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453 results for “sting”

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zenodo36/100

Human STING is a proton channel (HEK293T Inflammasome Experiment)

<p>HEK293T cells transduced to express NLRP3-mNeonGreen and STING-HA were plated in 24-well glass-bottom plates (Greiner Bio-One) and, after 24 hours, stimulated with 2 &micro;M nigericin or&nbsp; 1 &micro;M&nbsp; diABZI with or without the addition of 10 &micro;M C53&nbsp; for 1 hour. Cells were then fixed with 2% Paraformaldehyde (Electron Microscopy Sciences) in PHEM buffer (Electron Microscopy Sciences) for 30 minutes at 37&deg;C, washed three times with PBS and quenched with freshly prepared 0.1M Glycine for 10 minutes. Cells were permeabilized in 100% methanol for 30 minutes and stained with anti-HA (Millipore, #11867423001) and anti p-STING (Cell Signaling Technology cat. #19781s)&nbsp; for 1 hour at room temperature in 3% BSA, washed 5 times, and then stained with Alexa 647 anti-rat IgG (H+L) (Thermo, A-21247) and Alexa 555 plus anti-rabbit (Thermo, A32732) in 3% BSA for 1 hour. After five washes, cells were incubated in 2X SSC with 200 ng/mL DAPI (Thermo Fisher) and imaged using the Nikon microscope used for organelle pH images. Images were acquired using a 60X 1.40 NA Plan Apo &lambda; oil immersion objective (Nikon MRD01605) with Nikon type F immersion oil with the following lasers and filters: DAPI (405 nm laser, Chroma <a href="https://www.chroma.com/products/parts/et455-50m">ET455/50</a>), NLRP3 mNeonGreen (488nm laser, Chroma ET525/36) pSTING (561 nm laser, Chroma ET605/52), and STING-HA (640 nm laser, Chroma ET705/72), assaying five z planes per field of view with 0.625 &micro;m spacing. Fields of view were selected using NIS Elements software coordinates without manual preselection.</p> <p>Images are maximum projections of multiple z-stacks.&nbsp;Channels are: DAPI, NLRP3 mNeonGreen, pSTING, and STING.</p>

openmit-licenseMay 2023View details →
dryad36/100

Inhibition of O-GlcNAc transferase activates cGAS-STING pathway

Open the record for dataset details and reuse information.

publicSep 2024View details →
dryad36/100

Data from: Ethnobotany of stinging nettle (Urtica simensis Hochst. ex. A. Rich.) in the Oromia region of central and southeastern highlands of Ethiopia

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publicApr 2022View details →
dryad36/100

Morphological measurements of the ant stinging apparatus associated with: Evolutionary simplification and functional shifts of the ant stinger

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publicOct 2025View details →
dryad36/100

Data from: Engineering a spatiotemporal macrophage circuit via STING phase separation to override immune suppression in pancreatic cancer

Open the record for dataset details and reuse information.

publicDec 2025View details →
dryad36/100

Consistency and individuality of honeybee stinging behaviour across time and social contexts

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publicDec 2024View details →
dryad36/100

Data for: Cytosolic bacterial pathogens activate TLR pathways in tumors that synergistically enhance STING agonist cancer therapies

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publicMay 2025View details →
edi36/100

Scorpion stings in urban environments in the central Arizona-Phoenix area: 1996-1997

Determination of what degree of human modification influences the frequency of scorpion stings by looking at the number of scorpion stings in different zip code areas of the Phoenix metropolitan area. Results from this study may be useful in making recommendations on land development so scorpion stings are minimal.

