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Fig. 3 in Host range of the invasive tomato pest Tuta absoluta Meyrick (Lepidoptera: Gelechiidae) on solanaceous crops and weeds in Tanzania
Fig. 3. Tuta absoluta-related damage in solanaceous crops and weeds in Tanzania. Damage values are averaged across all survey locations (see Table 1). Damage was quantified as the number of T. absoluta mines per leaf (A) and percentage of T. absoluta-damaged fruits (B) in 10 locations within each sampled field. Six to 12 fields were sampled per crop, and 1 to 3 fields per weed species (see Table 2). Tomato, Solanum lycopersicum; eggplant or aubergine, Solanum melongena; African (Afr.) eggplant, Solanum aethiopicum; African (Afr.) nightshades, Solanum nigrum and Solanum americanum; pepper, Capsicum annuum; and 3 weed species, Datura stramonium, Nicandra physalodes, and Solanum incanum.
Fig. 1 in Host range of the invasive tomato pest Tuta absoluta Meyrick (Lepidoptera: Gelechiidae) on solanaceous crops and weeds in Tanzania
Fig. 1. Map of locations surveyed to determine host range and infestation level of Tuta absoluta in solanaceous crops and weeds in 2015. Four districts were targeted, each within the major tomato-producing regions of Tanzania. Within each district, 3 villages (indicated by black circles) were randomly selected for the survey (see Table 1).
Fig. 1 in A new record of a pest mite on strawberry: Phytonemus pallidus (Banks) (Acari: Tarsonemidae) arrives in Minas Gerais, Brazil
Fig. 1. Strawberry plant damaged by Phytonemus pallidus in the field. Arrows indicate typical "tanning" damage in leaves and fruits (A); strawberry plants infested by the phytophagous mite P. pallidus (B). Inset, a magnification showing the tanning on the fruits.
Fig. 1 in First record of the sweet potato pest Bedellia somnulentella (Lepidoptera: Bedelliidae) in Brazil
Fig. 1. Larvae (A); pre-pupae (B); pupae (C); and adults (male and female) (D) of Bedellia somnulentella (Lepidoptera: Bedelliidae).
Fig. 2 in First record of the sweet potato pest Bedellia somnulentella (Lepidoptera: Bedelliidae) in Brazil
Fig. 2. Bedellia somnulentella (Lepidoptera: Bedelliidae) adult perched on the abaxial end of an Ipomoea batatas leaf (A); larval damage on I. batatas leaves (B); caterpillar with excreta deposited outside a mine (C).
Fig. 2 in Atopozelus opsimus (Hemiptera: Reduviidae) preying on Mastigimas anjosi (Hemiptera: Calophyidae), a pest of tropical cedar, Cedrela fissilis (Meliaceae)
Fig. 2. Atopozelus opsimus (Hemiptera: Reduviidae) immature preying on Mastigimas anjosi (Hemiptera: Calophyidae) nymphs.
Fig. 1 in Atopozelus opsimus (Hemiptera: Reduviidae) preying on Mastigimas anjosi (Hemiptera: Calophyidae), a pest of tropical cedar, Cedrela fissilis (Meliaceae)
Fig. 1. Eggs deposited on the primary leaflet vein (A); Atopozelus opsimus (Hemiptera: Reduviidae) protecting their eggs and nymphs (B).
Figs. 1-18 in Emergent and possible invasive pest species of weevils in Mexico
Figs. 1-18. (1) Conotrachelus perseae Barber; (2) Conotrachelus aguacatae Barber; (3) Conotrachelus dimidiatus Champion; (4) Conotrachelus copalensis Salas and Romero; (5) Heilipus lauri (Boheman); (6) Heilipus albopictus (Champion); (7) Copturus aguacatae Kissinger; (8) Sphenophorus incurrens Gyllenhal; (9) Scyphophorus acupunctatus Gyllenhal; (10) Cactophagus spinolae (Gyllenhal); (11) Apinocis subnudus (Buchanan); (12) Rhyssomatus nigerrimus (Fåhraeus); (13) Epicaerus operculatus (Say); (14) Epicaerus cognatus Sharp; (15) Amphidees latifrons (Sharp); (16) Naupactus cervinus (Boheman); (17) Epicaerus aurifer Boheman; (18) Epicaerus mexicanus Boheman.
