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349 results for “anti-inflammatory activity”
Figure 2 from: Postoy V, Kukhtenko H, Vyshnevska L, Gladukh I, Semchenko K (2019) Study of rheological behaviour of hydroxyethyl cellulose gels in the development of the composition and technology of the medicine with anti-inflammatory activity. Pharmacia 66(4): 187-192. https://doi.org/10.3897/pharmacia.66.e37267
Figure 2 The dependence of the shear stress (τ, Ra) of HEC gels with the content of PEG-40 hydrogenated castor oil on the gradient of shear rate (γ, s-1) and the dependence of the structural (dynamic) viscosity (η, Ra s) on the gradient of the shear rate (τ, Ra).
Figure 1 from: Postoy V, Kukhtenko H, Vyshnevska L, Gladukh I, Semchenko K (2019) Study of rheological behaviour of hydroxyethyl cellulose gels in the development of the composition and technology of the medicine with anti-inflammatory activity. Pharmacia 66(4): 187-192. https://doi.org/10.3897/pharmacia.66.e37267
Figure 1 The dependence of the shear stress (τ, Ra) of the HEC gelson the gradient of the shear rate (γ, s-1) and the dependence of the structural (dynamic) viscosity (η, Ра s) on the gradient of the shear rate (τ, Ra).
Supplementary material for "Compounds with antiviral, anti-inflammatory and anticancer activity identified in wine via high resolution mass spectrometry and bioinformatics analyses"
<p>Wine contains a variety of molecules with potential beneficial effects on human health. Our aim was to examine the wine components with high-resolution mass spectrometry including high-resolution tandem mass spectrometry in two wine types made from grapes with or without the fungus <em>Botrytis cinerea</em>, or “noble rot.” For LC-MS/MS analysis, 12 wine samples (7 without and 5 with noble rotting) from 4 different wineries were used and wine components were identified and quantified. Results: 288 molecules were identified in the wines and the amount of 169 molecules was statistically significantly different between the two wine types. A database search was carried out to find the molecules, which were examined in functional studies so far, with high emphasis on molecules with antiviral, anti-inflammatory and anticancer activities. Conclusions: A comprehensive functional dataset related to identified wine components is also provided highlighting the importance of components with potential health benefits.</p>
Figure 2 in Antinociceptive and anti-inflammatory activities of Hymenaea martiana Hayne (Fabaceae) in mice
Figure 2. Effect of the ethanolic extract of Hymenaea martiana (HmEtOH - 100, 200 and 400 mg.kg-1), indomethacin (20 mg.kg-1) and morphine (10 mg.kg-1) on acetic acid induced writhing test in mice. Values are mean ± S.E.M.*P <0.05,**P <0.01,significantly different from control; one-way ANOVA followed by Tukey's test (n = 6, per group).
Figure 1 in Antinociceptive and anti-inflammatory activities of Hymenaea martiana Hayne (Fabaceae) in mice
Figure 1. Mass spectrum of astilbin in ESI positive (+MS) and negative (-MS) modes. (A) LC-MS mass spectrum of astilbin in ESI positive molecular ion (+MS); (B) LC-MS mass spectrum of astilbin in ESI negative (-MS) molecular ions.
Fig. 5 in 13,13a-seco-protoberberines from the tubers of Corydalis yanhusuo and their anti-inflammatory activity
Fig. 5. The plausible biosynthetic pathway of compounds 2–6.
Fig. 1 in 13,13a-seco-protoberberines from the tubers of Corydalis yanhusuo and their anti-inflammatory activity
Fig. 1. Structures of 1–21.
Fig. 3 in 13,13a-seco-protoberberines from the tubers of Corydalis yanhusuo and their anti-inflammatory activity
Fig. 3. Comparison of experimental and calculated ECD of (+)-1, ()-1, (+)-2, and ()-2 in methanol.
Fig. 8 in Anti-inflammatory and anti-proliferative activities of chemical constituents from fungus Biscogniauxia whalleyi SWUF13-085
Fig. 8. OTEP projection of 13.
Fig. 4 in Anti-inflammatory and anti-proliferative activities of chemical constituents from fungus Biscogniauxia whalleyi SWUF13-085
Fig. 4. Key NOESY correlations of compounds 1, 3, 6 and 13.
Fig. 2 in Anti-inflammatory and anti-proliferative activities of chemical constituents from fungus Biscogniauxia whalleyi SWUF13-085
Fig. 2. COSY and key HMBC correlations of compounds 1, 2, 3, 6, 7 and 13.
Fig. 1 in Cucurbitane-type triterpenoids from the vines of Momordica charantia and their anti-inflammatory, cytotoxic, and antidiabetic activity
Fig. 1. The chemical structures of cucurbitanes 1–7 from the vines of M. charantia.
Fig. 3 in Cucurbitane-type triterpenoids from the vines of Momordica charantia and their anti-inflammatory, cytotoxic, and antidiabetic activity
Fig. 3. ORTEP diagram showing the crystallographic structures of compound 7.
Fig. 1 in Bis(4-glycosyloxybenzyl) 2-isobutyltartrate and dihydrophenanthrene derivatives from the pseudobulbs of Pholidota chinensis and their anti-inflammatory activity
Fig. 1. Structures of compounds 1–14.
Fig. 4 in Chemical constituents of Rumex dentatus L. and their antimicrobial and anti-inflammatory activities
Fig. 4. Experimental ECD spectra of compounds 1–2 in MeOH.
Fig. 3 in Chemical constituents of Rumex dentatus L. and their antimicrobial and anti-inflammatory activities
Fig. 3. Selected NOESY correlations of compounds 1 and 2.
Fig. 2 in Bis(4-glycosyloxybenzyl) 2-isobutyltartrate and dihydrophenanthrene derivatives from the pseudobulbs of Pholidota chinensis and their anti-inflammatory activity
Fig. 2. Significant HMBC correlations of compounds 1–2.
Fig. 2. Selected 1H–1H in Chemical constituents of Rumex dentatus L. and their antimicrobial and anti-inflammatory activities
Fig. 2. Selected 1H–1H COSY and HMBC correlations of compounds 1, 2, and 16.
Fig. 1 in Chemical constituents of Rumex dentatus L. and their antimicrobial and anti-inflammatory activities
Fig. 1. Structures of compounds 1–19.
Fig. 11 in Diterpenoids from Sigesbeckia glabrescens with anti-inflammatory and AChE inhibitory activities
Fig. 11. Binding mode prediction of 3-O-acetyldarutigenol (15) with AChE.
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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.