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50 results for “sensory organ”

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zenodo32/100

Figure 6 in Evolution of the brain and sensory organs in Sphenisciformes: new data from the stem penguin Paraptenodytes antarcticus

Figure 6. Virtual endocasts of A, Gavia immer (common loon); B, Phoebastria immutabilis (Laysan albatross); C, Paraptenodytes antarcticus (fossil stem penguin); D, Spheniscus humboldti (Humboldt penguin); E, Aptenodytes patagonicus (king penguin); and F, Pygoscelis antarctica (chinstrap penguin) in posterior aspect. Abbreviations: c, cerebrum; cb, cerebellum; cca, cranial carotid artery; eov, external occipital vein; fl, floccular lobe; mcv, middle cerebral vein; os, occipital sinus; se, sagittal eminence; II-XI, cranial nerves II-XI.

opennotspecifiedAug 2012View details →
zenodo32/100

Figure 5 in Evolution of the brain and sensory organs in Sphenisciformes: new data from the stem penguin Paraptenodytes antarcticus

Figure 5. Virtual endocasts of A, Gavia immer (common loon); B, Phoebastria immutabilis (Laysan albatross); C, Paraptenodytes antarcticus (fossil stem penguin); D, Spheniscus humboldti (Humboldt penguin); E, Aptenodytes patagonicus (king penguin); and F, Pygoscelis antarctica (chinstrap penguin) in ventral aspect. Abbreviations: c, cerebrum; cca, cranial carotid artery; fl, floccular lobe; ob, olfactory bulb; ol, optic lobe; pb, pituitary body; II-XI, cranial nerves II-XI.

opennotspecifiedAug 2012View details →
zenodo32/100

Figure 4 in Evolution of the brain and sensory organs in Sphenisciformes: new data from the stem penguin Paraptenodytes antarcticus

Figure 4. Virtual endocasts of A, Gavia immer (common loon); B, Phoebastria immutabilis (Laysan albatross); C, Paraptenodytes antarcticus (fossil stem penguin); D, Spheniscus humboldti (Humboldt penguin); E, Aptenodytes patagonicus (king penguin); and F, Pygoscelis antarctica (chinstrap penguin) in lateral aspect. Abbreviations: c, cerebrum; cb, cerebellum; cca, cranial carotid artery; fl, floccular lobe; mcv, middle cerebral vein; ob, olfactory bulb; ol, optic lobe; pb, pituitary body; se, sagittal eminence; II-XI, cranial nerves II-XI.

opennotspecifiedAug 2012View details →
zenodo32/100

Figure 2 in Evolution of the brain and sensory organs in Sphenisciformes: new data from the stem penguin Paraptenodytes antarcticus

Figure 2. Virtual endocasts of A, Gavia immer (common loon); B, Phoebastria immutabilis (Laysan albatross); C, Paraptenodytes antarcticus (fossil stem penguin); D, Spheniscus humboldti (Humboldt penguin); E, Aptenodytes patagonicus (king penguin); and F, Pygoscelis antarctica (chinstrap penguin) in rostral aspect. Olfactory bulbs are slightly truncated in E and F because of scan length. Abbreviations: c, cerebrum; cca, cranial carotid artery; mo, medulla oblongata; ob, olfactory bulb; ol, optic lobe; pb, pituitary body; se, sagittal eminence; II-XI, cranial nerves II-XI.

opennotspecifiedAug 2012View details →
zenodo32/100

Figure 1. A in Evolution of the brain and sensory organs in Sphenisciformes: new data from the stem penguin Paraptenodytes antarcticus

Figure 1. A, simplified phylogeny of penguins after Ksepka et al. (2006) showing relationships of outgroup taxa, the stem penguin Paraptenodytes antarcticus, and crown clade (Spheniscidae) penguins studied here. B, the fossil skull of Pa. antarcticus (AMNH 3338) reconstructed and rendered from computed tomography scan data. Abbreviation: r, metal rod inserted to display specimen.

opennotspecifiedAug 2012View details →
zenodo32/100

Figure 3 in Evolution of the brain and sensory organs in Sphenisciformes: new data from the stem penguin Paraptenodytes antarcticus

Figure 3. Virtual endocasts of A, Gavia immer (common loon); B, Phoebastria immutabilis (Laysan albatross); C, Paraptenodytes antarcticus (fossil stem penguin); D, Spheniscus humboldti (Humboldt penguin); E, Aptenodytes patagonicus (king penguin); and F, Pygoscelis antarctica (chinstrap penguin) in dorsal aspect. Abbreviations: c, cerebrum; cb, cerebellum; fl, floccular lobe; mcv, middle cerebral vein; ob, olfactory bulb; ol, optic lobe; os, occipital sinus; se, sagittal eminence.

opennotspecifiedAug 2012View details →
zenodo28/100

Fig. 3 in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior

Fig. 3. (cont.)

