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369 results for “droplet”
Fig.ç6.Ec hinoderes ohtsukai sp. nov., holotype, male (ZIHU 3976), Nomarski photomicrographs. A, Segments 1 and 2, ventral view; B, segments 4 and 5, ventral view. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; lvt, lateroventral tubule; pac, pachycyclus; pf, pectinate fringe; rss, rounded sensory spot. in A New Brackish-water Species of Echinoderes (Kinorhyncha: Cyclorhagida) from the Seto Inland Sea, Japan
Fig.ç6.Ec hinoderes ohtsukai sp. nov., holotype, male (ZIHU 3976), Nomarski photomicrographs. A, Segments 1 and 2, ventral view; B, segments 4 and 5, ventral view. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; lvt, lateroventral tubule; pac, pachycyclus; pf, pectinate fringe; rss, rounded sensory spot.
Fig.ç5.Ec hinoderes ohtsukai sp. nov., holotype, male (ZIHU 3976), Nomarski photomicrographs. A, Segments 1 and 2, dorsal view; B, segment 4, dorsal view. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; mds, middorsal spine; pac, pachycyclus; pf, pectinate fringe; ps, perforation site; rss, rounded sensory spot. in A New Brackish-water Species of Echinoderes (Kinorhyncha: Cyclorhagida) from the Seto Inland Sea, Japan
Fig.ç5.Ec hinoderes ohtsukai sp. nov., holotype, male (ZIHU 3976), Nomarski photomicrographs. A, Segments 1 and 2, dorsal view; B, segment 4, dorsal view. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; mds, middorsal spine; pac, pachycyclus; pf, pectinate fringe; ps, perforation site; rss, rounded sensory spot.
Fig.ç7.Ec hinoderes ohtsukai sp. nov., paratype, female (ZIHU 3980), Nomarski photomicrographs. A, Segments 5 and 6, ventral view; B, segments 8 and 9, ventral view. Abbreviations: dss, droplet-shaped sensory spot; gco2, modi ed glandular cell outlet type II; lvt, lateroventral tubule; si, sieve plate; sp, sternal plate; tp, tergal plate. in A New Brackish-water Species of Echinoderes (Kinorhyncha: Cyclorhagida) from the Seto Inland Sea, Japan
Fig.ç7.Ec hinoderes ohtsukai sp. nov., paratype, female (ZIHU 3980), Nomarski photomicrographs. A, Segments 5 and 6, ventral view; B, segments 8 and 9, ventral view. Abbreviations: dss, droplet-shaped sensory spot; gco2, modi ed glandular cell outlet type II; lvt, lateroventral tubule; si, sieve plate; sp, sternal plate; tp, tergal plate.
Fig.ç3.Ec hinoderes ohtsukai sp. nov., scanning electron micrographs. A, B, Paratype, female (ZIHU 3983); C–E, paratype, male (ZIHU 3982). A, General habitus, lateral view; B, neck and segments 1–4, lateral view; C, enlargement of segment 7, lateral view; D, enlargement of segment 9, lateral view; E, enlargement of segments 10 and 11, lateroventral view. Abbreviations: ch, cuticular hair; dss, droplet-shaped sensory spot; gco2, modi ed glandular cell outlet type II; ldt, laterodorsal tubule; pf, pectinate fringe; po, pore; ps1, penile spine 1; ps2, penile spine 2; ps3, penile spine 3; rss, rounded sensory spot; si, sieve plate; ss, sensory spot. in A New Brackish-water Species of Echinoderes (Kinorhyncha: Cyclorhagida) from the Seto Inland Sea, Japan
Fig.ç3.Ec hinoderes ohtsukai sp. nov., scanning electron micrographs. A, B, Paratype, female (ZIHU 3983); C–E, paratype, male (ZIHU 3982). A, General habitus, lateral view; B, neck and segments 1–4, lateral view; C, enlargement of segment 7, lateral view; D, enlargement of segment 9, lateral view; E, enlargement of segments 10 and 11, lateroventral view. Abbreviations: ch, cuticular hair; dss, droplet-shaped sensory spot; gco2, modi ed glandular cell outlet type II; ldt, laterodorsal tubule; pf, pectinate fringe; po, pore; ps1, penile spine 1; ps2, penile spine 2; ps3, penile spine 3; rss, rounded sensory spot; si, sieve plate; ss, sensory spot.
