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268 results for “Anastrepha”
FIGURES 1 – 8. Lopheucoila anastrephae. 1 in Eucoilinae species (Hymenoptera: Cynipoidea: Figitidae) parasitoids of fruitinfesting dipterous larvae in Brazil: identity, geographical distribution and host associations
FIGURES 1 – 8. Lopheucoila anastrephae. 1. Head, anterior view (183 x, 100 m); 2. Female antenna (58 x, 250 m); 3. Flagellomerous 1 and 2 of male (170 x, 100 m); 4. Pronotal plate (160 x, 100 m); 5. Head, mesosoma and anterior part of metasoma, lateral view (74 x, 250 m); 6. Mesosoma, dorsal view (172 x, 100 m); 7. Forewing (10 x, 0,5 mm); 8. Metacoxa (163 x, 100 m).
FIGURES 24 – 31. Odontosema anastrephae. 24 in Eucoilinae species (Hymenoptera: Cynipoidea: Figitidae) parasitoids of fruitinfesting dipterous larvae in Brazil: identity, geographical distribution and host associations
FIGURES 24 – 31. Odontosema anastrephae. 24. Head, anterior view (201 x, 100 m); 25. Female antenna (135 x, 100 m); 26. Flagellomerous 1 and 2 of male (145 x, 100 m); 27. Pronotal plate (130 x, 100 m); 28. Head, mesosoma and anterior part of metasoma, lateral view (37 x, 250 m); 29. Mesosoma, dorsal view (68 x, 250 m); 30. Forewing (10 x, 0,5 mm); 31. Metacoxa (84 x, 100 m).
Supplemental files to "A COI DNA Barcode Library for Anastrepha Schiner (Diptera: Tephritidae)"
<p>The attached files are the supplemental material from Moore et al., "A COI DNA Barcode Library for <em>Anastrepha </em>Schiner (Diptera: Tephritidae)". They contain various DNA sequence alignments, calculation tables, tree files, taxonomic information on <em>Anastrepha</em>, and a R script.</p>
Figure 1 in Oviposition performance of tephritid polyphagous Anastrepha fraterculus and Ceratitis capitata during three periods of exposure to fruit
Figure 1. Oviposition behaviour of A. fraterculus and C. capitata during three infestation periods of fruit.
Fig. 2 in Evaluation of field dispersal and survival capacity of the genetic sexing strain Tapachula-7 of Anastrepha ludens (Diptera: Tephritidae)
Fig. 2. General displacement of Anastrepha ludens SMR strain (solid line) and Tap-7 strain (broken line) in a Cartesian plane.
Fig. 1 in Toxicities and residual effects of toxic baits containing spinosad or malathion to control the adult Anastrepha fraterculus (Diptera: Tephritidae)
Fig. 1. The mortality of Anastrepha fraterculus adult afer 1, 3, 5 and 7 days of exposure to toxic baits. (Vertical bars indicate the standard error of the mean). Mortality was calculated by the formula of Schneider-Orelli (1947).
Fig. 1 in Evaluation of field dispersal and survival capacity of the genetic sexing strain Tapachula-7 of Anastrepha ludens (Diptera: Tephritidae)
Fig. 1. Contours of displacement of the SMR strain (lef) and Tap-7 strain (right) of Anastrepha ludens inside the field plot. The density of the flies at each contour is indicated by the number.
Fig. 1 in Infection of Anastrepha ludens (Diptera: Tephritidae) adults during emergence from soil treated with Beauveria bassiana under various texture, humidity, and temperature conditions
Fig. 1. Adult mortality of Anastrepha ludens infected with different concentrations of Beauveria bassiana conidia, afer emerging from treated soil. Different letters indicate significant differences among treatments based on 1-way ANOVA followed by the Tukey Honest Significant Difference test, P <0.05).
