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Fig. 1 in Reproductive cycle of the Neotropical cichlid yellow peacock bass Cichla kelberi: A novel pattern of testicular development

Fig. 1. Testicular structure of C. kelberi in transversal section. (a) Testis draft highlighting the different regions. (b) A lobule representation, highlighting the cystic type spermatogenesis and the unrestricted distribution of spermatogonia. (c) Testis ventral region, showing the main testicular duct (dt), anastomosing region (ar) and the beginning of the lobular region (L). Reticulin reaction. (d) Testis dorsal region, highlighting the blind end (double arrow) of the testicular lobules, which are formed by the connective tissue septa sent by tunica albuginea (ta). Reticulin reaction. c - spermatogonial clusters; I - interstice; S - Sertoli cell; Sc - spermatocyte; Sg - spermatogonia; St - spermatid.

opencc-by-4.0Sep 2013View details →
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Fig. 3 in Reproductive cycle of the Neotropical cichlid yellow peacock bass Cichla kelberi: A novel pattern of testicular development

Fig. 3. Structure of the germinal epithelium in C. kelberi. (a and b) germinal epithelium highlighting the spermatogenic cysts in distinct layers. H.E. stain. (c) Outline highlighting the maintenance of a continuous germinal epithelium after the higher layers cysts break. Sc1 - primary spermatocyte; St - spermatid; Sz - spermatozoa.

opencc-by-4.0Sep 2013View details →
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Fig. 4 in Reproductive cycle of the Neotropical cichlid yellow peacock bass Cichla kelberi: A novel pattern of testicular development

Fig. 4. Testicular morphological characteristics of the initial phases of C. kelberi gonadal development. (a) and (b) Immature phase: germinal epithelium showing a reduced number of primary spermatogonia (Sg1). (c) and (d) Preparatory phase: presence of lots of primary spermatogonia and cysts of secondary spermatogonia (Sg2). Mitotic figures are also observed in this phase, highlighting the spermatogonial proliferation (arrow).

opencc-by-4.0Sep 2013View details →
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FIGURE 1. A in A novel distance that reduces information loss in continuous characters with few observations

FIGURE 1. A. An interval and its components; B. Possible relationships between two intervals and A, B, and C in the Character X's space; C. DBI's behavior according to the possible relationships between the intervals of any two objects. For this, a mobile test interval of range X with its upper limit placed at Y was discreetly displaced by D units W times. For each of these W steps the DBI between the test interval and a fixed interval of range F with its lower limit placed at H were computed. The Left section shows the DBI for non-overlapped intervals; the Central section shows the DBI for partially overlapped intervals; and the Right section shows the DBI for fully overlapped intervals. Dashed lines show the results between intervals with different relative ranges (i.e., interval sizes). The asterisks show the paired distances between A, B, and C using DBI.

opencc-by-4.0Dec 2022View details →
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FIGURE 13 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 13. Strict consensus of 23 MPTs demonstrating the relative position of TATE-099 using the matrix of Whitlock and Wilson (2020).

opencc-by-4.0Dec 2022View details →
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FIGURE 7 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 7. Left (A) and right (B) ectopterygoid right and left lateral views (C, D). Scale bar equals 10 cm. Artwork by Ryan Steiskal.

opencc-by-4.0Dec 2022View details →
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FIGURE 11 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 11. Computed tomography of the right dentary is displayed in coronal (left) and sagittal (right cross section, illustrating the presence of 1-2 unerupted teeth per alveolar position. The unerupted teeth were segmented for 3D rapid prototyping (lower left).

opencc-by-4.0Dec 2022View details →
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FIGURE 2 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 2. Left (A, B) and right (C, D) premaxillae in dorsal ventral views, respectively. Scale bar equals 10 cm. Artwork by Ryan Steiskal.

opencc-by-4.0Dec 2022View details →
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FIGURE 1. A in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 1. A. Depositional area of the Upper Jurassic Morrison Formation, and location of the Nail Quarry in south- eastern Wyoming, and B. the stratigraphic location of Nail Quarry in the Morrison Formation.