Fig.ç2.Ec hinoderes ohtsukai sp. nov., camera lucida drawings. A, B, Holotype, male (ZIHU 3976), entire animal, dorsal and ventral view, respectively; C, D, allotype, female (ZIHU 3977), segments 9–11, dorsal and ventral view, respectively. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; ldt, laterodorsal tubule; lts, lateral terminal spine; lvt, lateroventral tubule; mds, middorsal spine; ne, neck; ps, penile spine; rss, rounded sensory spot; si, sieve plate. in A New Brackish-water Species of Echinoderes (Kinorhyncha: Cyclorhagida) from the Seto Inland Sea, Japan
Fig.ç2.Ec hinoderes ohtsukai sp. nov., camera lucida drawings. A, B, Holotype, male (ZIHU 3976), entire animal, dorsal and ventral view, respectively; C, D, allotype, female (ZIHU 3977), segments 9–11, dorsal and ventral view, respectively. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; ldt, laterodorsal tubule; lts, lateral terminal spine; lvt, lateroventral tubule; mds, middorsal spine; ne, neck; ps, penile spine; rss, rounded sensory spot; si, sieve plate.
A Multiplexed Cell-Free Assay to Screen for Antimicrobial Peptides in Double Emulsion Droplets
<p>Data underlying the figures in the publication “A Multiplexed Cell-Free Assay to Screen for Antimicrobial Peptides in Double Emulsion Droplets”, published in <em>Angew. </em><em>Chem. Int. Ed.,</em> <strong>2022</strong>, e202114632.</p> <p><a href="https://onlinelibrary.wiley.com/doi/10.1002/anie.202114632">https://onlinelibrary.wiley.com/doi/10.1002/anie.202114632</a></p> <p> </p> <p>Table of contents:</p> <p><strong>1. Figure 1b</strong>: Bright-field image of the double emulsions droplets produced on the microfluidic chip (scale bar 40 μm).</p> <p><strong>2. Figure 1c</strong>: Source video of the image in <em>Figure 1c</em>. Overlaid fluorescence and bright-field image of a double emulsion in a hydrodynamic trap, containing LUVs loaded with a self-quenching concentration of SRB in the cell-free extract, showing background fluorescence (scale bar 20 μm).</p> <p><strong>3. Figure 2a</strong>: Excel file containing the experimental data for <em>Figure 2a</em>. Cell-free protein production. Cell-free production of sfGFP in double emulsion (DE) droplets. The expression and folding of sfGFP was confirmed by the increase of fluorescence at 516 nm (ex. 488 nm). The dashed ribbon represents standard deviation (n=150).</p> <p><strong>4. Figure 2c</strong>: Excel files containing the experimental data for <em>Figure 2c</em>. Mean fluorescence intensities of b) after incubation at room temperature for 16 hours. no DNA: DEs without any alpha-hemolys in plasmid DNA(n=107), α-HL:DEs with the alpha-hemolys in plasmid DNA(n=258), SDS: double emulsions without any alpha-hemolys in plasmid DNA, exposed to a solution of 0.5% SDS in buffer throughout the incubation (n=204).</p> <p><strong>5. Figure 2d</strong>: Excel file containing the experimental data for <em>Figure 2d</em>. Fluorophore leakage kinetics from mammalian-like LUVs with SRB and from bacteria-like LUVs with 6-FAM, induced by the cell-free expression of pneumolysin in a 384 well-plate, starting at time 0. Fractional fluorescence (fF) is calculated by setting the zero level to the vesicle fluorescence in the absence of DNA, and the maximum level of fluorescence, scaled to a value of 1, to the value obtained by lysing the vesicles with 0.5% SDS. Solid lines represent the average of three independent reactions visible below.</p> <p><strong>6. Figures 2e and 2f</strong>: FACS data for <em>Figures 2e</em> and <em>2f</em>.</p> <p><strong>7. Figure 3a</strong>: Excel file containing the experimental data for <em>Figure 3a</em>. Fluorophore leakage kinetics from mammalian-like LUVs with SRB and bacteria-like LUVs with 6-FAM, induced by the cell-free expression of meucin-25 in a 384 well-plate. Each well contained 8 nM of plasmid (Supporting Information Table 1). Solid lines represent the average of three technical replicates displayed as well (the lines are overlapping, thus not visible).