Fig. 3 in Effect of BAM-FX in developing a management program to control major insect pests of tomato: sweetpotato whitefly (Hemiptera: Aleyrodidae), thrips (Thysanoptera: Thripidae), and their transmitted viruses
Fig. 3. Mean number of western flower thrips (Frankliniella occidentalis) per 5 leaf sample of tomato treated with various treatments of BAM‑FX and N‑P‑K granular fertilizer in 2016. Bars represent standard error of the means. T1 = BAM‑FX applied on soil, no pesticide, no N‑P‑K fertilizer; T2 = BAM‑FX applied on foliage, no pesticide, no N‑P‑K fertilizer; T3 = BAM‑FX applied on soil, pesticide, no N‑P‑K fertilizer; T4 = BAM‑FX applied on foliage, pesticide, no N‑P‑K fertilizer; T5 = BAM‑FX applied on foliage, pesticide, N‑P‑K fertilizer; T6 = no BAM‑FX, pesticide, N‑P‑K fertilizer; T7 = no BAM‑FX, no pesticide, N‑P‑K fertilizer; D1 = first sampling date (14 Dec); D2 = second sampling date (21 Dec); D3 = third sampling date (21 Dec); D4 = fourth sampling date (28 Dec); D5 = fifth sampling date (4 Jan); D6 = sixth sampling date (11 Jan).
Fig. 2 in Effect of BAM-FX in developing a management program to control major insect pests of tomato: sweetpotato whitefly (Hemiptera: Aleyrodidae), thrips (Thysanoptera: Thripidae), and their transmitted viruses
Fig. 2. Mean number of common blossom thrips (Frankliniella schultzei) per 5 leaf sample of tomato treated with various treatments of BAM‑FX and N‑P‑K granular fertilizer in 2016. Bars represent standard error of the means. T1 = BAM‑FX applied on soil, no pesticide, no N‑P‑K fertilizer; T2 = BAM‑FX applied on foliage, no pesticide, no N‑P‑K fertilizer; T3 = BAM‑FX applied on soil, pesticide, no N‑P‑K fertilizer; T4 = BAM‑FX applied on foliage, pesticide, no N‑P‑K fertilizer; T5 = BAM‑FX applied on foliage, pesticide, N‑P‑K fertilizer; T6 = no BAM‑FX, pesticide, N‑P‑K fertilizer; T7 = no BAM‑FX, no pesticide, N‑P‑K fertilizer; D1 = first sampling date (14 Dec); D2 = second sampling date (21 Dec); D3 = third sampling date (21 Dec); D4 = fourth sampling date (28 Dec); D5 = fifh sampling date (4 Jan); D6 = 6th sampling date (11 Jan).
Fig. 1. Megalurothrips usitatus A in First report of the exotic species Megalurothrips usitatus (Thysanoptera: Thripidae), pest of Fabaceae, in Puerto Rico
Fig. 1. Megalurothrips usitatus A) females have dark brown colored bodies and B) males have amber, or light brown bodies. The forewings of both sexes have the middle third and extreme tip greyish brown and a distinct clear band near the distal end of forewing.
Fig. 1 in Pests of Florida hops: preliminary observations
Fig. 1. Mean number (± SEM) of spider mite eggs and motiles collected from 1.5 and 5 m above the ground from hops (cv. 'Cascade'), fall 2019, Gulf Coast Research and Education Center, Wimauma, Florida, USA. About 10 P. persimilis per plant were released 10 Sep (5 at 1.5 m and 5 at 5 m) and about 5 P. persimilis per plant were released in the lower canopy 17 Sep. An asterisk (*) indicates that numbers of spider mite eggs at 1.5 and 5 m were statistically different using Tukey's mean separation test (p <0.05); a cross (+) indicates that numbers of spider mite motiles at 1.5 and 5 m were statistically different.