openOpenJan 2020View details →
zenodo32/100

Fig. 16 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 16: Distribution map of Opamyrma hungvuong. Type locality, record by CHEN &amp; al. (2017), and new records by the preset study are indicated by circle, square, and stars, respectively.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 14 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 14: Larva of Opamyrma hungvuong, nontype (AKY05vii17-06, China, Guangxi). (A) Scanning electron microscope (SEM) image of body in lateral view; (B) transmitted light microscopy image of head in dorsal view; (C) SEM image of head in frontal view; (D) SEM image of head in lateral view; (E) SEM image of head in ventral view; (F) SEM image of abdominal terminus in lateral view. Abbreviations: Atn = antenna; Gl = galea; Lbp = labial palp; Lbr = labrum; Mdb = mandible; Mxp = maxillary palp.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 13 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 13: Male genitalia of Opamyrma hungvuong, nontype (Dai19iii2019-029, Son La, Vietnam). (A) genital capsule in dorsal view; (B) genital capsule in ventral view; (C) abdominal sternite IX in ventral view; (D) cupula in ventral view; (E) left paramere with basiventral part of right paramere and cupula, in unfolded outer view; (F) left volsella in lateral view; (G) left penisvalva in lateral view. Abbreviations: Bm = basimere; Cu = cupula; Cs = cuspis; Dg = digitus; Lp = lateral apodeme; Pv = penisvalva; Spl = spinescent lobe; Spc = spiculum; Tm = telomere; Va = valvura.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 11 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 11: Opamyrma hungvuong male, nontype (Dai19iii2019-029, Son La, Vietnam). (A) head in full-face view; (B) head and mesosoma in lateral view; (C) mouthparts in anteroventral view; (D) head and mesosoma in dorsal view; (E) petiole in lateral view; (F) metasoma in lateral view; (G) petiole in ventral view; (H) metasoma in dorsal view. Abbreviations: Atp = anterior tentorial pit; Lbp = labial palp; Lbr = labrum; Mdl = mandalus; Mxp = maxillary palp; Nt = notauli; Pl = parapsidal line; Pv = penisvalva; Tm = telomere; Tsl = tergosternal line.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 3 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 3: Maxillolabial complex of Opamyrma hungvuong worker, nontype (AKY05vii17-06, China, Guangxi). (A) Scanning electron microscope image of maxillolabial complex in ventral view, labrum removed; (B) right maxilla in outer view; (C) labium in lateral view; (D) labium in dorsal view. Abbreviations: Ams = anteromedian sclerite; Gcss = galeal crown's stout seta; Hyp = hypopharynx; Lbp = labial palp; Lcn = lacinia; Mxco = maxillary comb; Mxp = maxillary palp; Mxst = maxillary stipes; Prm = prementum; Sglb = subglossal brush.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 7 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 7: Scanning electron microscope images of legs of Opamyrma hungvuong worker, nontype (AKY05vii17-06, China, Guangxi). (A) strigil of right proleg in anterior view; (B) calcar of strigil of right proleg in anterior view; (C) strigil of right proleg in posterior view; (D) distitarsus of right proleg in posterior view; (E) tibial spurs and basitarsus of right mesoleg in anterior view; (F) tibial spurs and basitarsus of right metaleg in posterior view; (G) pretarsal claws of right metaleg in posteroventral view; (H) tibial spurs of left metaleg in anterior view. Abbreviations: Ats = anterior spur; Ca = calcar; Pts = posterior spur; Ptb = protibia; Pbts = probasitarsus; Ptss = protibial stout seta; Mnb = manubrium; Mstb = mesotibia; Msbts = mesobasitarsus; Mttb = metatibia; Mtbts = metabasitarsus.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 12 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 12: Male wings of Opamyrma hungvuong, nontype (Dai19iii2019-029, Son La, Vietnam). (A) forewing in dorsal view; (B) hind wing in dorsal view. Abbreviations: 1A = first anal vein; Bc = basal cell; C = costal vein; Cc = costal cell; Cu = cubital vein; Mc1 = marginal cell 1; R = radial vein; Rs = radial sector; Sbc = subbasal cell; Sc = subcostal vein; Sdc1 = subdiscal cell 1; Smc = submarginal cell.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 2 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 2: Scanning electron microscope images of cephalic parts of Opamyrma hungvuong worker, nontype (AKY05vii17-06, China, Guangxi). (A) anterior part of head in frontal view; (B) cranium in ventral view; (C) right mandible in dorsal view; (D) right hypostomal process in lateral view; (E) left mandible in ventral view; (F) labrum in outer view. Abbreviations: Ctl = canthellus; Hysp = hypostomal process; Occ = occipital carina; Lbr = labrum; Lps = labral peg-like seta; Mdl = mandalus; Mps = mandibular peg-like seta; Pat = preapical tooth; Ptg = peritorular groove; Ptp = posterior tentorial pit; Sca = supraclypeal area.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 6 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 6: Scanning electron microscope images of mesosoma of Opamyrma hungvuong worker, nontype (AKY05vii17-06, China, Guangxi). (A) whole mesosoma in lateral view; (B) anterior articulation of mesonotum in lateral view, prothorax removed; (C) whole mesosoma in dorsal view; (D) whole mesosoma in ventral view, all legs removed; (E) metapleuron and propodeum in lateral view; (F) prosternite in ventral view, propleurae and prolegs removed. Abbreviations: Mgo = metapleural gland orifice; Mlf = metapleural longitudinal flange; Msg = mesonotal groove; Mstp = mesosternal pit; Mtsp = metanotal spiracle; Pcc = procoxal cavity; Pdl = propodeal lobe.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig.10 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig.10: Opamyrma hungvuong queen, nontype (Dai19iii2019-029, Son La, Vietnam). (A) head in full-face view; (B) body in lateral view; (C) head in ventral view; (D) head and mesosoma in dorsal view; (E) Scanning electron microscope image of mesosoma in lateral view; (F) Scanning electron microscope image (SEM) of meso- and metanotum in dorsal view; (G) forewing in dorsal view; (H) hindwing in dorsal view. Abbreviations: Axa = axilla; Axu = axillula; Msg = mesonotal groove; Occ = occipital carina; Pgr = postgenal ridge; Pl = parapsidal line; Prx = preaxilla; Rs = radial sector; Scs = scutoscutellar sulcus.