Fig. 1 in Oviposition of Anastrepha fraterculus and Ceratitis capitata (Diptera: Tephritidae) in citrus fruits, and development in relation to maturity of orange fruits
Fig. 1. Frequency of oviposition by females of Anastrepha fraterculus (A) and Ceratitis capitata (B) when provided with oranges as an oviposition substrate.
Fig. 1 in Occurrence of Anastrepha fraterculus and Ceratitis capitata (Diptera: Tephritidae) in organically grown Rubus (Rosales: Rosaceae), in two contrasting environments of northwestern Argentina
Fig. 1. Precipitation (P), evapotranspiration (ET), and hydric balance (HB = P − ET) near Monte Grande (27.0000°S, 65.4000°W; 350 m altitude; Tucumán, Argentina) in 2013 (A) and 2014 (B).
Fig. 1 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 1. Devices used as treatments during field evaluations: a) 600 mL polyethylene terephthalate (PET) bottle with three 1 × 1 cm holes in the upper third, baited with 50 mL of hydrolyzed protein; b) 600 mL PET bottle with two 3 × 3 cm windows in the upper middle, baited with 150 mL of GF-120 Naturalyte (80 ppm); c) MS® is a commercial bait station consisting of a 2-piece, bottle-shaped device, with a transparent upper piece with three 3 × 3 cm windows in the middle part and a yellow bottom, baited with Atrayente® (mix of 30% hydrolyzed protein, 10% propylene glycol, 5% malathion, and adjuvants; d) MS2® is the same MS® device as in 'c' but with the upper piece containing three 1-cm-diameter holes in the middle part, baited with 250 mL of Cera Trap®; e) wax matrix bait station is a waxed green box with slots baited with BioLure® synthetic attractant (ammonium acetate and putrescine); f) INIFAP trap is a 2 L, 14-cm-diameter, and 14 cm high cylindrical container, with three 1-cm-diameter holes at mid-height, baited with 250 mL of Cera Trap®.
Fig. 4 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 4. Recapture of sterile Anastrepha ludens and Anastrepha obliqua in Multilure® traps in different treatments. For each species, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 2 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 2. Recapture percentages of sterile Anastrepha ludens (top) and sterile Anastrepha obliqua (bottom) in Multilure® traps located in plots with PET bottle mass trapping devices, ground-sprayed with GF-120 Naturalyte, or untreated (control) in a mango orchard. For each season, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 5 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 5. Recapture percentages of sterile and wild Anastrepha ludens and Anastrepha obliqua in 2 types of mass trapping devices. For each species and strain, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 3 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 3. Recapture percentages of sterile Anastrepha ludens and Anastrepha obliqua flies in Multilure® traps in plots with different bait station devices. For each species, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 1 in Timing of irradiation and male mating history effects on female remating in Anastrepha ludens (Diptera: Tephritidae)
Fig. 1. Interaction between age of pupal irradiation (24, 48, or 72 h before emergence) and male previous sexual experience (virgin, once mated, or twice mated) of the GSS strain of A. ludens (Tapachula-7) males on wild female likelihood to remate (N = 945).
Figure 4 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 4. Percent reduction of adult emergence of A. grandis when Atlas squashes infested by larvae was subjected to hydrothermal treatment at different temperatures and times of exposure. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las calabazas Atlas infestadas por larvas se sometieron al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
Figure 2 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 2. Percent reduction of adult emergence of A. grandis when larvae were subjected to hydrothermal treatment in vitro at different temperatures and exposure times. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las larvas se sometieron al tratamiento hidrotermal in vitro a diferentes temperaturas y tiempos de exposición.
Figure 1 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 1. Mortality (%) of A. grandis eggs in vitro subjected to hydrothermal treatment at different temperatures and times of exposure. / Mortalidad (%) de huevos de A. grandis in vitro sometidos al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
Figure 3 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 3. Percent reduction of adult emergence of A. grandis when Atlas squashes infested by eggs was subjected to hydrothermal treatment at different temperatures and times of exposure. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las calabazasAtlas infestadas por huevos fueron se sometieron al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
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Allen Brain Atlas
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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.