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329 results for “histopathology”
Fig. 2 in The relationships among Leishmania infantum and phyllostomid bats assessed by histopathological and molecular assays
Fig. 2. Photomicrography of liver of an adult female Leishmania infantum negative Carollia perspicillata presenting cytoplasmic vacuolation of hepatocytes (arrowhead) and mild lymphocytic infiltrate of portal area (arrow), H&E, 40x objective.
Fig. 3 in The relationships among Leishmania infantum and phyllostomid bats assessed by histopathological and molecular assays
Fig. 3. Photomicrography of spleen of an adult male Artibeus planirostris qPCR Leishmania infantum positive. No amastigotes forms were found, only unspecific mild hyperplasia (big ellipse) and hypoplasia (small ellipse) of lymphoid follicles in the reactive white pulp. Note the lack of delimitation between the WP and red pulp (RP), H&E, 10x objective. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in The relationships among Leishmania infantum and phyllostomid bats assessed by histopathological and molecular assays
Fig. 1. Photomicrography of wing skin of an adult male Artibeus planirostris qPCR Leishmania infantum positive. No amastigotes forms were found, only unspecific mild mixed inflammatory infiltrate of dermis with mononuclear (arrow) and polymorphonuclear cells (arrowhead), H&E, 40x objective.
Fig. 3 in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 3. Normal aspect of the retina in Arctic charr with different layers. From the eye exterior to the eye interior: (RP): Retinal pigment epithelium. (RC) Cones and rods layer. (ON) Outer nuclear layer. (OP) Outer plexiform layer. (IN) Inner nuclear layer (IP) Inner plexiform layer. (GC) Ganglion cell layer. (GA) Axons of the ganglion layer. Scale bar = 300 μm.
Fig. 6 in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 6. Edge of one of the vesicles produced by the accumulation of parasites. Retinal pigment layer and rods and cones layer display a progressive alteration in their structure and finally both layers become detached. Notice the reduction of the thickness of the RPE (arrow) in the vesicle. Scale bar = 300 μm.
Fig. 12 in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 12. PP-morphs. Diffuse changes in the posterior retina affecting mainly the RPE layer suggesting potential healing. Scale bar = 200 μm.
Fig. 4 in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 4. Diplostomum sp. metacercaria within the retinal structures. This specimen is clearly placed between the retinal pigmented epithelium (RP) and rod and cones layer (RC) creating a small space between them and the parasite. Damaged retinal pigment epithelium is clearly observed and also rod and cone layer display morphological alterations. Scale bar = 200 μm.
Fig. 11. A in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 11. A single Diplostomum sp. metacercaria within the posterior retina with scarce development of surrounding vesicle and mechanical compression against the RPE and the cones and rods layers. Scale bar = 200 μm.
Fig. 7 in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 7. Early lesions in RPE and RC in the retina closer to the edge of the vesicles. Cones and rods display a disorganized pattern between the pigmented processes of the RPE. Scale bar = 100 μm.
Fig. 2 in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 2. Vesicle with several Diplostomum specimens in a histological section. Vesicles are typically located near the ciliary body/retina contact area. C: cornea. I: iris. H/E. Scale bar = 1 mm.
Fig. 5 in Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus
Fig. 5. Large vesicle with sections of many Diplostomum specimens. The vesicle clearly creates a large space between RP and RC. Scale bar = 400 μm.
