilies Archiearinae, Ennominae, Desmobathrinae, and Geometrinae
Рис. 1. Пункты сбора материаΛов в районе Ботчинского заповеΑника. Пункты сбора обозначены красными кружками, наибоΛее крупный из которых соответствует основному месту сбора — корΑону «ТепΛый КΛюч». Номера пунктов сбора соответствуют номерам в тексте при их описании. БΛизко распоΛоженные пункты сборов показаны оΑним симвоΛом Fig. 1. Points of collection of materials in the area of the Botchinsky Nature Reserve. Collection points are marked with red circles, the largest of which corresponds to the main collection point — the cordon "Teply Klyuch". The collection point numbers correspond to the numbers in the text when they are described. Closely located collection points are shown with one symbol
Fig. 4 in Marked genetic diversity within Blastocystis in Australian wildlife revealed using a next generation sequencing-phylogenetic approach
Fig. 4. Relative abundance of Blastocystis subtypes (STs) in marsupial and deer species. Marsupials are represented by eastern grey kangaroos and wallabies; deer are represented by red, fallow and sambar deer. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Marked genetic diversity within Blastocystis in Australian wildlife revealed using a next generation sequencing-phylogenetic approach
Fig. 3. Phylogenetic analysis of SSU-rRNA sequence data (aligned over 2035 positions) to infer the relationships of recognised Blastocystis subtypes (STs) as well as new STs discovered in the present study. The tree was constructed using Bayesian Inference method (MrBayes) and used Proteromonas lacertae as an outgroup. Posterior probabilities less than 0.95% are not displayed. The two novel subtypes and additional ST13 and ST24 sequences are indicated in bold. After the present analysis was completed, Santín et al. (2023) reported a subdivision of "ST10" into four STs (i.e. ST10, ST42, ST43 and ST44).
Fig. 2 in Marked genetic diversity within Blastocystis in Australian wildlife revealed using a next generation sequencing-phylogenetic approach
Fig. 2. Diagram of the method used to obtain sequence for a SSU-rRNA gene region (~1750 bp) of Blastocystis. Two primer sets were used to obtain overlapping sequences for this region.
Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 4. Photographs of the left side of the tails of three recaptured snakes. (a) A juvenile male with 338 mm in SVL and the profile code 1212-12222- 122121-112222-112221, recorded on 15 March 2018, (b) The snake's recapture 159 days later, with 460 mm in SVL on 21 August 2018 and more cream flecks, and (c) the snake's additional recapture a further 373 days later, with 612 mm in SVL on 29 August 2019 and no additional increase in the number of flecks. (d) A juvenile male with 415 mm in SVL and the profile code 2221-1222-123222-123232-1222322, recorded on 22 August 2018. (e) The snake's recapture 58 days later with 437 mm in SVL on 19 October 2018 with enlarged flecks, and (f) another recapture a further 268 days later, with 551 mm in SVL on 14 July 2019 and no additional change in the flecks. (g) A semi-adult female with 499 mm in SVL and the profile code 21221-12221-222222-222232-23223322, recorded on 7 July 2017. (h) The snake's recapture 527 days later with 636 mm in SVL on 16 December 2018 and more flecks, and (i) another recapture a further 404 days later, with 691 mm in SVL on 24 January 2020 and no additional change in the flecks.
2 3 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
2 3 anterior ˱ posterior anterior ˱ posterior Fig. 3. The present coding system when there is an insertion of a scale row from the posterior to the anterior within a single cream band. a) When a large scale is followed by two small scales, the large scale is counted twice and the code for this example is "232232". b) When a new row is inserted between two rows, the inserted scale is judged as an independent row and the code for this example is "2221323".
Fig. 11 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 11. Ultrametric Bayesian phylogenetic tree of 22 species of the genus Stolephorus with evolution of the (modal) number of prepelvic scutes. Modal number of prepelvic scutes classified into three categories: six prepelvic scutes (black), five prepelvic scutes (grey), four prepelvic scutes (white). Character states at nodes estimated using likelihood optimization and a symmetric one-rate (''Mk1") model of evolution. At each node, relative probabilities of each diet category drawn using pie charts, with corresponding coding-colour. Pie charts at deepest nodes enlarged for clarity. Stolephorus specimens identified by museum registration number, specimen code or GenBank (GB) sequence accession number (see Table 1 for details). Outgroups Encrasicholina not shown. Branch lengths proportional to relative time (tree height scaled to 1). Posterior Probabilities shown at nodes when <1.
