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1,324 results for “Soft tissue”
Fig. 6 in Pneumaticity and soft-tissue reconstructions in the neck of diplodocid and dicraeosaurid sauropods
Fig. 6. Cervical vertebrae of diplodocids exposing osteological correlates for soft−tissue. A. Cervical vertebra of Diplodocus (SMA L25−3), Howe Stephens Quarry, Wyoming, USA, Morrison Formation, Kimmeridgian, Late Jurassic, in left lateral aspect (A1) and as schematic drawing with insertion areas for tendinomuscular apparatus (A). B. 4th cervical vertebra (SMA D25−2) of undetermined juvenile diplodocid, Howe Stephens Quarry, Wyoming, USA, Morri2 son Formation, Kimmeridgian, Late Jurassic, in cranial (B1) and caudal (B2) aspects. C. Isolated neural spine of a cervical vertebra of Apatosaurus excelsus (CM 555), Quarry D (Sheep Creek), Wyoming, USA, Morrison Formation, Late Jurassic, in caudal aspect showing postspinal fossa. D. Cervical vertebra of Barosaurus lentus (CM 1198), Carnegie Museum Quarry at Dinosaur National Monument, Utah, USA, Morrison Formation, Late Jurassic, in caudal aspect showing postspinal fossa containing pneumatic foramina. E. Cervical vertebra of Diplodocus (SMA L25−3), Howe Stephens Quarry, Wyoming, USA, Morrison Formation, Kimmeridgian, Late Jurassic, in dorsolateral aspect showing large pneumatic foramen. F. Cervical vertebra of Diplodocus sp. (SMA, no collection number), Howe Stephens Quarry, Wyoming, USA, Morrison Formation, Kimmeridgian, Late Jurassic, in cranial aspect with close−up showing peduncle for interspinal elastic ligament (F1) and in caudal aspect (F2). Scale bars 50 mm.
Fig. 2 in Pneumaticity and soft-tissue reconstructions in the neck of diplodocid and dicraeosaurid sauropods
Fig. 2. Cervical vertebrae of juvenile, undetermined diplodocids from Howe Stephens Quarry, Wyoming, USA, Morrison Formation, Kimmeridgian, Late Jurassic. A. Photograph of 3rd cervical vertebra (SMA I34−1) (A) with location of transverse sections A –A obtained from X−ray computed tomography. 1 2 6 B. Photograph of axis (SMA D 25−1) (B1) with location of transverse sections B2–B5 obtained from X−ray computed tomography.
Text-fig. 2. Soft-tissue imprints and traces of bioerosion on Middle Ordovician cephalopods from Estonia. a: GIT 819-1, Tragoceras falcatum (SCHLOTHEIM, 1820), drag bands; b: GIT 819-1, T. falcatum, pseudosutures; c: GIT 819-2, Estonioceras sp., drag bands; d: GIT 819-3, cf. Anthoceras vaginatum (SCHLOTHEIM, 1820), drag bands; e: GIT 819-4, cf. Orthoceras regulare SCHLOTHEIM, 1820, drag bands; f: Pits on the body chamber of GIT 819-1, T. falcatum. Specimens oriented with aperture downwards. Scale bars 1 mm. in Conch Structures, Soft-Tissue Imprints And Taphonomy Of The Middle Ordovician Cephalopod Tragoceras Falcatum From Estonia
Text-fig. 2. Soft-tissue imprints and traces of bioerosion on Middle Ordovician cephalopods from Estonia. a: GIT 819-1, Tragoceras falcatum (SCHLOTHEIM, 1820), drag bands; b: GIT 819-1, T. falcatum, pseudosutures; c: GIT 819-2, Estonioceras sp., drag bands; d: GIT 819-3, cf. Anthoceras vaginatum (SCHLOTHEIM, 1820), drag bands; e: GIT 819-4, cf. Orthoceras regulare SCHLOTHEIM, 1820, drag bands; f: Pits on the body chamber of GIT 819-1, T. falcatum. Specimens oriented with aperture downwards. Scale bars 1 mm.
Text-fig. 1. Megastriae and post mortem epicoles on Tragoceras falcatum (SCHLOTHEIM, 1820). Arrows and M1–M3 indicate megastriae, bryozoan colonies are indicated by B1 and B2. a: GIT 819-1, left lateral view; b: body chamber of GIT 819-1, dorsal view; c: body chamber of GIT 819-1, left lateral view; d: GIT 819-1, right lateral view; e: PIMUZ 37299, right lateral view; f: detail of the body chamber of GIT 819-1, right lateral view, encrusted by bryozoans; g: bryozoan colony with Trypanites borings growing on an older bryozoan crust GIT 819-1. Specimens oriented with aperture downwards. Scale bars 10 mm. in Conch Structures, Soft-Tissue Imprints And Taphonomy Of The Middle Ordovician Cephalopod Tragoceras Falcatum From Estonia
Text-fig. 1. Megastriae and post mortem epicoles on Tragoceras falcatum (SCHLOTHEIM, 1820). Arrows and M1–M3 indicate megastriae, bryozoan colonies are indicated by B1 and B2. a: GIT 819-1, left lateral view; b: body chamber of GIT 819-1, dorsal view; c: body chamber of GIT 819-1, left lateral view; d: GIT 819-1, right lateral view; e: PIMUZ 37299, right lateral view; f: detail of the body chamber of GIT 819-1, right lateral view, encrusted by bryozoans; g: bryozoan colony with Trypanites borings growing on an older bryozoan crust GIT 819-1. Specimens oriented with aperture downwards. Scale bars 10 mm.
