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50 results for “sensory organ”
Fig. 4 in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior
Fig. 4. Cranial endocasts reconstructed from CT scans in left lateral view, arranged in a cladogram. A, Majungasaurus crenatissimus (FMNH PR2100; modified from Sampson and Witmer, 2007); B, Allosaurus fragilis (UMNH VP 18050); C, Tyrannosaurus rex (AMNH FR 5117); D, Struthiomimus altus (TMP 90.26.1); E, Deinonychus antirrho- pus (composite of MOR 747 and OMNH 50268); and F, Archaeopteryx lithographica (BMNH 37001). C, D, and E+F are arranged in a polytomy to reflect uncertain relationships near the base of Coelurosauria, which impacts the optimization of some attributes (e.g., position of optic lobe). Scale bars = 1 cm.
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. Cranial endocasts reconstructed from CT scans in left lateral view (left column, this page), ventral view (right column, this page), and dorsal view (left column, facing page). A–C, Tyrannosaurus rex (AMNH FR 5117); D–F, T. rex (AMNH FR 5029); G–I, T. rex (FMNH PR2081); J–L, Gorgosaurus libratus (ROM 1247); M–O, Cleveland skull (CMNH 7541; reversed). Some vascular elements are depicted, as well as the endosseous labyrinth. Scale bars = 2 cm.
Fig. 5. C in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior
Fig. 5. C, right rostroventrolateral view; and D, left caudoventrolateral view. Arrows point rostrally. Scale bars = 10 cm, except in B where scale bar = 5 cm.
Fig. 5 in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior
Fig. 5. Stereopairs of a braincase of Tyrannosaurus rex (AMNH FR 5117) reconstructed from CT scans in various views to show the osteological correlates (e.g., foramina, fossae, crests) of many of the soft-tissue structures discussed in the text. Each view consists of a set of stereopairs (above) showing a semitransparent braincase revealing enclosed soft-tissue structures, coupled with a set of stereopairs (below) in the same view showing the bony braincase and labeled structures. A, left lateral view; B, left lateral view, close-up.
Fig. 1 in New Insights Into the Brain, Braincase, and Ear Region of Tyrannosaurs (Dinosauria, Theropoda), with Implications for Sensory Organization and Behavior
Fig. 1. Cranial endocast of Tyrannosaurus rex (AMNH FR 5117) reconstructed from CT scans. Some vascular elements and the endosseous labyrinth are depicted. Labeled illustrations in A, left lateral; B, ventral; C, dorsal; D, rostral; and E, caudal views.
The Hippo pathway and p27Kip1 cooperate to suppress sensory receptor regeneration in the organ of Corti and the retina.
GEO Series GSE268504. Mus musculus. 15 samples. Type: Expression profiling by high throughput sequencing.
Conditional DamID and Transcriptome studies during sensory organ development in Drosophila
GEO Series GSE53011. Drosophila melanogaster. 31 samples. Type: Genome binding/occupancy profiling by genome tiling array; Expression profiling by array.
Canopy1/Cnpy1 is required for proper V2R processing and transport; its functional loss impairs basal/V2R vomeronasal sensory neurons function and circuit organization.
GEO Series GSE310235. Mus musculus. 1 samples. Type: Expression profiling by high throughput sequencing.
SoxC transcription factors shape the epigenetic landscape to establish competence for sensory differentiation in the mammalian organ of Corti
GEO Series GSE215171. Mus musculus. 10 samples. Type: Expression profiling by high throughput sequencing; Genome binding/occupancy profiling by high throughput sequencing.
Data of Consumers' Sensory Acceptance, Motives, and Choices of Organic vs Non-organic Foods: a case of Lithuanian Consumers
<p>The data reflects study participants / Lithuanian food products consumers’ sensory acceptance, motives, and choices of organic vs non-organic foods. The study was done using a consumer test. For the consumer test, two food categories, namely organic and non-organic products – yoghurts and chocolates were included. Sensory propertieswere measured with four items (appearance, odor, taste, and texture). To identify consumer motives for yogurts and chocolates, the demographic characteristics and consumption habits of participants were collected using a questionnaire. The study sample entailed 127 participants: 50.4% (N=64) were from 18 to 44 age group, followed by 49.6% (N=63) from 45 to 60+ (e.g., participants over 60 were 25 (19.7%). 61.4% (N=78) were women, and 38.6% (49) were men. </p> <p> </p>
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.