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580 results for “Eradication”
Figure 1 in Lessons learnt from large-scale eradication of Australian swamp stonecrop Crassula helmsii in a protected Natura 2000 site
Figure 1. Locations of the dune slacks (1–5) where measures for eradication of Crassula helmsii were taken.
Figure 2 in Lessons learnt from large-scale eradication of Australian swamp stonecrop Crassula helmsii in a protected Natura 2000 site
Figure 2. Flow chart of the process for large scale eradication of Crassula helmsii on the Island of Terschelling.
Figure 1 in Brodifacoum residues in fish three years after an island-wide rat eradication attempt in the tropical Pacific
Figure 1. Wake Island with the seven sampling locations marked by arrows. Site names include: 1 – Peale Lagoon Side, 2 – Ioke Beach House, 3 – Waterplant Outfall, 4 – Battery Dump Pond, 5 – Southern Runway Windsock (not sampled in this study), 6 – Old AF Beach House, 7 – Nitro Rock. Image courtesy of U.S. Air Force Civil Engineer Center.
Fig. 2 in Comparison of natural and artificial odor lures for nilgai (Boselaphus tragocamelus) and white-tailed deer (Odocoileus virginianus) in South Texas: Developing treatment for cattle fever tick eradication
Fig. 2. Locations of nilgai lure transects (red bars) at the Santa Rosa Ranch near Riviera, TX. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)
Fig. 5 in Comparison of natural and artificial odor lures for nilgai (Boselaphus tragocamelus) and white-tailed deer (Odocoileus virginianus) in South Texas: Developing treatment for cattle fever tick eradication
Fig. 5. Nilgai cow visiting lure site (A) and (B) nilgai bull defecating at offal lure site at the East Foundation's Santa Rosa Ranch, near Riviera, TX.
Figure 1 in The History of Little Fire Ant Wasmannia auropunctata Roger in the Hawaiian Islands: Spread, Control, and Local Eradication
Figure 1. Number of known locations infested with Wasmannia auropunctata on Hawaii island between 1999 and 2007. Data sourced from Conant and Hirayama (2000); Motoki et al. (Motoki et al. 2013), P. Conant (pers. com.) and informal reports from Hawaii Department of Agriculture.
Figure 4 in The History of Little Fire Ant Wasmannia auropunctata Roger in the Hawaiian Islands: Spread, Control, and Local Eradication
Figure 4. Map of Kauai showing location infested by Wasmannia auropuntata (2012). Currently this site is putatively ant free.
Figure 2 in The History of Little Fire Ant Wasmannia auropunctata Roger in the Hawaiian Islands: Spread, Control, and Local Eradication
Figure 2. Location of properties infested with Wasmannia auropunctata in January 2007 prepared by Hawaii Department of Agriculture.
Figure 6 in The History of Little Fire Ant Wasmannia auropunctata Roger in the Hawaiian Islands: Spread, Control, and Local Eradication
Figure 6. Locations of known sites on Oahu infested with Wasmannia auropunctata. (currently the infestation in Mililani and the original infestation in Waimanalo are putatively ant-free)
Figure 8 in From Eradication to Containment: Invasion of French Polynesia by Bactrocera dorsalis (Hendel) (Diptera: Tephritidae) and Releases of Two Natural Enemies: A 17-Year Case Study
Figure 8. Dates of detection of B. dorsalis and introduction of F. arisanus on the various islands of French Polynesia.
Output pathway data for "Income and inequality pathways consistent with eradicating poverty"
<p>This is a dataset presenting GDP and Gini pathways developed for the publication of our article "Income and inequality pathways consistent with eradicating poverty" (forthcoming at ERL) under the SHAPE project (Sustainable development pathways achieving Human well-being while safeguarding the climate And Planet Earth).</p> <p>More info about the SHAPE project is <a href="https://shape-project.org/">here</a>.</p>
Gene drives for vertebrate pest control: realistic spatial modelling of eradication probabilities and times for island mouse populations
Open the record for dataset details and reuse information.
Figure 10 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 10. Varanus bennetti sp. nov., Ngarchelong, Palau (photo by Thibaud Aronson).
