Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
698
datasets available to search
ShareScore release 0.9.0
Dataset results
698 results for “Soybean”
Fig. 2 in Antibiosis in soybean cultivars to Heliothis virescens (Lepidoptera: Noctuidae)
Fig. 2. Principal component analysis plot showing the distribution of different soybean cultivars fed to Heliothis virescens in Urutaí, Goiás, Brazil.
Fig. 1 in Antibiosis in soybean cultivars to Heliothis virescens (Lepidoptera: Noctuidae)
Fig. 1. Dendrogram based on the biological parameters of Heliothis virescens larvae fed different soybean cultivars in Urutaí, Goiás, Brazil. The hierarchical cluster analysis was performed using Ward's method with Euclidean distances as the measure of dissimilarity. The arrow indicates the distance used to separate the groups.
Fig. 3 in Feeding preference and performance of Helicoverpa zea (Lepidoptera: Noctuidae) larvae on various soybean tissue types
Fig. 3. Pupal weights recorded in no-choice assays afer placement of Helicoverpa zea 4th instars on a single soybean tissue type. Letters represent means separation by the Tukey HSD test (α = 0.05) and error bars represent SE. Data marked by an asterisk (*) were omitted from the analysis because no individuals survived to pupation.
Fig. 4 in Feeding preference and performance of Helicoverpa zea (Lepidoptera: Noctuidae) larvae on various soybean tissue types
Fig. 4. Percentage of larval feeding on soybean tissue types from 2nd instar to pupation in choice assays. Values indicated by the same letter are not significantly different according to the Tukey HSD test (α = 0.05).
Fig. 1 in Feeding preference and performance of Helicoverpa zea (Lepidoptera: Noctuidae) larvae on various soybean tissue types
Fig. 1. Percentage of survivors (defined as individuals that reached the pupal stage) in no-choice assays afer placement of Helicoverpa zea 2nd instars on a single soybean tissue type. Letters represent means separation by the Tukey HSD test (α = 0.05) and error bars represent SE. Data marked by an asterisk (*) were omitted from the analysis because no individuals survived to pupation.
Fig. 2 in Feeding preference and performance of Helicoverpa zea (Lepidoptera: Noctuidae) larvae on various soybean tissue types
Fig. 2. Percentage of survivors (defined as individuals that reached the pupal stage) in no-choice assays afer placement of Helicoverpa zea 4th instars on a single soybean tissue type. Letters represent means separation by the Tukey HSD test (α = 0.05) and error bars represent SE. Data marked by an asterisk (*) were omitted from the analysis because no individuals survived to pupation.
Improved genome assembly and annotation of the soybean aphid (Aphis glycines Matsumura)
<p>Updated genome assembly and annotation of <em>Aphis glycines</em> biotype 4.</p> <p><strong>Overview of files included in this release:</strong></p> <p><strong>Frozen release:</strong></p> <p>Updated <em>A. glycines </em>biotype 4 genome assembly: Aphis_glycines_4.v2.1.scaffolds.fa.gz </p> <p>BRAKER2 gene models for updated <em>A. glycines </em>biotype 4 genome assembly: Aphis_glycines_4.v2.1.scaffolds.fa.gff</p> <p>BRAKER2 protein sequences: Aphis_glycines_4.v2.1.scaffolds.fa.gff.aa.fa</p> <p>BRAKER2 nucleotide coding sequences: Aphis_glycines_4.v2.1.scaffolds.fa.gff.CDS.fa</p> <p><strong>Unfiltered raw intermediate genome assemblies:</strong></p> <p>Canu assembly of biotype 4 PacBio data from Wenger et. al. (2017): canu.fa.gz</p> <p>DBG2OLC hybrid assembly of selected biotype 4 MiSeq data and biotype 4 PacBio data from Wenger et. al. (2017): DBG2OLC.fa.gz</p> <p>Merged Canu and DBG2OLC assembly created with quickmerge: quickmerge.fa.gz</p> <p>Pilon polished (2 rounds) quickmerge assembly: quickmerge.pilon_r2.fa.gz</p> <p><strong>Mitochondrial and endosymbiont contigs extracted from the pilon polished quickmerge assembly: </strong></p> <p><em>A. glycines </em>biotype 4 mitochondrial genome: Aphis_glycines_4_Buchnera_v1.fa</p> <p><em>A. glycines </em>biotype 4 <em>Buchnera aphidicola</em> contigs: Aphis_glycines_4_Buchnera_v1.fa</p> <p><em>A. glycines </em>biotype 4 <em>Wolbachia</em> contigs: Aphis_glycines_4_Buchnera_v1.fa</p> <p><strong>Other files:</strong></p> <p>MUSCLE alignment of <em>A. glycines </em>v1, <em>A. glycines </em>biotype 4 v2.1 and <em>Drosophila melanogaster</em> R6.22 Osiris proteins in fasta format: D_mel_v1_v2_osiris.prots.muscle.fasta</p> <p>FastTree Maximum Likelihood phylogeny based on the MUSCLE alignment of Osiris genes in newick format: D_mel_v1_v2_osiris.prots.muscle.FastTree.nwk</p> <p> </p> <p> </p> <p> </p> <p> </p> <p> </p> <p> </p>
Fig. 3 in Biology and reproductive capacity of Spodoptera eridania (Cramer) (Lepidoptera, Noctuidae) in different soybean cultivars
Fig. 3. Total number of eggs and larvae of Spodoptera eridania during the oviposition period in cultivars TMG Tabarana, BRS/MT Pintado, FMT Tucunaré and Monsoy 8757.
