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Figure 8. Tharsis elleri n in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 8. Tharsis elleri n. sp. (a) First dorsal pterygiophore of the holotype JME-SOS 08326. (b) First dorsal pterygiophore and associated bones of Ebertichthys ettlingensis (modified from Arratia, 2016). Abbreviations are as follows: 1std.pt, first dorsal pterygiophore; ANT, anterior direction; pr.dr, dorsal procurrent rays; sn, supraneurals.
Figure 9 in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 9. Caudal endoskeleton and tail in lateral view of the holotype JME-SOS 08326. (a) Photograph of the posterior part of the body of the specimen under UV light. (b) Drawing of the caudal skeleton. The white arrow points to the hypurapophysis; the two black arrows point to the dorsal processes of principal caudal fin rays. Abbreviations are as follows: d.scu, dorsal caudal scute; E1–3, epural 1–3; ebfu, epaxial basal fulcra; ffu, fringing fulcrum; H1–2, hypurals 1–2; hbfu?, hypaxial basal fulcra?; hsPU2, haemal spine of preural centrum 4; nsPU, neural spines of preural centrum 2; PH, parhypural; prp, procurrent ray; PU1, 4, preural centra 1, 4; "UD", "urodermal"; UN1–4, uroneurals 1–4; PR1–19, principal rays 1–19; v.csu, ventral caudal scute.
Figure 7. Tharsis elleri n in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 7. Tharsis elleri n. sp. (a) Section of the abdominal region of the vertebral column of the paratype JME-SOS 08367 illustrating the parapophyses (arrows) fused to their respective centrum. Scale bar equals 5 mm. (b) Abdominal vertebrae of Tharsis dubius (JME-SOS 02633) illustrating the autogenous condition of the parapophysis. Abbreviations are as follows: epin.p, epineural process; na, neural arch; ns, neural spine; paph, parapophysis; ri, rib; vc, vertebral centrum.
Figure 6. Tharsis elleri n in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 6. Tharsis elleri n. sp. Details of the middle body region and of certain vertebrae. (a) Limit between abdominal and caudal regions in the holotype JME-SOS 08326 under UV light, dorsal and pelvic fins, and intestine. Scale bar is 5 mm. (b) Line drawing of vertebral region illustrated in (a). The arrows in (a) and (b) mark the same rib. (c) Line drawing of similar vertebral region in the paratype (JME-SOS 08367). Abbreviations are as follows: 1st.dpt, first dorsal pterygiophore; a.pt, remains of anal pterygiophore; d.f, dorsal fin; epin.p, epineural process; ha, haemal arch; hs, haemal spine; na, neural arch; ns, neural spine; paph, parapophyses; pel.f, pelvic fin; pel.p, pelvic plate; ri, rib; vc, vertebral centra.
Figure 5. Tharsis elleri n in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 5. Tharsis elleri n. sp. Drawing of the partially preserved sclerotic bones in the paratype JME-SOS 08367. An arrow points to the ventral contact between anterior and posterior sclerotic bones.
Figure 2. Tharsis elleri n in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 2. Tharsis elleri n. sp. in lateral view. (a) Holotype JME-SOS 08326 under normal light. (b) Holotype JM-SOS 08326 under UV light. (c) Paratype JME-SOS 08367 under normal light. (d) Paratype JME-SOS 08367 under UV light. Scale bars equal 1 cm.
Figure 3 in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 3. Photographs of the head of Tharsis elleri n. sp. under UV light. (a) Holotype (JME-SOS 08326). (b) Paratype (JME-SOS 08367). Scale bars equal 1 cm. Abbreviations are as follows: ang, angular; asp, autosphenotic; br.r, branchiostegal ray; cl, cleithrum; cor, coracoid; de, dentary; exc, extrascapula; hy, hyomandibula; io1–4, infraorbitals 1–4; iop, interopercle; lat.e, lateral ethmoid; met, mesethmoid; mtg?, metapterygoid; mx, maxilla; op, opercle; pa (fr), parietal bone (frontal); par, parasphenoid; p.f, pectoral fin; p. ax?, pectoral axillary process?; pop, preopercle; ppa (pa), postparietal bone (parietal); pmx, premaxilla; p.ra, pectoral radial; pt, pterotic; ptt, posttemporal; ptt.f, posttemporal fossa; qu, quadrate; ri, rib; scl, supracleithrum; scl.b, sclerotic bones; smx1–2, supramaxillae 1–2; sob, supraorbital bone; soc, supraoccipital; sop, subopercle; sy, symplectic, vc, vertebral centrum.
Figure 1 in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 1. Distribution of plattenkalk basins and reef areas in the southern Franconian Jura during the early Tithonian (modified from Viohl, 1996 with the addition of new localities). The new fish described herein was recovered in the Wegscheid Quarry, near Schernfeld.
Figure 4. Tharsis elleri n in On a remarkable new species of Tharsis, a Late Jurassic teleostean fish from southern Germany: its morphology and phylogenetic relationships
Figure 4. Tharsis elleri n. sp. Drawing of head bones in lateral view (JME-SOS 08326) based on specimen under normal light. Abbreviations are as follows: ang, angular; asp, autosphenotic; br.r, branchiostegal ray; cl, cleithrum; cor, coracoid; de, dentary; exc, extrascapula; iop, interopercle;, hy hyomandibula; io1–4, infraorbitals 1–4; met, mesethmoid; mx, maxilla; op, opercle; pa (fr), parietal (frontal); par, parasphenoid; pmx, premaxilla; pop, preopercle; pt, pterotic; qu, quadrate; ra, pectoral radial; scl, supracleithrum; scl.b, sclerotic bone; smx1–2, supramaxillae 1–2; sob, supraorbital; sop, subopercle;?, unidentified bone.
