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Figure 3 in Multiple resistance to primary pests of grain sorghum hybrids: Spodoptera frugiperda (Lepidoptera: Noctuidae), Diatraea saccharalis (Lepidoptera: Crambidae), and Diceraeus melacanthus (Hemiptera: Pentatomidae)
Figure 3 Dendrogram of cluster analysis based on the Euclidean distance and grouping by UPGMA regarding the number of healthy and bored internodes, gallery length, and infestation intensity by Diatraea saccharalis in grain sorghum hybrids.
Figure 4 in Multiple resistance to primary pests of grain sorghum hybrids: Spodoptera frugiperda (Lepidoptera: Noctuidae), Diatraea saccharalis (Lepidoptera: Crambidae), and Diceraeus melacanthus (Hemiptera: Pentatomidae)
Figure 4 Dendrogram of cluster analysis based on the Euclidean distance and grouping by UPGMA regarding scores of damage by Diceraeus melacanthus in grain sorghum hybrids at 12, 19, and 26 days after infestation.
Supplementary material 1 from: Zumbado-Ulate H, Schartel TE, Simmons GS, Daugherty MP (2023) Assessing the risk of invasion by a vineyard moth pest guild. NeoBiota 86: 169-191. https://doi.org/10.3897/neobiota.86.100579
Assessing the risk of invasion by a vineyard moth pest guild
Cultivar-Specific Responses of Tomato Essential Oils to Tomato Red Spider Mite (Tetranychus evansi): Implications for Pest Management
<p>The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p>License: The dataset is made available under the Creative Commons Attribution 4.0 International License.The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p>License: The dataset is made available under the Creative Commons Attribution 4.0 International License.The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p>License: The dataset is made available under the Creative Commons Attribution 4.0 International License.The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p>License: The dataset is made available under the Creative Commons Attribution 4.0 International License.The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p>License: The dataset is made available under the Creative Commons Attribution 4.0 International License.The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p>License: The dataset is made available under the Creative Commons Attribution 4.0 International License.The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p>License: The dataset is made available under the Creative Commons Attribution 4.0 International License.The dataset contains comprehensive experimental data and analytical results from a study conducted to explore the interaction between tomato essential oils and the tomato red spider mite (<em>T. evansi</em>). The study involved essential oils extracted from seven distinct tomato accessions (<em>Solanum lycopersicum L.</em>), namely accessions 1 (money maker), 13 (marglobe), 51 (PI 134417), 162 (JKUAT 22/202183), 182 (JKUAT 19), 428 (LA 2185), and 460 (LO 3279). The dataset encompasses the following components:</p> <ol> <li><strong>Essential Oil Extraction Data:</strong> Details of the steam distillation process used to extract essential oils from each tomato accession, including extraction time and yield.</li> <li><strong>Spider Mite Response Data:</strong> Results from Y-tube olfactometer and glass slide bioassays measuring the response of <em>T. evansi</em> to essential oils from different accessions. Responses include attraction, repulsion, or neutrality.</li> <li><strong>Gas Chromatography/Mass Spectrometry (GC/MS) Analysis:</strong> Analytical data presenting the chemical composition of volatile compounds released by the essential oils. Quantitative and qualitative variations among accessions are documented, highlighting key compounds influencing mite behavior.</li> <li><strong>Statistical Analysis:</strong> Statistical tests conducted to assess significant differences in mite responses to various essential oil concentrations and accessions.</li> <li><strong>Visualizations:</strong> Graphs, charts, and figures representing mite behavior responses, essential oil composition variations, and concentration-related effects.</li> </ol> <p>The dataset contributes valuable information to the field of natural pest management and plant-arthropod interactions. Researchers, agronomists, and entomologists interested in understanding the potential of essential oils for pest control and the importance of phytochemical diversity in pest behavior modulation will find this dataset beneficial for further analysis and validation.</p> <p>By accessing this dataset, researchers can delve into the intricate relationship between tomato essential oils and the behavior of the tomato red spider mite, paving the way for innovative approaches to mitigate pest damage and enhance crop productivity.</p> <p> </p>
Supplementary material 2 from: Seehausen ML, Branco M, Afonso C, Kenis M (2023) Testing a modified version of the EPPO decision-support scheme for release of classical biological control agents of plant pests using Ganaspis cf. brasiliensis and Cleruchoides noackae as case studies. NeoBiota 87: 121-141. https://doi.org/10.3897/neobiota.87.103187
Assessment of Ganaspis cf. brasiliensis
Supplementary material 3 from: Seehausen ML, Branco M, Afonso C, Kenis M (2023) Testing a modified version of the EPPO decision-support scheme for release of classical biological control agents of plant pests using Ganaspis cf. brasiliensis and Cleruchoides noackae as case studies. NeoBiota 87: 121-141. https://doi.org/10.3897/neobiota.87.103187
Assessment of Cleruchoides noackae
FIGURE 1 in Morphological and molecular profiling of an entomopathogenic nematode Steinernema feltiae: Unlocking its biocontrol potential against vegetable insect pests
FIGURE 1. Map showing soil sampling sites for isolation of entomopathogenic nematodes.
Fig. 8 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 8. Energy distribution, on average, per IMF for the SD, SSC, TTC and EDT criteria.
Fig. 12 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 12. Block diagram illustrating the parameter combinations of the experiment performed.
Fig. 4 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 4. Preprocessing, analysis, SVM training and test steps.
Fig. 2 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 2. Setup for the proposed approach.
Fig. 3 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 3. Representation of the upper and lower envelopes (dashed lines) of a signal (solid line).
Fig. 9 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 9. Energy distribution, on average, per IMF for the BWC, RFC, OC and VDS criteria.
Fig. 1 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 1. QG specimen in the adult stage. By Douglas Henrique Bottura Maccagnan, 2021.
Fig. 20 in Empirical mode decomposition applied to acoustic detection of a cicadid pest
Fig. 20. ROC curves.
Modifying PEST for Psoriatic Arthritis Screening
ClinicalTrials.gov study NCT06382051. IPD Sharing: YES. Countries: 1. Publications: 0.
The causes and consequences of pest population variability in agricultural landscapes
Open the record for dataset details and reuse information.
Data from: Landscape-dependent effects of varietal mixtures on insect pest control and implications for farmer profits
Open the record for dataset details and reuse information.
Raw data for: Extreme climate shifts pest dominance hierarchy through thermal evolution and transgenerational plasticity
Open the record for dataset details and reuse information.
Data from: Population genomics of a symbiont in the early stages of a pest invasion
Open the record for dataset details and reuse information.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.