opennotspecifiedDec 2009View details →
dryad28/100

Data from: Parasite infection in a central sensory organ of fish does not affect host personality

Open the record for dataset details and reuse information.

publicMay 2016View details →
geo24/100

Charting the development of Drosophila leg sensory organs at single-cell resolution

GEO Series GSE215073. Drosophila melanogaster. 2 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenOct 2022View details →
geo24/100

Graded FGF activity patterns distinct cell types within the apical sensory organ of the sea anemone Nematostella vectensis

GEO Series GSE213278. Nematostella vectensis. 1 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenApr 2024View details →
geo24/100

Neocortical layer 4 in adult mouse differs in major cell types and circuit organization between primary sensory areas

GEO Series GSE134378. Mus musculus. 118 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenAug 2019View details →
geo24/100

Spatial organization, chromatin accessibility and gene-regulatory programs defining sensory neurons

GEO Series GSE287551. Mus musculus. 10 samples. Type: Expression profiling by high throughput sequencing; Genome binding/occupancy profiling by high throughput sequencing.

openGEO-OpenApr 2025View details →
geo24/100

Single-cell RNA-Seq resolves cellular complexity in sensory organs from the neonatal inner ear

GEO Series GSE71982. Mus musculus. 321 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenOct 2015View details →
geo24/100

Touch receptor end-organ innervation and function requires sensory expression of the transcription factor Meis2

GEO Series GSE223788. Mus musculus. 9 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenFeb 2024View details →
geo24/100

Following the p63/Keratin5 Basal Cells in the Sensory and Nonsensory Epithelia of The Vomeronasal Organ

GEO Series GSE247872. Mus musculus. 1 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenMar 2024View details →
geo24/100

The RNA-binding protein TRIM71 is essential for hearing in humans and mice and times auditory sensory organ development

GEO Series GSE281437. Mus musculus. 5 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenJun 2025View details →
zenodo20/100

Fig. 11 in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior

Fig. 11. ''Alert'' head postures based on orienting the skull such that the lateral semicircular canal is horizontal. A, Majungasaurus crenatissimus (FMNH PR2100; modified from Sampson and Witmer, 2007); B, Allosaurus fragilis (UMNH VP 18050, registered to MOR 693); C, Gorgosaurus libratus (ROM 1247, registered to a cast of AMNH FR 5664); D, the Cleveland skull (CMNH 7541); E, Tyrannosaurus rex AMNH FR 5117, registered to a model of a T. rex skull); F, T. rex (FMNH PR2081); G, Struthiomimus altus (TMP 90.26.1); and H, Troodon formosus (composite of TMP 86.36.457 and TMP 79.8.1, registered to the skull of Saurornithoides junior, IGM 100/1). Scale bars pertain to A–D (top bar), E–F (middle bar), and G–H (lower bar). Scale bars = 10 cm.

opennotspecifiedDec 2009View details →
zenodo20/100

Fig. 9. Columella and columellar region. A in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior

Fig. 9. Columella and columellar region. A, braincase of the Cleveland skull (CMNH 7541, extracted from the full CT dataset) in left rostroventrolateral view, showing the left columella preserved in place. B, Cranial endocast and labyrinth of Tyrannosaurus rex (AMNH FR 5117) reconstructed from CT scans in left caudodorsolateral view, with the columellar canal (highlighted in teal) leading toward the fenestra vestibuli of the endosseous labyrinth. Scale bars = 2 cm.

opennotspecifiedDec 2009View details →
zenodo20/100

Fig. 7 in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior

Fig. 7. Endocranial region of Tyrannosaurus rex (actual fossil specimen of AMNH FR 5029, sagittally sec- tioned) in left medial view to show the fine vascular grooves on the endocranial surface. A, Labeled view show- ing the whole endocranial cavity. B, Close-up view with reversed stereopairs such that the endocranial cavity looks ''filled,'' making the view more comparable to the digital endocasts illustrated elsewhere in this article.

opennotspecifiedDec 2009View details →
zenodo20/100

Fig. 6 in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior

Fig. 6. Olfactory structures in Tyrannosaurus rex. A, FMNH PR2081; B, AMNH FR 5117; dorsal views of the cranial endocast. Green structures in A are the caudal portions of the olfactory region of the nasal cavity, which correspond to what Brochu (2000, 2003) regarded as olfactory bulbs. The true limits of the olfactory bulb cast are indicated in blue of the cranial endocast. C, sagittal section of a T. rex skull, showing the cranial endocast in place (generated by registering AMNH FR 5117 to a one-third scale restored sculpture of FMNH PR2081). The large arrow shows the course of the respiratory airway (yellow) through the rostral portion of the nasal cavity, choana, and pharynx. The small, wavy arrow shows the low-velocity path of odorant molecules through the large olfactory region of the nasal cavity (reddish). Scale bar for A–B = 5 cm.

opennotspecifiedDec 2009View 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