</p> <p><strong>8. Figure 3c</strong>: Excel file containing the experimental data for <em>Figure 3c</em>. Bacterial viability assay with increasing meucin-25 concentrations, measured by flow cytometry. Propidium iodide (PI) cannot pass intact bacterial membranes and only intercalates the DNA of permeabilized dead bacteria (“PI positive”). Constitutively expressed sfGFP proteins normally efficiently retained in intact bacterial cells (“GFPpositive”) but lost in suitably permeabilized cells. Error bars indicate standard deviation (n=10000).</p> <p><strong>9. Figure SI_2</strong>: Excel files containing the experimental data for <em>Supplementary Figure 2</em>.</p> <p><strong>10. Figure SI_3</strong>: Excel file containing the experimental data for <em>Supplementary Figure 3</em>.</p> <p><strong>11. Figure SI_4a</strong>: Excel files containing the experimental data for <em>Supplementary Figure 4a</em>.</p> <p><strong>12. Figure SI_4b</strong>: Excel files containing the experimental data for <em>Supplementary Figure 4b</em>.</p> <p><strong>13. Figure SI_5</strong>: Excel files containing the experimental data for <em>Supplementary Figure 5</em>.</p> <p><strong>14. Figure SI_6</strong>: Excel files containing the experimental data for <em>Supplementary Figure 6</em>.</p> <p> </p> <p> </p>
OPTIMA - average droplet velocity per droplet size interval - carrot boom sprayer
<p>Spray droplet velocity (average ± SD; m/s) per droplet size interval for 9 nozzle types, measured at 300 kPa and 50 cm below the nozzle using a PDPA laser based measuring set-up.</p> <p>Read 'Info' tab for more information.</p> <p>Data presented in Zwertvaegher et al. (2022). Boom sprayer optimizations for bed-grown carrots at different growth stages based on spray distribution and droplet characteristics. Pest Management Science. https://onlinelibrary.wiley.com/doi/10.1002/ps.6792 </p>
OPTIMA - droplet characteristics incl. air support data - bed-grown carrots boom sprayer
<p>Spray droplet size and velocity characteristics data of 4 nozzle types at 4 air support settings, measured at 300 kPa and 50 cm below the nozzle using a PDPA laser based measuring set-up.</p> <p>Read 'Info' tab for more information.</p> <p>Data presented in Zwertvaegher et al. (2022). Boom sprayer optimizations for bed-grown carrots at different growth stages based on spray distribution and droplet characteristics. Pest Management Science. https://onlinelibrary.wiley.com/doi/10.1002/ps.6792 </p>
OPTIMA - droplet characteristics data - bed-grown carrots boom sprayer
<p>Spray droplet size and velocity characteristics data of 9 nozzle types, measured at 300 kPa and 50 cm below the nozzle using a PDPA laser based measuring set-up.</p> <p>Read 'Info' tab for more information.</p> <p>Data presented in Zwertvaegher et al. (2022). Boom sprayer optimizations for bed-grown carrots at different growth stages based on spray distribution and droplet characteristics. Pest Management Science. https://onlinelibrary.wiley.com/doi/10.1002/ps.6792 </p>
Water Droplet Evaporation Profiles Calculated Using SADKAT Model
<p>Evaporation profiles of pure water droplets calculated using SADKAT model.</p> <p>Initial size: 25 µm</p> <p>Temperature range: 278.15 - 343.15 K</p> <p>RH range: 0 - 100 %</p> <p>Particle motion is ignored (gravity = 0 m^2/s) in these calculations.</p> <p>Evaporation profiles are saved individually as comma separated .txt files.</p> <p>Data is also saved as .npy files, containing lists of evaporation profiles. These may be accessed using Python 3 with the Numpy and Pandas libraries.</p>
Raw data for "Fluorescence crosstalk reduction by modulated excitation-synchronous acquisition for multispectral analysis in high-throughput droplet microfluidics."