Visualizing histopathologic deep learning classification and anomaly detection using nonlinear feature space dimensionality reduction
<p>Representative Testing/Validation WSIs used in the manuscript "Visualizing histopathologic deep learning classification and anomaly detection using nonlinear feature space dimensionality reduction"</p>
Visualizing histopathologic deep learning classification and anomaly detection using nonlinear feature space dimensionality reduction
<p>Training image dataset used in the manuscript "Visualizing histopathologic deep learning classification and anomaly detection using nonlinear feature space dimensionality reduction"</p>
Segmentation of Nuclei in Histopathology Images by deep regression of the distance map
<p>This dataset has been annonced in our accepted paper "Segmentation of Nuclei in Histopathology Images by deep regression of the distance map" in Transcation on Medical Imaging on the 13th of August.<br> This dataset consists of 50 annotated images, divided into 11 patients.</p> <p> </p> <p>v1.1 (27/02/19): Small corrections to a few pixel that were labelled nuclei but weren't.</p>
Figure 4 in Histopathological observations in Neogobius bathybius (Actinopterygii: Gobiidae) infected by Dichelyne minutus (Nematoda: Cucullanidae) in the Caspian Sea, Iran
Figure 4. Cross-section of parasitized fish intestinal epithelium: a) hyperplastic epithelium cells (arrowheads); b) congested blood vessels, veins (arrows); c and d) nodule-like structures via intense hyperplastic submucosal tissue, resulted in deeper folds and e) focal necrosis (star) and thickened muscular layer (2-headed arrow); f) increased number of goblet cells (arrows). M = mucous, s = submucosa, and mus = musculature.
Figure 1 in Histopathological observations in Neogobius bathybius (Actinopterygii: Gobiidae) infected by Dichelyne minutus (Nematoda: Cucullanidae) in the Caspian Sea, Iran
Figure 1. Anterior part of Dichelyne minutus: a) large pseudobuccal capsule; b) posterior end of esophagus; c) anterior ventral cecum; d) nerve ring.
Figure 4 in Induction of histopathological lesions in renal tissue of the fish Labeo rohita upon exposure to municipal wastewater of Tung Dhab Drain, Amritsar, India
Figure 4. Light micrographs of histological sections of kidney taken from fish L. rohita exposed to municipal wastewater concentrations for exposure durations of 15 (A; 35.4%), 30 (B; 17.7%, C; 26.6%), 60 (D; 26.6%, E; 35.4%) days, and recovery experiments of 60 days (F; 35.4%). The histopathological alterations were marked by () occlusion of tubular lumen; () hyaline droplet degeneration; () dilation of glomerular capillaries; () reduction of Bowman's space; () melanomacrophage centers; () nuclear hypertrophy; () cellular hypertrophy; () cytoplasmic vacuolation in the interrenal cells; () necrosis. Magnification 100×.
Figure 3 in Induction of histopathological lesions in renal tissue of the fish Labeo rohita upon exposure to municipal wastewater of Tung Dhab Drain, Amritsar, India
Figure 3. Kidney mean DTC values in fish L. rohita exposed to municipal wastewater for durations of 15 days (a), 30 days (b), 60 days (c) when compared to control, and (d) subjected to recovery experiments for 60 days and compared with treated group. Values are mean ± SE (vertical bars); means followed by different letters are significantly different from each other (Tukey's post-hoc test, P ≤ 0.01).
Figure 2 in Induction of histopathological lesions in renal tissue of the fish Labeo rohita upon exposure to municipal wastewater of Tung Dhab Drain, Amritsar, India
Figure 2. Histological sections of kidney of fish L. rohita taken as control. A. Posterior kidney showing renal corpuscle formed by Bowman's capsule (BC), Bowman's space (BS), and Glomerulus (G). PT: proximal tubule; distal tubule. B. Anterior kidney showing chromaffin cells (CC) and interrenal cells (IC). Magnification 100×.
Figure 1 in Induction of histopathological lesions in renal tissue of the fish Labeo rohita upon exposure to municipal wastewater of Tung Dhab Drain, Amritsar, India
Figure 1. Map showing Tung Dhab Drain and Hudiara Drain. (a) The sampling site is marked by a star (); origin of drains is shown by (); confluence of Tung Dhab Drain and Hudiara Drain is marked by (). (b) Map showing main industries and sewer outfalls along Tung Dhab Drain. () indicates sewer outfalls; () metal foundries; () paper mill; () food; () leather; () chemical industries. Source: Adapted from Google Earth Maps, accessed August 2014.
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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)
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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.