Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
4,483
datasets available to search
ShareScore release 0.9.0
Dataset results
4,483 results for “rat”
Figure 1 in All aspects of the toxic effects of lipopolysaccharide on rat liver and the protective effect of vitamin E and sodium selenite
Figure 1. FRAP values (μmol of FeII equiv/gram tissue) in the liver of rats treated with LPS (10 mg/kg bw), VE (200 mg/kg bw), and SS (0.35 mg/kg bw). Significance was accepted as P <0.05.
Figure 4 in Evaluation of nickel-induced brain injuries in rats via oxidative stress and apoptosis: attenuating effects of hyperoside
Figure 4. Morphology and location of PAS granules of brain tissues of control (A), Hyp-treated (B), Ni-treated (C), and Ni + Hyp-treated (D) rats. Homogeneous PAS staining was observed in the control group (A) and the Hyp-treated (B) groups. Clusters of granules shown inside square (C) and by black arrow (D), respectively (200× magnification).
Figure 3 in Evaluation of nickel-induced brain injuries in rats via oxidative stress and apoptosis: attenuating effects of hyperoside
Figure 3. Histological views of brain tissues of control (A), Hyp-treated (B), Ni-treated (C), and Ni + Hyp-treated (D) rats. Small blood vessels (BV) from pia mater penetrate the cerebral cortex substance pyramidal cells (PC) with apical dendrites closely associated with smaller, round glial cells (GC) (A and B). Perivascular inflammation around a blood vessel (inside square) (C) and perivascular inflammatory cell infiltrates in hematoxylin and eosin-stained brain tissue (D) (200× magnification).
Figure 2 in The effects of feeding obese rats with bee bread on leptin and ghrelin expression
Figure 2. Cells stained with ghrelin (A) and leptin (B) in hypothalamus tissue are shown with black arrows. A: Group 1 (fed with standard rat food), B: Group 2 (obese - fed with high-fat diet), C: Group 3 (high-fat diet and 100 mg/kg/day bee bread), D: Group 4 (high-fat diet and 200 mg/kg/day bee bread), E: Group 5 (high-fat diet and 300 mg/kg/day metformin). Image zoom 400×.
Figure 1 in The effects of feeding obese rats with bee bread on leptin and ghrelin expression
Figure 1. Cells, stained with hematoxylin and eosin in hypothalamus tissue are shown with black arrows. Image zoom 400×. A: Group 1 (fed with standard rat food), B: Group 2 (obese - fed with high-fat diet), C: Group 3 (high-fat diet and 100 mg/kg/day bee bread), D: Group 4 (high-fat diet and 200 mg/kg/day bee bread), E: Group 5 (high-fat diet and 300 mg/kg/day metformin).
Figure 5 in Evaluation of nickel-induced brain injuries in rats via oxidative stress and apoptosis: attenuating effects of hyperoside
Figure 5. Brain tissues of control (A) and Hyp (B) groups were negative for Congo red. Amyloid deposits in brain parenchyma and around blood vessels shown inside square (C) and marked by black arrows (D) (200× magnification). Differences in measured parameters among the groups were analyzed with a nonparametric test (Kruskal–Wallis). Dual comparisons between groups exhibiting significant values were evaluated with a Mann–Whitney U test (P <0.05).
Figure 1 in Evaluation of nickel-induced brain injuries in rats via oxidative stress and apoptosis: attenuating effects of hyperoside
Figure 1. Effect of Ni administration on body weight gain. Data are presented as mean ± standard error of mean (SEM) (n = 7). a Significant differences between other studied groups and control (a4 P <0.0001). b Significant differences between other groups studied and Hyp group (b1 P <0.05, b4 P <0.0001). c Significant differences between other groups studied and Ni + Hyp group (c3 P <0.001) by Tukey's multiple range tests.
Figure 5 in Investigation of protective effects of lithium borate on spermatogenesis and testes histopathology against cadmium-induced acute toxicity in rats
Figure 5. Testes tissue, control and LTB groups, negative COX-2 expression (AC), Cd group, severe COX-2 expressions in damaged tubules and intertubular intervals (B), LTB + Cd group, mild COX-2 expression in interstitial tissue (arrowheads) (D), IHC - P, Bar: 20µm.
Figure 4 in Investigation of protective effects of lithium borate on spermatogenesis and testes histopathology against cadmium-induced acute toxicity in rats
Figure 4. Testes tissue, Control and LTB groups, negative 8-OHdG expression (AC), Cd group, severe cytoplasmic 8-OHdG expressions in spermatocytes and spermatogonium in damaged tubules (arrowheads) (B), LTB + Cd group, mild cytoplasmic 8-OHdG expression in spermatocytes (arrowheads) (D), IHC - P, Bar: 20 µm.