Figure 1 in Selection and molecular characterization of Bacillus thuringiensis strains efficient against soybean looper (Chrysodeixis includens) and Spodoptera species
Figure 1 Comparison of growth inhibitory symptoms of Spodoptera frugiperda larvae exposed to Bacillus thuringiensis β-exotoxins after eight days of inoculation. a: Positive control (strain HD-125); b: Negative control (water); c: Strain 773.
Figure 5 in Selection and molecular characterization of Bacillus thuringiensis strains efficient against soybean looper (Chrysodeixis includens) and Spodoptera species
Figure 5 Toxicity of Bacillus thuringiensis strains against three Spodoptera species. Means followed by the same letter do not differ statistically from one another by the Scott-Knott test at the 5% probability level.
Figure 4 in Selection and molecular characterization of Bacillus thuringiensis strains efficient against soybean looper (Chrysodeixis includens) and Spodoptera species
Figure 4 Profile of total and digested trypsin proteins produced by Bacillus thuringiensis strains eficiente against Chrysodeixis includens. (D) Proteins digested with trypsin; MM: SeeBlue® Plus2 Pre-Stained Standard Marker (Invitrogen, USA).
Figure 3 in Selection and molecular characterization of Bacillus thuringiensis strains efficient against soybean looper (Chrysodeixis includens) and Spodoptera species
Figure 3 Plasmid profiles of Bacillus thuringiensis efficient strains against Chrysodeixis includens. a: DNA extraction according to Fagundes et al. (2011); b: DNA extraction using QIAGEN kit (Invitrogen, USA).MM:1 Kb DNA ladder plus (Invitrogen, USA.The red rows indicate megaplasmids.
Fig. 1 in First record of Peridroma saucia Hübner (Lepidoptera: Noctuidae) in transgenic soybeans
Fig. 1. Developmental stages of Peridroma saucia collected in genetically modified soybeans: (A) eggs, (B) larvae and (C) adult emerged in laboratory (scale = 1 cm).
Figure 7 in Assessment of entomopathogenic nematodes and their symbiotic bacteria to control the stink bugs Euschistus heros and Dichelops melacanthus (Heteroptera: Pentatomidae) in the soybean-corn succession system
Figure 7. Corrected mortality (%) of Euschistus heros and Dichelops melacanthus (Abbott's formula) seven days after their exposition to Steinernema diaprepesi AM163 applied on a double layer straw-over-sand substrate, at the rate of 88.4 IJs/cm² (1000 IJs/insect) (**p <0.01; Student's t test).
Figure 8 in Assessment of entomopathogenic nematodes and their symbiotic bacteria to control the stink bugs Euschistus heros and Dichelops melacanthus (Heteroptera: Pentatomidae) in the soybean-corn succession system
Figure 8. Corrected mortality (%) of Dichelops melacanthus (Abbott's formula) seven days after its exposition to Steinernema diaprepesi AM163 and Steinernema carpocapsae IP1 applied on a double layer straw-over-sand substrate, at the rate of 88.4 IJs/cm² (1000 IJs/insect) (p> 0.05; Student's t test).
Figure 9 in Assessment of entomopathogenic nematodes and their symbiotic bacteria to control the stink bugs Euschistus heros and Dichelops melacanthus (Heteroptera: Pentatomidae) in the soybean-corn succession system
Figure 9. Mortality of Euschistus heros adults seven days after their exposition to the nematode Steinernema diaprepesi AM163 applied on the straw at the rate of 88.4 IJs/cm² (1000 IJs/insect), inside greenhouse (**p <0.01; Student's t test).
Figure 6 in Assessment of entomopathogenic nematodes and their symbiotic bacteria to control the stink bugs Euschistus heros and Dichelops melacanthus (Heteroptera: Pentatomidae) in the soybean-corn succession system
Figure 6. Corrected mortality (%) of Euschistus heros adults (Abbott formula) seven days after their exposition to Steinernema diaprepesi AM163 applied on two substrates with two-layer thicknesses, at the rate of 88.4 IJs/cm² (1000 IJs/insect). Averages followed by the same letter in the column do not differ significantly according to the Tukey test 5%.
Figure 3 in Assessment of entomopathogenic nematodes and their symbiotic bacteria to control the stink bugs Euschistus heros and Dichelops melacanthus (Heteroptera: Pentatomidae) in the soybean-corn succession system
Figure 3. Mortality (%) of Euschistus heros adults 7 days after their inoculation with symbiotic bacteria cultures. Xn.: Xenorhabdus. Ph.: Photorhabdus. Averages followed by the same letter do not differ significantly according to the Tukey test 5%.
Figure 5 in Assessment of entomopathogenic nematodes and their symbiotic bacteria to control the stink bugs Euschistus heros and Dichelops melacanthus (Heteroptera: Pentatomidae) in the soybean-corn succession system
Figure 5. Reproduction of Steinernema diaprepesi AM163 in Euschistus heros exposed to different rates of the nematode. Averages followed by the same letter do not differ significantly according to the Tukey test 5%.
Figure 1 in Assessment of entomopathogenic nematodes and their symbiotic bacteria to control the stink bugs Euschistus heros and Dichelops melacanthus (Heteroptera: Pentatomidae) in the soybean-corn succession system
Figure 1. Mortality (%) of Euschistus heros seven days after their exposition to 16 EPNs strains applied on sand substrate, at the rate of 140 IJs/cm² (1000 IJs/insect). Sn.: Steinernema. Ht.: Heterorhabditis. Averages followed by the same letter do not differ significantly according to the Tukey test 5%.
ScienceDex guides
Understand access before you commit
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.