FIGURE 1 in New species of the Corumbataia cuestae group (Siluriformes: Loricariidae) from the Rio Tocantins basin, with comments on its phylogenetic relationships
FIGURE 1 | A. Maximum likelihood – ML (LogL = -3132.01) tree of Corumbataia species using TN93+G+I nucleotide substitution model and based on the analysis of partial sequence of cytochrome oxidase C subunit I (COI). Numbers at nodes are bootstrap values based on 1000 pseudoreplicates. Values below 50% are not shown. B. Majority rule consensus tree obtained in Bayesian analysis using GTR+I. Numbers below branches are posterior probabilities obtained from 10000 trees.
Figure 4 in A new species of Halisaurus from the Late Cretaceous phosphates of Morocco, and the phylogenetical relationships of the Halisaurinae (Squamata: Mosasauridae)
Figure 4. Halisaurus arambourgi sp. nov. A, MNHN PMC 15, referred specimen, disarticulated cranium, Late Cretaceous (Maastrichtian), Oulad Abdoun Basin, Morocco; B, OCP DEK/GE 100, referred specimen, incomplete disarticulated skeleton, Late Cretaceous (Maastrichtian), Oulad Abdoun Basin, Morocco. Scale bars = 10 cm.
Fig. 3 in Phylogenetic Relationships Among Callosciurus Squirrels In The Indochina Peninsula: Phylogenetic Position Of C. Pygerythrus From Myanmar
Fig. 3. Divergence time tree estimated by the RelTime method, based on the maximumlikelihood (ML) analysis under HKY + I + Γ model for the cytochrome b sequences. Divergence times among Callosciurus squirrels in millions of years before present are on branches. Divergence times with high support values are inside squares
Fig. 2 in Phylogenetic Relationships Among Callosciurus Squirrels In The Indochina Peninsula: Phylogenetic Position Of C. Pygerythrus From Myanmar
Fig. 2. Phylogeny of Callosciurus constructed with the maximum-likelihood (ML) under HKY + I + Γ model for cytochrome b sequences. From left, numbers above branches represent: bootstrap values from 1000 replicates of ML and un-weighted maximum parsimony (MP) analyses, bootstrap values from 5000 replicates of neighbor-joining (NJ) analysis and posterior probability supports in Bayesian analysis. Hyphens mean no data, because the clade was absent
Fig. 1 in Phylogenetic Relationships Among Callosciurus Squirrels In The Indochina Peninsula: Phylogenetic Position Of C. Pygerythrus From Myanmar
Fig. 1. Distribution of Callosciurus phayrei (dark gray area) and C. pygerythus (light gray area) in the Indochina Peninsula (KOPROWSKI et al. 2016) and collecting sites of squirrels examined in the present study. Open and closed circles indicate C. phayrei and C. pygerythus, respectively
Figure 4 in Phylogenetic relationships among Acestrorhynchus species (Ostariophysi: Characiformes: Acestrorhynchidae)
Figure 4. Anterior region of neurocranium of Acestrorhynchus nasutus, MZUSP 47698, 69.4-mm standard length; left side, anterior to left. Arrow points to process of vomer that articulates with palatine.
Figure 6 in Phylogenetic relationships among Acestrorhynchus species (Ostariophysi: Characiformes: Acestrorhynchidae)
Figure 6. Anterior portion of mesethmoid of (A) Acestrorhynchus nasutus, MZUSP 29270, 71.8-mm standard length (SL), and (B) Acestrorhynchus minimus, MZUSP 34988, 66.4-mm SL; dorsal view, anterior to left. Arrows point to posterior portion of lateral wing of the mesethmoid.
Figure 2 in Phylogenetic relationships among Acestrorhynchus species (Ostariophysi: Characiformes: Acestrorhynchidae)
Figure 2. Anterior region of neurocranium of Acestrorhynchus falcirostris, MZUSP 20592, 113.9-mm standard length; left side, anterior to left. Arrow points to process of vomer that articulates with palatine.
Figure 3 in Phylogenetic relationships among Acestrorhynchus species (Ostariophysi: Characiformes: Acestrorhynchidae)
Figure 3. Anterior region of neurocranium of Acestrorhynchus britskii, MZUSP 27892, 143.6-mm standard length; left side, anterior to left. Left arrow points to process of vomer that articulates with palatine. Right arrow points to dorsolateral process of vomer.
Figure 10 in Phylogenetic relationships among Acestrorhynchus species (Ostariophysi: Characiformes: Acestrorhynchidae)
Figure 10. Dorsal surface of neurocranium and associated bones, middle, and posterior sections of Acestrorhynchus falcatus, MZUSP 4572-91, 119.4-mm standard length; right side, anterior to left. Arrow points to portion of supraorbital laterosensory canal posterior to branching point of the parietal branch of the canal.
Figure 9 in Phylogenetic relationships among Acestrorhynchus species (Ostariophysi: Characiformes: Acestrorhynchidae)
Figure 9. Dorsal surface of neurocranium and associated bones, middle, and posterior sections of Acestrorhynchus microlepis, MZUSP 34957, 123.1-mm standard length; right side, anterior to left. Arrow points to lateral process of frontal.
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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.