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1,997 results for “Rice”
Fig. 6 in Comparison of the effects of neonicotinoids and pyrethroids against Oebalus pugnax (Hemiptera: Pentatomidae) in rice
Fig. 6. Comparison of percent time engaged in feeding activities by rice stink bug adults on treated and untreated rice panicles when given a choice between panicles treated with Karate or untreated and when given a choice between panicles treated with Tenchu or untreated. Control arenas contained two untreated panicles. Experiments were conducted in 2011 (a) and 2012 (b). Bars accompanied by same letter indicate that means on treated and untreated panicles in choice conditions are not significantly different from means on untreated panicles under no choice (control) conditions.
Fig. 3. 2013 in Comparison of the effects of neonicotinoids and pyrethroids against Oebalus pugnax (Hemiptera: Pentatomidae) in rice
Fig. 3. 2013. Mean ± SE rice stink bug nymphs (a) and adults (b) in 10 sweeps on untreated and insecticide treated rice small-plots. Means accompanied by different letters indicate a significant difference across treatments (P <0.05).
Fig. 1. 2011 in Comparison of the effects of neonicotinoids and pyrethroids against Oebalus pugnax (Hemiptera: Pentatomidae) in rice
Fig. 1. 2011. Mean ± SE numbers of rice stink bug nymphs (a) and adults (b) in 10 sweeps in untreated and insecticide-treated rice small-plots. Means accompanied by different letters indicate a significant difference across treatments (P <0.05, LSD). (CY = λ-cyhalothrin, TMX = thiamethoxam, DN = dinotefuran).
Fig. 2. 2012 in Comparison of the effects of neonicotinoids and pyrethroids against Oebalus pugnax (Hemiptera: Pentatomidae) in rice
Fig. 2. 2012. Mean ± SE numbers of rice stink bug nymphs (a) and adults (b) in 10 sweeps on untreated and insecticide-treated rice small-plots. Means accompanied by different letters indicate a significant difference across treatments (P <0.05, LSD). (CY = λ-cyhalothrin, TMX = thiamethoxam, DN = dinotefuran).
Fig. 1 in Rice leaf folder Cnaphalocrocis medinalis (Lepidoptera: Crambidae) on wheat (Triticum aestivum; Poales: Poaceae) in India
Fig. 1. Infestation of wheat by larvae and pupae of Cnaphalocrocis medinalis, and genitalic and morphological characters of adults. A: Damaged leaves with larvae; B: larva in rolled leaf; C: close-up of larva; D: pupa on leaf; E: close-up of pupa; F: adult male; G: male aedeagus; H: female genitalia; I: male genitalia, dorsal. J: male genitalia, ventral. a, androconial hairs; aa, anterior apophysis; bc, bursa copulatrix; c, cornuti; db, ductus bursae; pa, posterior apophysis; s, signum.
Fig. 4 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 4. Temporal dynamics of predator insect diversity (a, diversity index; b, evenness index; c, dominance index; and d, species richness) in rice plots with various treatments (1 application per season).
Fig. 1 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 1. Effects of Virtako on planthopper abundance (mean number ± SE). Means followed by the same lowercase letter are not significantly different (ANOVA and Tukey's HSD test, P> 0.05).
Fig. 3 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 3. Temporal dynamics of total numbers of predators per 50 hills where insecticide was applied (a) as a single application or (b) as 2 applications to rice plots.
Fig. 5 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 5. Temporal dynamics of predator insect diversity (a, diversity index; b, evenness index; c, dominance index; and d, species richness) in rice plots with various treatments (2 applications per season).
Fig. 2 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 2. Effects of Virtako on rice leaffolder abundance (mean number ± SE). Means followed by the same lowercase letter are not significantly different (ANOVA and Tukey's HSD test, P> 0.05).
Fig. 2 in Resistance of rice varieties to Sitophilus oryzae (Coleoptera: Curculionidae)
Fig. 2. Correlaton between the percentage of grains with fissures in the shell and mass of grain consumed by Sitophilus oryzae (Coleoptera: Curculionidae) in 22 rice varietes. 1-Aimoré; 2-Araguaia; 3-BonanÇa; 4-CabaÇu; 5-Caripuna; 6-Carisma; 7-Centro América; 8-ConfianÇa; 9-Curinga; 10-Esmeralda; 11-IRGA 22; 12-Monarca; 13-Pepita; 14-Progresso; 15-Rio Paraguai; 16-Rio Paranaíba; 17-Rio Verde; 18-Sertaneja; 19-Soberana; 20-Tangará; 21-Vencedora; 22-Xingu.
Fig. 1 in Resistance of rice varieties to Sitophilus oryzae (Coleoptera: Curculionidae)
Fig. 1. Preference index of feeding by Sitophilus oryzae (Coleoptera: Curculionidae) on 22 rice varietes.
