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400 results for “cultivar”
Figure 3 in Effect of a short-cycle apple tree cultivar on oriental fruit moth (Lepidoptera: Tortricidae) development and larval behavior
Figure 3. General relationship between the total number of eggs (TNE) and duration of egg-laying activity (DELA) after oviposition of 90% of eggs by Grapholita molesta in first and fourth (dark column) generation under different diets.
Figure 1 in Determination of the ursolic and oleanolic acids content with the antioxidant capacity in apple peel extract of various cultivars
Figure 1. Location of the apple collection (indicated in black dot) in Western Cape, South-Western coast part of South Africa.
Fig. 1 in Biology and reproductive capacity of Spodoptera eridania (Cramer) (Lepidoptera, Noctuidae) in different soybean cultivars
Fig. 1. Duration (days) and survival (%) of larval instars of Spodoptera eridania fed on different soybean cultivars. Means followed by the same letter differed by Kruskal–Wallis test at 5%. nsNot significant according to Kruskal–Wallis (p> 0.05). *Due to the low number of individuals, it was not possible to apply statistical tests.
Data from: Variable mesophyll conductance among soybean cultivars sets a tradeoff between photosynthesis and water-use-efficiency
Photosynthetic efficiency is a critical determinant of crop yield potential, though it remains below the theoretical optimum in modern crop varieties. Enhancing mesophyll conductance, i.e. the rate of carbon dioxide diffusion from substomatal cavities to the sites of carboxylation, may increase photosynthetic and water use efficiencies. To improve water-use-efficiency mesophyll conductance should be increased without concomitantly increasing stomatal conductance. Here we partition variance in mesophyll conductance to within and among cultivar components across soybeans grown under both controlled and field conditions, and examine the covariation of mesophyll conductance with photosynthetic rate, stomatal conductance, water-use-efficiency and leaf mass per area. We demonstrate that mesophyll conductance varies more than 2-fold and that 38% of this variation is due to cultivar identity. As expected mesophyll conductance is positively correlated with photosynthetic rates. However, a strong positive correlation between mesophyll and stomatal conductance among cultivars apparently impedes positive scaling between mesophyll conductance and water-use-efficiency in soybean. Contrary to expectations, photosynthetic rates and mesophyll conductance both increased with increasing leaf mass per area. The presence of genetic variation for mesophyll conductance suggests there is potential to increase photosynthesis and mesophyll conductance by selecting for greater leaf mass per area. Increasing water-use-efficiency though, is unlikely unless there is simultaneous stabilizing selection on stomatal conductance.
Data from: Whole genome sequencing of elite rice cultivars as a comprehensive information resource for marker assisted selection
Current advances in sequencing technologies and bioinformatics revealed the genomic background of rice, a staple food for the poor people, and provided the basis to develop large genomic variation databases for thousands of cultivars. Proper analysis of this massive resource is expected to give novel insights into the structure, function, and evolution of the rice genome, and to aid the development of rice varieties through marker assisted selection or genomic selection. In this work we present sequencing and bioinformatics analyses of 104 rice varieties belonging to the major subspecies of Oryza sativa. We identified repetitive elements and recurrent copy number variation covering about 200 Mbp of the rice genome. Genotyping of over 18 million polymorphic locations within O. sativa allowed us to reconstruct the individual haplotype patterns shaping the genomic background of elite varieties used by farmers throughout the Americas. Based on a reconstruction of the alleles for the gene GBSSI, we could identify novel genetic markers for selection of varieties with high amylose content. We expect that both the analysis methods and the genomic information described here would be of great use for the rice research community and for other groups carrying on similar sequencing efforts in other crops.
Drought stress and plant cultivar type affect demographic responses of herbivorous insects: a case study with the rose-grain aphid, Metopolophium dirhodum, (Hemiptera: Aphididae)
<p>Raw data files of "the effect of water stress on demographic features of aphid <em>Metopolophium dirhodum on two cultivars"</em></p>
Fig. 2 in Steroidal glycosides from the Vietnamese cultivar Cordyline fruticosa "Fairchild red"
Fig. 2. Structures of the known compounds 13 and 14.
Fig. 1 in Steroidal glycosides from the Vietnamese cultivar Cordyline fruticosa "Fairchild red"
Fig. 1. Structures of the previously undescribed compounds 1–12.
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>
Fig. 2 in Transcriptome profiling of two Dactylis glomerata L. cultivars with different tolerance in response to submergence stress
Fig. 2. Venn diagram of differentially expressed genes (DEGs).
GBS data of seven Brassica cultivars from Pakistan
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Validation of the best bet Urochloa (Brachiaria) grass cultivars for increasing feed availability and improve livestock productivity in selected sites in Kenya
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Data from: Variable mesophyll conductance among soybean cultivars sets a tradeoff between photosynthesis and water-use-efficiency
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Data from: Relative performance of non-local cultivars and local, wild populations of switchgrass (Panicum virgatum) in competition experiments
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Data from: SSR-marker analysis of the intracultivar phenotypic variation discovered within 3 soybean cultivars
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Data from: Generation of transcript assemblies and identification of single nucleotide polymorphisms from seven lowland and upland cultivars of switchgrass
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Data from: Whole genome sequencing of elite rice cultivars as a comprehensive information resource for marker assisted selection
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Data from: No effect of seed source on multiple aspects of ecosystem functioning during ecological restoration: cultivars compared to local ecotypes of dominant grasses
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Effect of planting density on growth characteristics and grain yield increase in successive cultivations of two rice (Oryza sativa L.) cultivars
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The genotypic data of elite European cultivar panel comprising 358 winter and 14 summer wheat varieties released from 1975 to 2007 at different marker densities
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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.
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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.