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69 results for “Bacillus thuringiensis”
Fig. 2 in Does Bacillus thuringiensis have adverse effects on the host egg location by parasitoid wasps?
Fig. 2. Response of Trichogramma pretiosum Riley, 1879 (Hymenoptera: Trichogrammatidae) females in Y-tube olfactometer: air (control), Agree , Dipel , HD 1, or HD 11 versus clean eggs of Helicoverpa zea. Each bar represents a single replicate experiment involving liberation of 20 wasps with response (Chi-square Test, **p <0.01, see text for more explanation). Sete Lagoas, MG, Brazil.
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 Activity and expression of midgut proteases from Mexican and US Trichoplusia ni (Hübner) strains exposed to Bacillus thuringiensis
Fig. 1. Zymogram of midgut proteins from Trichoplusia ni with casein as substrate. (A) 6-12% Z Blue casein (substrate in gel), or (B) 4-16% Tricine gel, incubated in casein solution postelectrophoresis. Migration of molecular markers is indicated on the lef, and proposed T. ni protease numbering (P1 – P7) on right, based on migration in the gel.
Fig. 2 in Activity and expression of midgut proteases from Mexican and US Trichoplusia ni (Hübner) strains exposed to Bacillus thuringiensis
Fig. 2. Zymogram of midgut proteins from Trichoplusia ni with either 2% Xen- Tari (A) or 1% Cry1Ac-HD73 (B) as substrate. GT and G represent the GTO strain. Migration of molecular markers is indicated on the lef, and proposed T. ni protease numbering (P1 – P7) on right, based on migration in the gel.
Fig. 4 in Activity and expression of midgut proteases from Mexican and US Trichoplusia ni (Hübner) strains exposed to Bacillus thuringiensis
Fig. 4. Relative DNA detected by semi-quantitative RT-PCR using the imageJ sofware, comparing the tnapn1 versus the rs5 control transcript as amplification reference. Trichoplusia ni strains NLX, GTOX and USX represent NL, US and GTO afer 5 generations being exposed to XenTari.
Fig. 3 in Activity and expression of midgut proteases from Mexican and US Trichoplusia ni (Hübner) strains exposed to Bacillus thuringiensis
Fig. 3. Detection of protease activity in midgut extracts from different Trichoplusia ni strains using class-specific substrates. (A) N-a-benzolyl-L-arginine-pNA (BApNA) for detection of trypsin-like activity; (B) N-succinyl-ala-ala-pro-phepNA (SAAPFpNA) for detection of chymotrypsin-like activity; and (C) N-succinylala-ala-pro-leu-pNA (SAAPLpNA) for detection of elastase-like activity.
Fig. 3 in Susceptibility of Spodoptera frugiperda (Lepidoptera: Noctuidae) field populations to the Cry1F Bacillus thuringiensis insecticidal protein
Fig. 3. Mean percentage of mortality and mean percentage of growth inhibition responses of Spodoptera frugiperda for 2012 and 2013 field-collected populations exposed to Cry1F Bacillus thuringiensis toxin.
Fig. 1 in Susceptibility of Spodoptera frugiperda (Lepidoptera: Noctuidae) field populations to the Cry1F Bacillus thuringiensis insecticidal protein
Fig. 1. EC50s estimated by nonlinear regression of growth inhibition fitted to a probit model and the 95% confidence intervals of Spodoptera frugiperda neonates field collected in 2012 and exposed to the Cry1F Bacillus thuringiensis toxin.
Fig. 2 in Susceptibility of Spodoptera frugiperda (Lepidoptera: Noctuidae) field populations to the Cry1F Bacillus thuringiensis insecticidal protein
Fig. 2. EC50s estimated by nonlinear regression of growth inhibition fitted to a probit model and the 95% confidence intervals of Spodoptera frugiperda neonates field collected in 2013 and exposed to the Cry1F Bacillus thuringiensis toxin.
Abb. 26-29 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 26-29: Chorebus transversus (NIXON) (26) Kopf, Mesosoma und Metasoma mit Vorder- und Hinterflügel lateral, (27) Basis eines Fühlers, (28) Mandibel, (29) Metasoma dorsal.
Abb. 23-25 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 23-25: Chorebus iphias (NIXON) (23) Kopf und Mesosoma lateral, (24) Mandibel, (25) Vorderflügel.
Abb. 20-22 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 20-22: Lepton pajori nov.sp. (20) Mesosoma und Metasoma mit Vorder- und Hinterflügel lateral, (21) Mandibel, (22) Hinterbein.
Abb. 17-19 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 17-19: Lepton maehongsonensis nov.sp. (17) Kopf dorsal, (18) Mesopleurum und Metapleurum, (19) Vorder- und Hinterflügel.
Abb. 14-16 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 14-16: Lepton lusakaensis nov.sp. (14) Kopf, Mesosoma und Metasoma lateral, (15) Hinterbein, (16) Vorder- und Hinterflügel.
Abb. 9-13 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 9-13: Coelalysia zambiae nov.sp. (9) Basis eines Fühlers, (10) Mandibel, (11) Hinterbein, (12) Metascutum bis T1 dorsal, (13) Metasoma lateral.
Abb. 5-8 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 5-8: Coelalysia tanzaniae nov.sp. (5) Basis und Mitte eines Fühlers, (6) Hinterbein, (7) Propodeum und T1, (8) Vorder- und Hinterflügel.
Abb. 1-4 in Carabidae (Coleoptera) associated with gypsy moth, Lymantria dispar (L.) (Lepidoptera: Lymantriidae), populations subjected to Bacillus thuringiensis Berliner treatments in Pennsylvania.
Abb. 1-4: Coelalysia nigricapite nov.sp. (1) Seite des Pronotum und Mesopleurum lateral, (2) Praescutellarfurche, Scutellum und Postaxillae, (3) Metascutum bis T1 dorsal, (4) Vorder- und Hinterflügel.
Figure 1 in Molecular characterization of Bacillus thuringiensis strains to control Spodoptera eridania (Cramer) (Lepidoptera: Noctuidae) population
Figure 1 Mortality of S. eridania caterpillars caused by different B. thuringiensis (Bt) strains with a concentration of 108 spores/mL after 7 days of bioassay.Means followed by the same letter did not differ statistically by Scott-Knott test at 1% significance (p <0.01).
Figure 2 in Molecular characterization of Bacillus thuringiensis strains to control Spodoptera eridania (Cramer) (Lepidoptera: Noctuidae) population
Figure 2 Fingerprint patterns for ERIC-PCR (A) and REP-PCR (B) fragments of selected B. thuringiensis strains isolated in different locations. M = 1 kb Plus DNA ladder.
Fig. 1 in Isolation and molecular characterization of Bacillus thuringiensis found in soils of the Cerrado region of Brazil, and their toxicity to Aedes aegypti larvae
Fig. 1. SDS-PAGE protein profiles of the Bacillus thuringiensis isolates most toxic to Aedes aegypti larvae. MM, molecular weight marker (kDa); Bti, Bacillus thuringiensis var. israelensis; 25–560, Bacillus thuringiensis isolates.
ScienceDex guides
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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)
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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.