opencc-by-4.0Dec 2022View details →
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FIGURE 10 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 10. Computed tomography of the right and left maxillae (A-B, respectively) are displayed in coronal (upper) and sagittal (lower) cross sections; the left premaxilla (C) is shown in sagittal (left) and coronal (right) cross sections. The unerupted teeth (ii=first unerupted tooth) of the maxilla (D; left) and premaxilla (D; right) were segmented for 3D rapid prototyping. Note: proceeding caudally, the number of unerupted teeth in the maxilla declines from 5 (ii-vi) to 2 (ii-iii).

opencc-by-4.0Dec 2022View details →
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FIGURE 9 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 9. Right dentarty and surangular in A) left lateral view, and B) right lateral view. Scale bar equals 10 cm. Artwork by Ryan Steiskal.

opencc-by-4.0Dec 2022View details →
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FIGURE 12 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 12. Strict consensus of 47 MPTs demonstrating the relative position of TATE-099 using the matrix of Tschopp and others (2015).

opencc-by-4.0Dec 2022View details →
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FIGURE 5 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 5. Left pterygoid (i, iv), quadrate (ii, v), and quadratojugal (iii, vi) in A) dorsal and B) ventral views. Scale bar equals 10 cm. Artwork by Ryan Steiskal. Abb: pt, pterygoid; q, quadrate; qj, quadratojugal.

opencc-by-4.0Dec 2022View details →
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FIGURE 3 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 3. Right maxilla in (A) dorsal and (B) ventral views with the left ectopterygoid (i) and left palatine (ii) adhered to the ventral surface. Scale bar equals 10 cm. Artwork by Ryan Steiskal. Abb: aof, antorbital fenestra; paof, preantorbital fenestra.

opencc-by-4.0Dec 2022View details →
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FIGURE 8. Reconstructed cast and 3D in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 8. Reconstructed cast and 3D model of the braincase of TATE-099 in dorsal view (A, B), ventral view (C, D), posterior view (E, F), right lateral view (G, H), and left lateral view (I, J). Scale bar equals 10 cm. Abb: bo, basoccipital; bpr, basipterygoid process; bs, basisphenoid; bt, basal tuber; cpr, crista prootica; eo, exoccipital-opithsotic; f, frontal; fm, foramen magnum; p, parietal; pas, parasphenoid; pft, posttemporal fenestra; po, postorbital; popr, paroccipital process; so, supraoccipital; snc, sagittal nuchal crest; stf, supratemporal fenestra.

opencc-by-4.0Dec 2022View details →
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FIGURE 14. 3D in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 14. 3D model of a cast of the erupted tooth row of TATE-099 in (A) labial and (B) lingual views with crown heights (C) and comparative measurements of the unerupted replacement teeth (D). Scale bar equals 5 cm.

opencc-by-4.0Dec 2022View details →
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FIGURE 6 in A novel feeding mechanism of diplodocid sauropods revealed in an Apatosaurine skull from the Upper Jurassic Nail Quarry (Morrison Formation) at Como Bluff, Wyoming, USA

FIGURE 6. Reconstruction of the skull of TATE-099 in A) left lateral view, B) right lateral view, C) dorsal view, and D) ventral view. Scale bar equals 10 cm. Artwork by Ryan Steiskal.

opencc-by-4.0Dec 2022View details →
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FIGURE S1 in The challenge of hard-to-reach spaces in mechanical fossil preparation: Development of the Wada air scribe, a novel short-bodied air scribe with an adjustable handle

FIGURE S1. The prototype of the Wada air scribe. The short air scribe and the cylinder were welded together, at an L-shaped configuration. The impact angle remained fixed at 90 degrees and could not be adjusted.

opencc-by-4.0Jul 2024View details →
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FIGURE S4. The production flow for a in The challenge of hard-to-reach spaces in mechanical fossil preparation: Development of the Wada air scribe, a novel short-bodied air scribe with an adjustable handle

FIGURE S4. The production flow for a bushing. Schematic diagrams in lateral (upper row) and front (middle row) views and cross-sections (lower row) are shown.

opencc-by-4.0Jul 2024View details →
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FIGURE 11 in The challenge of hard-to-reach spaces in mechanical fossil preparation: Development of the Wada air scribe, a novel short-bodied air scribe with an adjustable handle

FIGURE 11. Usage example of the Wada air scribe. A, fossil preparation inside of the deep cavity; B, preparation under a microscope using the Wada air scribe.

opencc-by-4.0Jul 2024View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record