Supplementary data to: Internal anatomy of brachyuran crab from a Late Cretaceous methane seep and an overview of internal soft tissues in fossil decapod crustaceans
<p>001-Secretanella_sp_AAK_072019.zip - µCT scan data, 1.28 GB stack of DICOM images. High-resolution X-ray computed tomography (CT) scans of specimen ALMNH:Paleo:6522 were obtained at the Berkeley Preclinical Imaging Facility (UC Berkeley, California, USA) in July 2019 using a GE Healthcare eXplore Locus Micro CT Scanner. The specimen was scanned using a conebeam energy of 80 kV, a current of 450 µA, 2,000 ms exposure time, and no filter, resulting in a voxel resolution of 20.523 µm. Visualization and three-dimensional reconstruction of the resulting µCT data were performed using the open-source software 3D Slicer v.4.13.0 (Fedorov et al., 2012).</p> <p>Additional_images_gifs_3Dmodel.zip - archive containing 3 folders of additionnal images, video (gifs) and a 3D model (STL file) :</p> <p>- Addendum_Figure_3 : additional images / views to the figure 3 presented in the paper.</p> <p>- Gifs_3d_models : gifs and STL 3d model of the scanned specimen</p> <p>- Images_gifs_inc_gastric_musc : images, gifs and 3d model similar as in the other folders, but displaying potential gastric muscles</p>
Therapeutic drug monitoring of pazopanib in renal cell carci-noma and soft tissue sarcoma – a systematic review_Primary DATA
<p>Primary dataset of the search made for the systematic review: A systematic search of PubMed and Web of Science databases was conducted using search terms related to pazopanib and TDM. Out of 162 and 225 articles identified, respectively, nine articles were selected for review, as they evaluated treatment outcomes or toxicity concerning drug exposure</p>
Fig. 3 in Soft-tissue preservation in the Lower Cambrian linguloid brachiopod from South China
Fig. 3. Plots of maximum length (Ll)/maximum width (Wl) between the paired brachia of Lingulellotreta malongensis based on ElI collection from the Early Cambrian Chengjiang fauna at Haikou, Kunming, South China. See Fig. 5 for location of measurement.
Fig. 2 in Soft-tissue preservation in the Lower Cambrian linguloid brachiopod from South China
Fig. 2. Interpretative drawings of the interiors of Lingulellotreta malongensis shown in Fig. 1. A. Sketch of Fig. 1A. B. Sketch of Fig. 1C. C. Sketch of Fig. 1G. Scale bars 1 mm.
Fig. 9 in Soft-tissue attachment structures and taphonomy of the Middle Triassic nautiloid Germanonautilus
Fig. 9. Reconstruction of the conch and the soft parts of Germanonautilus tridorsatus (Böttcher, 1938); oblique view; × 0.3.
Fig. 6 in Soft-tissue attachment structures and taphonomy of the Middle Triassic nautiloid Germanonautilus
Fig. 6. Outline in venter (A) and left flank(B) of the folded carbonaceous layer (remains of the soft parts?), the attachment area of the cephalic retractor and the posterior mantle (mantle myoadhesive band) of Germanonautilus bidorsatus (von Schlotheim, 1820), SMNS 64881, coll. H.E. Meuret (1959), Upper Muschelkalk, Nussloch/ Heidelberg (southern Germany).
Fig. 5 in Soft-tissue attachment structures and taphonomy of the Middle Triassic nautiloid Germanonautilus
Fig. 5. Germanonautilus with remains of the black layer from the German Muschelkalk (Anisian, Ladinian, Middle Triassic). A. G. bidorsatus (von Schlotheim, 1820), MHI 919, compressus Zone, Upper Muschelkalk, Middle Triassic, Garnberg near Künzelsau; this specimen shows the attachment structures of the cephalic retractors, mantle myoadhesive band, palliovisceral ligament, septal myoadhesive band, dorsal mantle, and the aperture; × 0.5. B. G. suevicus Philippi 1898, SMNS 64961, Upper Muschelkalk, Middle Triassic, Kupferzell−Rüblingen (Kleinknecht quarry). Note the black layer in the concave whorl zone and the epifauna consisting of the oyster Placunopsis and the inarticulate brachiopod Discinisca; B1 ventral view, showing a detail of B3 with a thin line of the black substance extending along a growth line, × 1; B2 lateral view, with the attachment structures of the mantle myoadhesive band and the cephalic retractor, × 0.5; B3 ventral view, complete specimen with a thin line the black substance extending along a growth line; the dark colour of the venter might be caused by remains of the periostracum, × 0.5. C. Juvenile specimen of G. suevicus Philippi 1898, MHI 72, Tonhorizont ζ, nodosus Zone, Upper Muschelkalk, Middle Triassic, Heimbacher Steige, Schwäbisch Hall; this specimen is preserved with the embryonal spiral sculpture and the black layer; × 0.5.