Fig. 10 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 10. Morphometric comparisons between Stolephorus dubiosus (open triangles) and S. taurus sp. nov. (closed circles). (a) for pectoral-fin length (P1L; as % of standard length; SL); (b) for pelvicfin length (P2L; as % of SL); (c) for second dorsal-fin ray length (2DRL; as % of SL); (d) for third dorsal-fin ray length (3DRL; as % of SL); (e) for second anal-fin ray length (2ARL; as % of SL); (f) for third anal-fin ray length (as % of SL); (g) for interorbital width (as % of head length; HL) to SL.
Fig. 8 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 8. Lateral (a), dorsal (b), and ventral (c) views of the holotype of Stolephorus taurus sp. nov., OCF-P 10434, 52.2 mm SL, estuary of Hooghly River, West Bengal, India.
Fig. 9 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 9. Stained scale removed from right side of midbody (just below dorsal fin) of paratype of Stolephorus taurus. KAUM–I. 157581, 53.2 mm SL, estuary of Hooghly River, West Bengal, India (left-right inverted). Grooves on scales forming a few separations.
Fig. 5 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 5. Left side of left hyoid arch of Stolephorus dubiosus (THNHM-F021239, 63.6 mm SL, cleared and stained). hypo lo, lower hypohyal; hypo up, upper hypohyal; chy, ceratohyal; gha, groove for hyoidean artery; eph, epihyal; inh, interhyal (broken); br, branchiostegal rays (seventh branchiostegal ray detached).
Fig. 7 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 7. Distributional records of Stolephorus dubiosus (circles) and S. taurus sp. nov. (triangles). Closed symbols, based on specimens examined in this study; open symbols, based on literature records or molecular evidence.
Fig. 2 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 2. (a) Lateral and (b) dorsal views of dorsal-fin origin of Stolephorus dubiosus, NSMT-P 127425, 55.7 mm SL, Songkhla Lake, Thailand (stained with Alizarine Red). Arrows indicate predorsal scute.
Fig. 4 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 4. Stained scale removed from right side of midbody (just below dorsal fin) of Stolephorus dubiosus. NSMT-P 127425, 49.9 mm SL, Songkhla Lake, Thailand (left-right inverted). Grooves on posterior part forming numerous separations.
Fig. 1 in Fig. 4 in Verification of Natural Marking for Individual Identification Using a Duplex Marking Approach in Ijima's Sea Snakes, (Reptilia: Elapidae).
Fig. 1. Stolephorus dubiosus: (a) Lateral view of holotype (BMNH 1969.4.22.1826, 70.0 mm SL, Thailand); (b) lateral view in fresh condition; (c) dorsal and (d) ventral views in preserved condition of non-type specimen (THMHM-F021237, 66.0 mm SL, Samut Sakhon Province, Thailand).
Sanderlings (Calidris alba) of two different age classes at the moment of individual colour-marking at four non-breeding sites that were or were not observed during migration following the capture.
<p>The data file contains data of Sanderlings (<em>Calidris alba</em>) of two different age classes at the moment of capture and individual colour-marking at one of four wintering areas that were or were not observed during migration following the capture. Each individual is indicated with a unique number in column “BirdID”. The column “country” indicates which of the four wintering areas (as depicted in Fig. 1 in the manuscript), with GB indicating England, PT indicating Portugal, MR indicating Mauritania and GH indicating Ghana. The “age” of each bird was either juvenile (<1 year old) or adult (>1 year old). Whether an individual was observed during migration, i.e. at least 2 latitudinal degrees north of its average winter location between 15 March – 15 October, in the migration period following capture is indicated with a 0 (not observed) or 1 (observed) in the column “observed”. Further details can be found in the methods section in the manuscript.</p>
Lythrangomi (Λυθράγκωμη), Famagusta District, Cyprus. Church of Panagia Kanakaria (Παναγία Κανακαριά), mosaic of St Mark.