Fig. 1 in Identification of predatory and parasitoid insect species associated with Melanaphis sacchari (Hemiptera: Aphididae), a sorghum pest in Nuevo León, Mexico
Fig. 1. Melanaphis sacchari predators and parasitoids found in Nuevo León, Mexico. (A) Allograpta sp. in adult status, (B) Chilocorus cacti (lef), and Chilocorus stigma (right), (C) Olla v-nigrum, (D) Chrysoperla sp., (E) Allograpta sp. (lef) in larval status, and Cycloneda sanguinea (right), (F) Hippodamia convergens, (G) Ocyptamus dimidiatus, (H) Scymnus sp., (I) Pachyneuron sp., (J) Aphidius sp., (K) Melanaphis sacchari mummies.
Fig. 4 in The good side of the bad guys: predation of lepidopteran pests by Solenopsis invicta Buren (Hymenoptera: Formicidae) in the Florida Panhandle
Fig. 4. Occurrence of Solenopsis invicta in different peanut phenological stages during the 2018 crop season. West Florida Research and Education Center, Jay, Florida, USA. Means with different letters are significantly different P <0.05 (Tukey's mean separation test).
Fig. 2 in The good side of the bad guys: predation of lepidopteran pests by Solenopsis invicta Buren (Hymenoptera: Formicidae) in the Florida Panhandle
Fig. 2. Occurrence of Solenopsis invicta in hotdog-baited flip-top tubes placed on the ground and on the canopy of peanut fields during the 2017 crop season (log scale). West Florida Research and Education Center, Jay, Florida, USA. P- values from Pearson's Chi Square analysis (χ2 = 48.69; df = 5; P = 2.7 × 10−9).
Fig. 3 in The good side of the bad guys: predation of lepidopteran pests by Solenopsis invicta Buren (Hymenoptera: Formicidae) in the Florida Panhandle
Fig. 3. Comparison of mean Solenopsis invicta between cotton canopy zones during different phenological stages, 2018 crop season. West Florida Research and Education Center, Jay, Florida, USA. Means with different letters are significantly different P <0.05 (Tukey's mean separation test).
Fig. 1 in The good side of the bad guys: predation of lepidopteran pests by Solenopsis invicta Buren (Hymenoptera: Formicidae) in the Florida Panhandle
Fig. 1. Occurrence of Solenopsis invicta in hotdog-baited flip-top tubes placed on the ground and on the canopy of cotton fields during the 2017 crop season (log scale). West Florida Research and Education Center, Jay, Florida, USA. P- values from Pearson's Chi Square analysis (χ2 = 20.68; df = 6; P = 0.0021).
Fig. 10 in Potential pest bark and ambrosia beetles from Cuba not present in the continental United States
Fig. 10. Dorsal and lateral view of female Xylosandrus cubensis. Scale bar: 1 mm. Permission to publish from the Canadian Museum of Nature, Ottawa, Canada.
Fig. 8 in Potential pest bark and ambrosia beetles from Cuba not present in the continental United States
Fig. 8. Dorsal and lateral view of female Xyleborus anthracinus. Scale bar: 1 mm. Permission to publish from the Canadian Museum of Nature, Ottawa, Canada.
Fig. 7 in Potential pest bark and ambrosia beetles from Cuba not present in the continental United States
Fig. 7. Dorsal and lateral view of female (lef) and male (right) Scolytus dimidiatus. Scale bar: 2 mm. Permission to publish from the National Museum of Natural History, Smithsonian Institution, Washington, DC, USA.
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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.