Fig. 4 in Soft-tissue attachment structures and taphonomy of the Middle Triassic nautiloid Germanonautilus
Fig. 4. Germanonautilus bidorsatus (von Schlotheim, 1820) from the German Muschelkalk and Recent Nautilus from the Indopacific. A. Germanonautilus bidorsatus (von Schlotheim, 1820), right lateral view; SMNS 75229−1, coll. M. Warth, Hassmersheimer Marls 3, atavus Zone, Upper Muschelkalk (Anisian, Triassic), Weiler zum Stein (southern Germany); coated with ammonium chloride in right lateral view (A1); × 0.5. Detail of flank of the same (A2); note the attachment area of the cephalic retractor, the mantle myoadhesive band, the palliovisceral ligament, and the septal myoadhesive band with tracking bands (also behind the last formed septum); coated with ammonium chloride; × 2. B. Apertural view of Nautilus macromphalus Sowerby, 1849 (SMNS Zl 9614, Recent, New Caledonia, coll. Wessel 1860, displaying the attachment areas of the cephalic retractors, the mantle myoadhesive band and the dorsal mantle (black layer); × 0.5. C. Internal view of Nautilus pompilius Linnaeus, 1758; SMNS Zl 9615, Recent, locality unknown, with attachment areas of the cephalic retractors, the mantle and septal myoadhesive bands; × 0.75.
Fig. 3 in Soft-tissue attachment structures and taphonomy of the Middle Triassic nautiloid Germanonautilus
Fig. 3. Outline of soft−tissue attachment structures in Triassic and Recent Nautiloidea; the large scar of the cephalic retractor is in light grey. A. Nautilus pompilius Linnaeus, 1758, Recent, locality unknown, SMNS Zl 9615. B. Germanonautilus bidorsatus (von Schlotheim, 1820); SMNS 26618/11, coll. R. Mundlos, Upper Muschelkalk (Anisian, Triassic), Schöningen/ Elm (central Germany); the growth lines are partially reconstructed. C. The same species, right flank; SMNS 75229−1, coll. M. Warth, Hassmersheimer Marls 3, atavus Zone, Upper Muschelkalk (Anisian, Triassic), Weiler zum Stein (southern Germany). Note the larger distance between the attachment areas of the cephalic retractor due to the broader venter of G. bidorsatus (B) and the different course of the attachment of the palliovisceral ligament.
Fig. 7 in Soft-tissue attachment structures and taphonomy of the Middle Triassic nautiloid Germanonautilus
Fig. 7. Epifauna on Germanonautilus conchs. A. A cluster of 14 specimens of the brachiopod Coenothyris vulgaris (Schlotheim, 1820) on the venter of a large body chamber of Germanonautilus bidorsatus (von Schlotheim, 1820), SMNS 26679 (wh = 108 mm), Hassmersheimer Mergel, Upper Muschelkalk, Middle Triassic, Helmhof near Untergimpern (cf. Aigner et al. 1978); × 0.5. B. Germanonautilus suevicus Philippi, 1898, SMNS 24999/2 (dm = 298 mm), dorsoplanus Zone, Upper Muschelkalk, Middle Triassic, Kupferzell−Rüblingen (Kleinknecht quarry); × 0.3. Note the thick bulbous crust consisting of the oyster Placunopsis ostracina (von Schlotheim, 1820). Asterisk denotes the approximate position of aperture in incomplete specimens.
A Study to Evaluate the Results of Facial Soft Tissue Reconstruction in Patients Who Have Suffered Traumatic Injury
ClinicalTrials.gov study NCT01345591. IPD Sharing: YES. Countries: 1. Publications: 3.
A Study of Tazemetostat in Adult Participants With Soft Tissue Sarcoma
ClinicalTrials.gov study NCT02601950. IPD Sharing: YES. Countries: 9. Publications: 1.
A Phase II Study of Eribulin and Pembrolizumab in Soft Tissue Sarcomas
ClinicalTrials.gov study NCT03899805. IPD Sharing: YES. Countries: 1. Publications: 1.
Data and code for: Dihydrothiazolo ring-fused 2-pyridone antimicrobial compounds effectively treat Streptococcus pyogenes skin and soft tissue infection
Open the record for dataset details and reuse information.
Avian cranial evolution is influenced by shape interactions between hard and soft tissue traits
Open the record for dataset details and reuse information.
Sonography display demonstrating intra-operative ultrasound imaging guidance for the localization of the foreign body (dental implant) in the soft tissues of the floor of the mouth via navigation with a spinal needle.
<p>This video demonstrates the intraoperative navigation system with using sonography to localize foreign bodies in the soft tissues of the floor of the mouth with the help of a spinal needle</p>
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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.