opennotspecifiedMay 2020View details →
zenodo32/100

Fig. 8 in Unveiling the morphology of the Oriental rare monotypic ant genus Opamyrma YAMANE, BUI & EGUCHI, 2008 (Hymenoptera: Formicidae: Leptanillinae) and its evolutionary implications, with first descriptions of the male, larva, tentorium, and sting apparatus

Fig. 8: Scanning electron microscope images of metasoma of Opamyrma hungvuong worker, nontype (AKY05vii17-06, China, Guangxi). (A) petiole in lateral view; (B) petiole in ventral view; (C) helcium in anterior view; (D) helcium in ventral view; (E) pretergite of abdominal segment IV in dorsal view; (F) gaster in lateral view; (G) gaster in ventral view. Abbreviations: Absg = abdominal segment; Prsn = presternite; Prtg = pretergite; Ptlt = petiolar laterotergite; Ptsn = petiolar sternite; Tss = tergosternal suture.

opennotspecifiedMay 2020View details →
zenodo32/100

Scripts reproducing the analyses of the paper "HCMV exploits STING signaling and counteracts IFN and ISG induction to facilitate infection of dendritic cells" by Costa et al

<p>This is the code to reproduce the data analyses in the manuscript "HCMV exploits STING signaling and counteracts IFN and ISG induction to facilitate infection of dendritic cells".</p> <p>Required software and packages:</p> <p>R (4.2.1)<br>circlize (0.4.15)<br>ComplexHeatmap (2.12.1)<br>cowplot (1.1.1)<br>future (1.28.0)<br>ggalluvial (0.12.5)<br>ggpubr (0.4.0)<br>ggrepel (0.9.1)<br>GSVA (1.44.5)<br>msigdbr (7.5.1)<br>patchwork (1.1.2)<br>plyr (1.8.7)<br>presto (1.0.0)<br>RColorBrewer (1.1-3)<br>reshape2 (1.4.4)<br>sctransform (0.3.5)<br>Seurat (4.2.0)<br>SeuratDisk (0.0.0.9020)<br>SeuratWrappers (0.3.1)<br>velocyto.R (0.6)</p> <p>Howto:&nbsp;Execute all scripts in order by first changing into the directory, and then executing the script:</p> <pre><code>cd 00_QC; Rscript 00_QC.R; cd ..</code></pre>

opengpl-3.0-or-laterDec 2023View details →

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Allen Brain Atlas

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allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record