Figure 3. Negative Caspase-3 in Investigation of protective effects of lithium borate on spermatogenesis and testes histopathology against cadmium-induced acute toxicity in rats
Figure 3. Negative Caspase-3 expressions in testes tissues of control and LTB groups (A and C), severe Caspase-3 expression in spermatocytes of Cd group (arrowheads) (B), mild Caspase- 3 expression in spermatocytes (arrowheads) of LTB + Cd group (D), IHC - P, Bar: 20 µm.
Figure 1 in Investigation of protective effects of lithium borate on spermatogenesis and testes histopathology against cadmium-induced acute toxicity in rats
Figure 1. Testicular tissue, normal anatomical appearance (A), oedema, hyperaemia, congestion and haemorrhage (B), normal anatomical appearance (C), moderate oedematous and mild hyperaemic (D).
Fig. 1 in Rickettsiae exposure related to habitats of the oriental house rat (Rattus tanezumi, Temminck, 1844) in Salaya suburb, Thailand
Fig. 1. The oriental house rat (Rattus tanezumi) trapped in a location of Salaya suburb, near Bangkok shown in a map of Thailand (scale bar; 200 km) and the satellite view of Salaya suburb (scale bar; 2 km); showing six trap site of three distinct oriental house rat habitats including I) an agriculture field (red pin): fruit tree (a) and paddy field (b); II) an animal shelter (yellow pin): dog shelter (c) and horse stable (d) and III) a human residence (green pin): residential area (e) and fresh market (f). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 2 in A new state record of the Mandarin Rat Snake Euprepiophis mandarinus (Cantor, 1842) (Squamata: Colubridae: Coronellini) from Mizoram, India
Fig. 2. Map depicting Champhai (triangle) Mizoram, a new locality for E. mandarinus in India with previously known localities (filled circles). Inset map shows relative position of all localities within Republic of India.
Fig. 3. A in A new state record of the Mandarin Rat Snake Euprepiophis mandarinus (Cantor, 1842) (Squamata: Colubridae: Coronellini) from Mizoram, India
Fig. 3. A distinct form of Euprepiophis mandarinus with red-brown dorsals from Republic of China. Photo by Tom Charlton.
Fig. 1 in A new state record of the Mandarin Rat Snake Euprepiophis mandarinus (Cantor, 1842) (Squamata: Colubridae: Coronellini) from Mizoram, India
Fig. 1. Dorsal and ventral view of roadkill Euprepiophis mandarinus (MZMU-1135) collected from Champhai, Mizoram. Photo by V. Rangasamy.
Fig. 2 in Infestation and seasonal fluctuation of chigger mites on the Southeast Asian house rat (Rattus brunneusculus) in southern Yunnan Province, China
Fig. 2. Seasonal fluctuation of infestations of the Southeast Asian house rat (R. brunneusculus) with Walchia (W.) micropelta at Jingha, southern Yunnan of China (April 2016–March 2017).
Fig. 5 in Infestation and seasonal fluctuation of chigger mites on the Southeast Asian house rat (Rattus brunneusculus) in southern Yunnan Province, China
Fig. 5. Seasonal fluctuation of infestations of the Southeast Asian house rat (R. brunneusculus) with Walchia (W.) turmalis at Jingha, southern Yunnan of China (April 2016–March 2017).
Fig. 1 in Infestation and seasonal fluctuation of chigger mites on the Southeast Asian house rat (Rattus brunneusculus) in southern Yunnan Province, China
Fig. 1. Seasonal fluctuation of overall infestations of the Southeast Asian house rat (R. brunneusculus) with chiggers at Jingha village in southern Yunnan of China (April 2016–March 2017).
Fig. 4 in Infestation and seasonal fluctuation of chigger mites on the Southeast Asian house rat (Rattus brunneusculus) in southern Yunnan Province, China
Fig. 4. Seasonal fluctuation of infestations of the Southeast Asian house rat (R. brunneusculus) with Leptotrombidium (L.) deliense at Jingha, southern Yunnan of China (April 2016–March 2017).
Fig. 6 in Infestation and seasonal fluctuation of chigger mites on the Southeast Asian house rat (Rattus brunneusculus) in southern Yunnan Province, China
Fig. 6. Seasonal fluctuation of infestations of the Southeast Asian house rat (R. brunneusculus) with Leptotrombidium (L.) scutellare at Jingha, southern Yunnan of China (April 2016–March 2017).
ScienceDex guides
Understand access before you commit
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.