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Fig. 2 in Eighteen unreported radiation-resistant bacterial species isolated from Korea in 2018
Fig. 2. Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences shows the relationship between the strains isolated in this study and their relatives of the family Nocardiaceae. Strain: BT115, BT120. Bootstrap values (>80%) are shown above nodes for the neighbor-joining methods. Bar: 0.01 substitutions per nucleotide position.
Fig. 1 in Eighteen unreported radiation-resistant bacterial species isolated from Korea in 2018
Fig. 1. Transmission electron micrographs of the strains isolated in this study. Strains: 1, BT100; 2, BT53; 3, BT92; 4, BT109; 5, BT97; 6, BT82; 7, BT94; 8, BT84; 9, BT95; 10, BT96; 11, BT98; 12, BT99; 13, BT115; 14, BT119; 15, BT73; 16, BT120; 17, BT102; 18, BT89.
Fig. 7 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 7. Alignment of the predicted amino acid sequences of the CYP307A1 in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. We detected a sense amino acid mutation (14-threonine to serine).. This figure is shown in color in a supplementary document online as Suppl. Fig. 7 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 5 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 5. Alignment of the predicted amino acid sequences of CYP307A1 in Panonychus citribetween the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. Only one amino acid mutation (278-lysine to glutamine) was detected.. This figure is shown in color in a supplementary document online as Suppl. Fig. 5 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 6 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 6. Nucleotide sequence comparison of CYP381A2 in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. Just one SNP site was detected. The nucleotide transition of A to T was at position 40.. This figure is shown in color in a supplementary document online as Suppl. Fig. 6 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 4 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 4. Nucleotide sequence comparison of the CYP307A1 in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. Three SNP sites were detected in all. The first nucleotide mutation (A to C) is located at 841, the second mutation is 1395-T to C, and the final mutation is 1491-T to C.. This figure is shown in color in a supplementary document online as Suppl. Fig. 4 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 3 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 3. Quantitative Real-time PCR analysis of CYPs in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. The numbers of genes down-regulated and up-regulated in the RR relative to the SS are indicated above or below the X axis. The light or dark gray was susceptible strain and resistant strain, respectively.
Fig. 1 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 1. Number, family and clan distribution of cytochrome P450 genes in Panonychus citri. The number shown along each column represents the P450 family and the number in parenthesis is the number of individual genes in the corresponding family. The P450 gene sequence information generated is from the VectorBase of the P. citri transcriptome sequence.
Fig. 2 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 2. Neighbor-joining phylogenetic analysis of cytochrome P450 from Panonychus citri and Tetranychus urticae. 4clans were observed. There are species (P. citri and T. urticae) in the phylogenetic tree. Only 10 sequences belong to T. urticae; A (Pc) before the CYP name denotes P. citri, a (Tu) before the CYP name denotes T. urticae. Numbers at nodes are bootstrap values.
Fig. 2 in Host plant resistance in cultivated jute and its wild relatives towards jute hairy caterpillar Spilosoma obliqua (Lepidoptera: Arctiidae)
Fig. 2. Mean number of egg clusters (A) and eggs per cluster (B) laid by Spilosoma obliqua females on 6 jute species in no-choice tests.
Fig. 1 in Host plant resistance in cultivated jute and its wild relatives towards jute hairy caterpillar Spilosoma obliqua (Lepidoptera: Arctiidae)
Fig. 1. Effect of cultivated and wild jute species on Spilosoma obliqua larvae settlement (%) (A) and leaf area consumed (cm2) (B) afer 24 h in multiplechoice tests.
Fig. 2 in Genetically modified maize resistant to corn earworm (Lepidoptera: Noctuidae) in Sinaloa, Mexico
Fig. 2. Percentage of corn ears ear damaged by Helicoverpa zea in Agrisure® VipteraTM 3111, AgrisureTM 3000 GT, and their respective isolines at El Dorado, Culiacan, and Navolato (Sinaloa, Mexico). 2012. Genetically modified hybrids and their respective isolines followed by the same letter do not differ significantly (LSD; P> 0.05). ic = insecticide control
Fig. 1 in Genetically modified maize resistant to corn earworm (Lepidoptera: Noctuidae) in Sinaloa, Mexico
Fig. 1. Percentage of corn ears damaged by Helicoverpa zea in AgrisureTM 3000 GT, Agrisure® VipteraTM 3110, and their respective isolines at Oso Viejo, Culiacan (Sinaloa, Mexico) during 2011.Genetically modified hybrids and their respective isolines followed by the same letter do not differ significantly (LSD; P> 0.05). ic = insecticide control.
Fig. 1 in Antixenotic and allelochemical resistance traits of watermelon against Bactrocera cucurbitae in a hot arid region of India
Fig. 1. Associations of major antixenotic and allelochemical fruit traits of watermelon with resistance to the melon fly evaluated by percentage fruit infestation under different infestation categories.
Fig. 5 in Evaluating categories of resistance in soybean genotypes from the United States and Brazil to Aphis glycines (Hemiptera: Aphididae)
Fig. 5. Mortality (%) of Aphis glycines on 7 soybean genotypes at 5, 7, and 10 d afer infestation (23 ± 3 °C; 60 ± 10% RH; 16:8 h L:D photoperiod).
Fig. 4 in Evaluating categories of resistance in soybean genotypes from the United States and Brazil to Aphis glycines (Hemiptera: Aphididae)
Fig. 4. Cumulative aphid-days (CAD) for soybean genotypes infested with Aphis glycines at V1 and V3 stages (23 ± 3 °C; 60 ± 10% RH; 16:8 h L:D photoperiod).
Fig. 3 in Evaluating categories of resistance in soybean genotypes from the United States and Brazil to Aphis glycines (Hemiptera: Aphididae)
Fig. 3. Number (mean ± SE) of Aphis glycines individuals on 7 soybean genotypes 24 h afer infestation (23 ± 3 °C; 60 ± 10% RH; 16:8 h L:D photoperiod). Means with the same lower case letter do not differ by Fisher's LSD test (P> 0.05). (F = 1.74; df = 6; P = 0.0110).
Fig. 2 in Evaluating categories of resistance in soybean genotypes from the United States and Brazil to Aphis glycines (Hemiptera: Aphididae)
Fig. 2. Number (mean ± SE) of Aphis glycines individuals on KS4202 plants 24 h afer infestation (23 ± 3 °C; 60 ± 10% RH; 16:8 h L:D photoperiod). Means with the same lower case letter do not differ by Fisher's LSD test (P> 0.05). (F = 1.09; df = 6; P = 0.3897).
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.
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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.