Processed RNA expression count data from Groen et al.: The strength and pattern of natural selection on rice gene expression
<p>We assessed transcriptome variation in populations of 216 accessions of rice, <em>Oryza sativa</em>, which represented all major varietal groups including indica and japonica. During the 2016 Philippines dry season the accessions were planted in triplicate (with two accessions planted in triplicate three times as replicated checks) in identical alpha-lattice layouts of 660 plots in two fields: a continuously wet paddy, and a field where plants were exposed to intermittent drought in the vegetative and reproductive stages. We measured transcript levels in leaf blades of 50-day-old plants at 33 days after seedling transplant, and 17 days after withholding water in the dry field, using a liquid automation-based 3’ mRNA-seq quantification approach. Samples were multiplexed in batches of 96 per library. Raw sequencing data are available at the SRA in BioProject accession number PRJNA588478. A key to the raw sequencing data in this BioProject can be found in the metadata of the processed RNA expression count data here.</p>
Fig. 2 in (Hem.: Pentatomidae) in flooded rice crop in Southern Brazil Mapping of spatiotemporal distribution of Tibraca limbativentris Stal
Fig. 2. Interpolation maps by multiquadric equations of spatiotemporal distribution of occurrence categories of Tibraca limbativentris [I = no insect (green), II = adult (red), III = nymphs (pink), IV = adult + nymphs (blue)] in flooded rice crop in Southern Brazil, 2011/2012 crop season. *Thematic maps: (A) 11/19/11 [V4]; (B) 12/03/11 [V6]; (C) 12/17/11 [V8/V9]; (D) 01/07/12 [V11]; (E) 01/21/12 [R1]; (F) 02/02/12 [R5]; (G) 02/15/12 [R9]; (H) 02/29/12 [post-harvest = crop residues destroyed]. Phenological stage according to Counce et al. (2000).
Figure 2 in First record of subfamily diapriinae (diaprioidea: diapriidae) from Odisha, with generic level distribution in rice ecosystems
Figure 2. (A)Rice field of Odisha; (B) Odontopria Kieffer (C) Coptera Say (D) Spilomicrus Westwood (E) Calogalesus Kieffer (F) Monelata Foerster (G) Entomacis Foerster (H) Basalys Westwood (I) Aneuropria Kieffer (J) Trichopria Ashmead.
Figure 1 in Resistance of rice genotypes to fall armyworm Spodoptera frugiperda (Lepidoptera: Noctuidae)
Figure 1 Dendrogram resulting from UPGMA multivariate cluster analysis (Euclidian distance), based on the length of larval, pre-pupal, pupal periods and total cycle (days) and total viability (%) and parameters of nutritional indices (Table 4 and Table 5) on rice genotypes for resistance to Spodoptera frugiperda (Lepidoptera: Noctuidae).Urutaí, GO, Brazil.
Figure 2 in Autophagic chemicals effect to Atg8 and rice stripe virus relative expressions, and Wolbachia relative density in Laodelphax striatellus (Hemiptera: Delphacidae)
Figure 2. Comparison of Atg8, Wolbachia, and RSV relative expressions and densities. Vertical bar lines indicate the ± of SD. Significant difference was determined by the Student's t-tests accompanied by Bonferroni correction (0.05). Control was used as a reference. Asterisks represent a significant difference in genes between treatment and control (*p <0.05).
Figure 1 in Autophagic chemicals effect to Atg8 and rice stripe virus relative expressions, and Wolbachia relative density in Laodelphax striatellus (Hemiptera: Delphacidae)
Figure 1. Comparison of Atg8, Wolbachia, and RSV relative expressions and densities. Vertical bar lines indicate the ± of SD. Significant difference was determined by the Student's t-tests accompanied by Bonferroni correction (0.05). Control was used as a reference. Asterisks represent a significant difference in genes between treatment and control (*p <0.05).
Figure 1-5 in Diversity of phytophagous stink bugs (Hemiptera: Pentatomidae) associated with rice crop in Itapecuru-Mirim, Maranhão, Brazil
Figure 1-5. Stink bugs (dorsal view, scale bar = 5mm) collected in a rice field located in the Cristina Alves settlement, Vila 17 de abril, Itapecuru-Mirim, Maranhão state. 1. Edessa meditabunda. 2. Paratibraca dubia. 3. Tibraca limbativentris. 4. Oebalus ypsilongriceus. 5. Oebalus poecilus. Itapecuru-Mirim, MA, 2019. / Figura 1-5. Chinches hediondas (visión dorsal, barra de escala = 5mm) recolectadas en un campo de arroz ubicado en el asentamiento Cristina Alves, Vila 17 de abril, Itapecuru-Mirim, estado de Maranhão. 1. Edessa meditabunda. 2. Paratibraca dubia. 3. Tibraca limbativentris. 4. Oebalus ypsilongriceus. 5. Oebalus poecilus. Itapecuru-Mirim, MA, 2019.
Fig. 1 in Notes on biology of the stink bug Cyptocephala alvarengai Rolston (Hemiptera: Pentatomidae) feeding on rice panicles
Fig. 1. Study area and insect photographs: 1 and 2, Location map and rice field view where species was found; 3 to 9, Life stages of Cyptocephala alvarengai.
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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.