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2,121 results for “trapping”
Fig. 5 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 5. Recapture percentages of sterile and wild Anastrepha ludens and Anastrepha obliqua in 2 types of mass trapping devices. For each species and strain, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 3 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 3. Recapture percentages of sterile Anastrepha ludens and Anastrepha obliqua flies in Multilure® traps in plots with different bait station devices. For each species, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 1 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 1. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps bait- ed with torula yeast borax solution or cucumber volatile plugs at low-capture sites (B, C, and E). Data were pooled among sites and over sampling weeks as described in the text. Bar heights represent means (± 1 SE) of 270 values (3 sites × 15 traps per trap type × 6 wk).
Fig. 2 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 2. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps bait- ed with torula yeast borax solution or cucumber volatile plugs over an 8 wk period at the intermediate-capture site (A). Points represent means (± 1 SE) of 15 traps per lure type.
Fig. 3 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 3. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps baited with torula yeast borax solution or cucumber volatile plugs over a 6 wk period at the high-capture site (D). Points represent means (± 1 SE) of 10 traps per lure type.
Fig. 3 in Bottlenose dolphins (Tursiops truncatus) do also cast neutrophil extracellular traps against the apicomplexan parasite Neospora caninum
Fig. 3. Dose, kinetic and functional inhibition assays of N. caninum tachyzoites-triggered NET formation in dolphins. PMN were incubated with tachyzoites, zymosan (1 mg/ ml, positive control) or plain medium (negative control) at different ratios (a; PMN: tachyzoites = 1:1, 1:2, 1:3) and time periods (b; 30, 60 and 90 min). To prove the DNA nature of NETs, the samples were treated with DNase I (a; 15 min). Moreover, cetacean PMN cells were pre-treated with NOX-inhibitor (b; DPI, 10 MM) for 30 min prior to N. caninum stimulation (1:3 ratio; 90 min). After incubation, all samples were analyzed for extracellular DNA by quantifying Pico Green ®-derived fluorescence intensities. Each condition was performed in duplicates. Geometric means of three PMN donors. Differences were regarded as significant at a level of p <0.05 (*) and p <0.01 (**).
Fig. 2 in Bottlenose dolphins (Tursiops truncatus) do also cast neutrophil extracellular traps against the apicomplexan parasite Neospora caninum
Fig. 2. Neospora caninum tachyzoite-triggered dolphin NET structures (SEM) and co-localization of extracellular DNA with histones (H1, H2A/H2B, H3 and H4), NE, MPO and PTX. (a‾d) Scanning electron microscopy (SEM) analyses revealed NETs being formed by dolphin PMN after co-culture with N. caninum tachyzoites. (a) Mesh of DNA-structures (white arrow) derived from dolphin PMN attached to N. caninum-tachyzoites (black arrows). (b) Intact cetacean-PMN (black stars) derived a fine filaroid structure (white arrow) being attached to tachyzoites (black arrows). (c) Conglomerates of several tachyzoites (black arrow) being entrapped in a rather chunky meshwork of cetacean-PMN-released thicker extracellular filaments (white arrow) (d) Dolphin PMN activated (black star) entrapping diverse N. caninum-tachyzoites (black arrows). (e‾l) Co-cultures of dolphin PMN and N. caninum tachyzoites were fixed, permeabilized, stained for analysis of co-localization (i-l; merge, white arrows) of extracellular DNA (e-h; red; Sytox Orange ®) and classical NETs components (all green, white arrows) such as histones (i), NE (j), MPO (k) and pentraxin (l). (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 Bottlenose dolphins (Tursiops truncatus) do also cast neutrophil extracellular traps against the apicomplexan parasite Neospora caninum
Fig. 1. Minimally-invasive blood extraction method for cetaceans. (a) Puncture of the ventral superficial fluke plexus with a fine needle attached to infusion system and one syringe to create a vacuum for blood extraction. (b) Professional trainers performed physical restraint of one dolphin using whistle to give a positive reinforcement during sampling.