<p>Lythrangomi (Λυθράγκωμη), Famagusta District, Cyprus. Church of Panagia Kanakaria (Παναγία Κανακαριά), mosaic of St Mark.</p>
Text-fig. 2. A – Elasmobranchii gen. et spec. indet. specimen NM Pc 02876b; B – Scopeloides glarisianus dentary NM Pc 02888 (the white arrows mark the tips of the "fang-like" teeth); C – S. glarisianus disarticulated skeleton NM Pc 02887a; D – Sardinella sardinites scale NM Pc 02886; E – Clupeidae gen. et spec. indet. articulated skeleton without head NM Pc 02889; F – Anenchelum glarisianum body fragment NM Pc 02880a; G – Percoidei gen. et sp. indet. preoperculum (G-1) and its interpretation (G-2) NM Pc 02891. The arrow shows the enlarged spine in the angle between rami verticalis and horizontalis. Abbreviations: cl – cleithrum; op – operculum; pcl – postcleithrum. in An Annotated List Of The Oligocene Fish Fauna From The Osíčko Locality (Menilitic Fm.; Moravia, The Czech Republic)
Text-fig. 2. A – Elasmobranchii gen. et spec. indet. specimen NM Pc 02876b; B – Scopeloides glarisianus dentary NM Pc 02888 (the white arrows mark the tips of the "fang-like" teeth); C – S. glarisianus disarticulated skeleton NM Pc 02887a; D – Sardinella sardinites scale NM Pc 02886; E – Clupeidae gen. et spec. indet. articulated skeleton without head NM Pc 02889; F – Anenchelum glarisianum body fragment NM Pc 02880a; G – Percoidei gen. et sp. indet. preoperculum (G-1) and its interpretation (G-2) NM Pc 02891. The arrow shows the enlarged spine in the angle between rami verticalis and horizontalis. Abbreviations: cl – cleithrum; op – operculum; pcl – postcleithrum.
Text-fig. 5. Original material of Peziza sulphurea (syntype L 910,261-594), the substrate and schema with location of six apothecia and two fragments of apothecia. Apothecia marked with numbers 1–3 were examined microscopically. in A Revision Of Trichopeziza Lizonii, T. Sulphurea And T. Violascens (Ascomycota, Helotiales) From The Herbarium Prm With Notes On Type Material Of Peziza Sulphurea
Text-fig. 5. Original material of Peziza sulphurea (syntype L 910,261-594), the substrate and schema with location of six apothecia and two fragments of apothecia. Apothecia marked with numbers 1–3 were examined microscopically.
Text-fig. 4. Hindlimb bones of Panthera fossilis (REICHENAU, 1906) from Za Hájovnou Cave (Moravia, the Czech Republic), Middle Pleistocene. a – left patella (Narozeninová chodba, layer 5,> MIS 9), anterior view; b – fragment of left fibula (Narozeninová chodba, layer 5,> MIS 9), anterior view; c – right calcaneus (Narozeninová chodba, layer 5,> MIS 9), dorsal view; d – right astragalus (Chodba naděje, layer 4, ≤ MIS 9), distal end view; e – left Mt IV (Narozeninová chodba, layer 5,> MIS 9), medial view; f – proximal phalanx of the first digit (Narozeninová chodba, layer 5,> MIS 9), dorsal view; g – proximal phalanx with gnaw marks (Narozeninová chodba, layer 5,> MIS 9), plantar view. in Panthera Fossilis (Reichenau, 1906) (Felidae, Carnivora) From Za Hájovnou Cave (Moravia, The Czech Republic): A Fossil Record From 1987-2007
Text-fig. 4. Hindlimb bones of Panthera fossilis (REICHENAU, 1906) from Za Hájovnou Cave (Moravia, the Czech Republic), Middle Pleistocene. a – left patella (Narozeninová chodba, layer 5,> MIS 9), anterior view; b – fragment of left fibula (Narozeninová chodba, layer 5,> MIS 9), anterior view; c – right calcaneus (Narozeninová chodba, layer 5,> MIS 9), dorsal view; d – right astragalus (Chodba naděje, layer 4, ≤ MIS 9), distal end view; e – left Mt IV (Narozeninová chodba, layer 5,> MIS 9), medial view; f – proximal phalanx of the first digit (Narozeninová chodba, layer 5,> MIS 9), dorsal view; g – proximal phalanx with gnaw marks (Narozeninová chodba, layer 5,> MIS 9), plantar view.
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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.