<p>Raw data to quantify the crosstalk reduction and signal resolution improvement by MESA used in Figure 3 and 4.</p> <p><br> </p>
Data for: Schaub et al., Impact of Organic Compounds on the Stability of Influenza A Virus in deposited 1-µl droplets
<p><strong>Experimental data</strong></p> <p>This folder contains the experimental data to the figures shown in the main manuscript and Supporting Information.</p> <p>Figure 1: inactivation data after 0 and 60 min for 1-μl droplet experiments at various RH in PBS, SLF and nasal mucus (infectivity titer and genomic copy enumeration).</p> <p>Figure 3: inactivation data after 0 and 60 min for 1-μl droplet experiments at 60% RH in SLF derivatives (infectivity titer and genomic copy enumeration).</p> <p>Figure 4: inactivation data after 0 and 60 min for 1-μl droplet experiments at 60% RH in various albumin:NaCl mass ratios (infectivity titer and genomic copy enumeration).</p> <p>Figure 5: inactivation data after 0 and 60 min for 1-μl droplet experiments at 60% RH with various proteins (infectivity titer and genomic copy enumeration).</p> <p>Figure S1: Control in bulk for data from Figure 1 (infectivity titer).</p> <p>Figure S2: Recovery fraction for data from Figure 1 (GC/GC<sub>0</sub>). </p> <p> </p> <p><strong>Abbrevations used:</strong></p> <p>GC = Genomic Copies</p> <p>LoQ = Limit of Quantification</p> <p>PFU = Plaque Forming Unit</p> <p>ul = microliter</p>
Cloud droplet growth due to supersaturation fluctuations in stratiform clouds
<p>Datasets with numerical setups and direct numerical simulation (DNS) data for "Cloud-droplet growth due to supersaturation fluctuations in stratiform clouds", <em>Atmosph. Chem. Phys.</em>, DOI: https://doi.org/10.5194/acp-2018-644</p>
Critical droplet properties for particles containing 6 pollenkitts evaluated with 4 Köhler models for the study "Cloud condensation nuclei activity of six pollenkitts and the influence of their surface activity" by Prisle et al. (2019)
<p>Critical droplet supersaturation and surface tension, calculated with 3 thermodynamic Köhler models presented in Prisle et al., <em>Surfactants in cloud droplet activation: mixed organic-inorganic particles</em>, Atmospheric Chemistry and Physics, 10, 5663-5683, doi:10.5194/acp-10-5663-2010, and with the model presented in Prisle et al., <em>A simple representation of surface active organic aerosol in cloud droplet formation</em>, Atmospheric Chemistry and Physics, 11, 4073-4083, doi: 10.5194/acp-11-4073-2011, for particles of varying size comprising 6 pollenkitts and mixtures with ammonium sulfate.</p>
Microfluidic solvent extraction of poly(vinyl alcohol) droplets: effect of polymer structure on particle and capsule formation
<p>Raw data from the majority of figures of our 2018 Soft Matter Paper:</p> <p>Selected datasets from figures are excluded, owing to them being transformations of the raw data provided in the same figure.</p> <p> </p>
Fig. 1. A in Fossilized pollination droplet in a new seed genus from the Middle Triassic of Nidpur, India
Fig. 1. A. Map showing the location of Nidpur locality in Madhya Pradesh, India. B. Geological map of north-west Singrauli Coalfield showing Marhwas area, where the Nidpur beds are situated. Circles with dots, yielding samples taken along the traverses; asterisk, position of samples NID-4, 5, 8, 10. F-1–3, faults. Modified after Raja Rao (1983).
Fluorescent oil droplet in developing zebrafish embryo
<p>Multichannel image data of fluorescently-labelled oild droplet injected into developing Zebrafish embryo. The frame rate is 3min and the interfacial tension of the injected droplet equals 3.3 mN/m²</p>
How droplets dry on stretched soft substrates
<p>Raw data contain videos of drop evaporation, nanofocus and SEM images of deposition patterns, and SEM images of silica nanoparticles related to the paper:</p> <p>"How droplets dry on stretched soft substrates (2022)".</p> <p> </p>
Droplet-Based Microfluidics Platform for the Synthesis of Single-Atom Heterogeneous Catalysts
<p>Data set supporting the publication of : "Droplet-Based Microfluidics Platform for the Synthesis of Single-Atom Heterogeneous Catalysts" (<a href="https://doi.org/10.1002/sstr.202200284">https://doi.org/10.1002/sstr.202200284</a>) by T. Moragues, S. Mitchell, D. Faust Akl, J. Pérez-Ramírez, and A. deMello.</p>
A Note on Aerosol Processing by Droplet Collision-Coalescence
<p>Simulation results for the above-mentioned publication. The files *_out.nc contain spectral data, *_out_time.nc time series. The prefixes small, medium, and large refer to the initial aerosol size distribution.</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.