Рис. 1. Карта-схема заповеΔника «БоΛьшехехцирский» и распоΛожение фотоΛовушек на территории. ЛегенΔа: спΛошная черная Λиния — границы заповеΔника; пунктирная Λиния — границы заказника «Хехцирский»; красный кружок — место установки фотоΛовушки Fig. 1. The map of the Bolshekhekhtsirsky State Nature Reserve and the location of camera traps. Legend: solid black line boundaries of the reserve; dotted line — bou in New data on the mammalian fauna of the Bolshekhekhtsirsky Nature Reserve
Рис. 1. Карта-схема заповеΔника «БоΛьшехехцирский» и распоΛожение фотоΛовушек на территории. ЛегенΔа: спΛошная черная Λиния — границы заповеΔника; пунктирная Λиния — границы заказника «Хехцирский»; красный кружок — место установки фотоΛовушки Fig. 1. The map of the Bolshekhekhtsirsky State Nature Reserve and the location of camera traps. Legend: solid black line boundaries of the reserve; dotted line — bou
Data for "Nonlinear Trapping Stiffness of Mid-Air Single-Axis Acoustic Levitators"
<p>Data associated with the manuscript entitled "Nonlinear Trapping Stiffness of Mid-Air Single-Axis Acoustic Levitators".</p>
Amyloid Fibril in a Thermophoretic Trap
<p>Small dataset of a amyloid fibril in a thermophoretic trap imaged by the fluorescence of thioflavin T.</p>
Supporting data for "Snap happy: camera traps are an effective sampling tool when compared to alternative methods"
<p>Author recommendations and response ratios extracted from studies comparing camera traps to another survey method. These data underlie the analyses in a the journal article 'Snap happy: camera traps are an effective sampling tool when compared to alternative methods', published in the journal Royal Society Open Science (https://doi.org/10.1098/rsos.181748). </p>
Research data supporting "Single particle automated raman trapping analysis"
<p>Research raw data supporting the publication:</p> <p>Penders J., et al., Nature Communications. (2018) 9:4256 | DOI: 10.1038/s41467-018-06397</p>
Camera trap fauna survey in Talissieu (France) 2016-2018
<p>Mammals and birds presence identified from a camera trap survey in a mixed forest and fields environment in the Lavours marsh (France). This dataset gathers observations from April 2016 to November 2018 (with some missing days) from a single camera trap (2 successive models) placed in different locations in Talissieu (Ain, France).</p> <p>See <a href="https://doi.org/10.5281/zenodo.2533381">doi:10.5281/zenodo.2533381</a> for more information.</p> <p>location : 5.7211 45.8625 (WGS84)</p> <p>fields :</p> <pre>id_obs <int> identifier date_heure <dttm> UTC date time of observation (%Y-%m-%dT%H:%M:%SZ) cd_nom_taxref <int> TAXREF taxon identifier see https://inpn.mnhn.fr/programme/referentiel-taxonomique-taxref taxref_cd_ref <int> TAXREF valid taxon identifier taxon <chr> taxon name (binomial) espece <chr> taxon name (vernacular, french) nom_complet <chr> taxon name (binomial with author) nom_complet_html <chr> taxon name (binomial italicized, with author) classe <chr> class ordre <chr> order famille <chr> family rang <chr> rank (ES : species, GN : genus, FM : family, OR : order, CL : class) effectif <int> number of individuals sexe <chr> sex type <chr> V: visual direction <chr> direction of travel (mostly blank) temperature <int> ambiant temperature (°C) duree_estimee_min <int> duration in frame (min) rem_obs <chr> observation note id_session <int> session identifier debut_session <dttm> session date time start UTC (%Y-%m-%dT%H:%M:%SZ) fin_session <dttm> session date time end UTC (%Y-%m-%dT%H:%M:%SZ) duree_session_h <int> session duration (h) rem_session <chr> session note id_localisation <int> camera trap location identifier lieu <chr> camera trap location name x_wgs84 <dbl> camera trap longitude (decimal degrees WGS84) y_wgs84 <dbl> camera trap latitude (decimal degrees WGS84) alti <int> camera trap altitude (m, NGF) azimuth <int> camera trap azimuth (°) habitat <chr> habitat type environnement <chr> local environment type cible <chr> target camera <chr> camera model id_etude <int> study identifier nom_etude <chr> study name date <date> observation date (%Y-%m-%d) heure <dbl> observation hour (%I, UTC)</pre> <p> </p>
Uganda Malaise trapping 2014–2015 background data
<p>This dataset contains the background data to the Uganda Malaise trapping 2014 – 2015. We trapped flying insects for a year in tropical forest in Kibale National Park. The sampling itself is described separately, in the <a href="https://doi.org/10.1098/rsos.190913">associated paper</a>. This dataset contains background data such as the weather, vegetation around our traps, maps and descriptions of the trap sites, and data on the 876 insect samples. It also contains the scripts used to process and clean up the data.</p> <p>The seven files in folder "1 Processed data" will usually be of the greatest interest. They contain ready-to-use data on GPS tracks and waypoints, vegetation, weather, trap sites and samples.</p>
Data from the publication "The effect of moth trap type on size and composition in British Lepidoptera"
<p>Data from a study looking at differences in efficiency between three kinds of Robinson type light traps for catching moths. These data are the following: 1. Counts of moths of different families from three different trap types across six trapping nights. 2. Species level counts for the subset of the above defined as macromoths. 3. 300-850nm electromagnetic spectra of all three traps made using a UV/visible spectrometer. 4. Weather data for the trapping period provided by the staff of Juniper Hall field centre.</p>
Figures 2-4 in Biology of a trap-nesting wasp of one species the ground-nesting Liris (Hymenoptera: Crabronidae) from the Atlantic Forest of southern Brazil
Figures 2-4. (2) 0.7 cm diameter trap-nest showing nest structures: closure plug (cp) and brood cell with cocoon (bc); (3) adult female; (4) cocoon. Scale bars: 2= 10 mm, 3-4 = 1 mm.
Figure 2 in Trapping Male Melon Flies, Zeugodacus cucurbitae (Coquillett) (Diptera: Tephritidae), Using Mixtures of Zingerone and Cue-Lure in the Field
Figure 2. Mean (±SE) melon flies (Z. cucurbitae) captured weekly in individual traps. "ZN" and "CL" denote zingerone and cue-lure, respectively. Each trap contains 5 grams of total lure with percentages of ZN and CL given.
Figure 1 in Trapping Male Melon Flies, Zeugodacus cucurbitae (Coquillett) (Diptera: Tephritidae), Using Mixtures of Zingerone and Cue-Lure in the Field
Figure 1. Experimental layout of Ho Farms in Kahuku, Oahu, Hawaii. Dark circles and brackets denote individual traps and blocks, respectively. Tomato and cucumber fields measured 0.8 ha in size, while the eggplant field measured 1.0 ha.
Figure 4 in Capture of Mediterranean Fruit Flies and Melon Flies (Diptera: Tephritidae) in Food-Baited Traps in Hawaii
Figure 4. Numbers of female and male C. cucurbitae captured in Multilure traps baited with torula yeast/borax pellets (TY) or Ceratrap (CT) over the 6-week sampling period in January–February 2015. Bar heights represent averages of 15 traps per bait type; whiskers represent + 1 SE.
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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)
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.