Engineering surgical face masks with photothermal and photodynamic plasmonic nanostructures for enhancing filtration and on-demand pathogen eradication_[photothermal properties]
<p>Engineering surgical face masks with photothermal and photodynamic plasmonic nanostructures for enhancing filtration and on-demand pathogen eradication: photothermal properties</p>
Data set of eradication project on Tsuken Island
<p>Host plant survey.csv: Result of host plant surveys</p> <p>SIT.csv: Date and the number of sterile insects released</p> <p>Sweet potato.csv: Result of host plant survey on sweet potato</p> <p>Trap.csv: Result of trap surveys</p>
Eradication Decision Support Tools - Example Data
<p>Example data that can be used with the pest eradication decision support tool Shiny apps. Decision support tools have been developed for</p> <ul> <li>Assessing eradication feasibility</li> <li>Assessing eradication progress</li> <li>Assessing "Proof of Freedom"</li> </ul> <p>Shiny versions of the DST are available at</p> <p><a href="https://landcare.shinyapps.io/EradSim/">Eradication feasibility DST</a> </p> <p><a href="https://landcare.shinyapps.io/eradication_app/">Assessing eradication progress</a></p> <p><a href="https://landcare.shinyapps.io/proofofabsence/">Assessing proof of absence</a></p>
Figure 2 in From Eradication to Containment: Invasion of French Polynesia by Bactrocera dorsalis (Hendel) (Diptera: Tephritidae) and Releases of Two Natural Enemies: A 17-Year Case Study
Figure 2. Monthly captures of B. dorsalis in methyl eugenol traps on Moorea.
Raw and analyzed data for manuscript "In vitro eradication of Candida albicans biofilm through cold atmospheric plasma: Unravelling the interdependence of exposure and voltage in the antifungal mode of action."
<p><strong><span>Raw and analysed data for the manuscript, to be submitted to Journal of Infection and Public Health.</span></strong></p> <p> </p> <p><strong><span>Abstract:</span></strong></p> <p><strong><span>Introduction:</span></strong><span> Since <em>Candida spp</em>.</span> <span>is the fourth leading cause of healthcare-associated infections globally, the need for novel antifungal agents is increasing among scientists. This study investigates the potential of cold atmospheric plasma for <em>C. albicans</em> biofilm treatment. <strong>Methods:</strong> Our research focused on <em>in vitro</em> <em>C. albicans</em> biofilm response to varying parameters of plasma application, specifically the impact of treatment duration and input voltage. Evaluation of plasma influence on <em>C. albicans</em> was assessed with viability, membrane integrity, and oxidative stress measurements, along with observations of biofilm chemical composition and hyphae growth after plasma treatment. <strong>Results and Discussion:</strong> The higher plasma input voltage and increased exposure tme resulted in lower <em>C. albicans</em> cell viability, with complete reductions observed after 5 min plasma treatment duration across all input voltages tested. The effect of plasma treatment was further confirmed with a microscopic examination after BacLight<sup>® </sup>staining.</span> <span>Low (8 V) CAP exposure could potentially lead to a phenomenon known as hormesis, which was observed in <em>C. albicans</em> 24 h growth measurements. Additionally, intracellular oxidative stress assessment further proved that with prolonged treatment times, the intensity of oxidative stress, increased. Plasma treatment also affected the hyphae, which exhibited signs of contraction and compression. The chemical characteristics revealed that increasing plasma voltage and exposure time also have a distinguished impact on lipids, proteins, and carbohydrates, typical constituents of fungi biofilms. <strong>Conclusion:</strong> This study underscores the potential of plasma as a promising approach in combating <em>Candida spp</em>. biofilms, shedding light on the intricate dynamics of its impact on biofilm viability, morphology and composition.</span></p>
Fig. 1 in Comparison of natural and artificial odor lures for nilgai (Boselaphus tragocamelus) and white-tailed deer (Odocoileus virginianus) in South Texas: Developing treatment for cattle fever tick eradication
Fig. 1. The location of the study site (Santa Rosa Ranch) near Riviera, TX.
Fig. 3 in Comparison of natural and artificial odor lures for nilgai (Boselaphus tragocamelus) and white-tailed deer (Odocoileus virginianus) in South Texas: Developing treatment for cattle fever tick eradication
Fig. 3. Lure bucket recessed into soil at each treatment location at the Santa Rosa Ranch.
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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.