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651 results for “Pseudococcidae”
Figure 2 in Report of new invasive scale insects (Hemiptera: Coccoidea), Crypticerya multicicatrices Kondo and Unruh (Monophlebidae) and Maconellicoccus hirsutus (Green) (Pseudococcidae), on the islands of San Andres and Providencia, Colombia, with an updated taxonomic key to iceryine scale insects of South America
Figure 2. Crypticerya multicicatrices Kondo and Unruh, adult female (modified from Kondo and Unruh (2009), with copyright permission from the journal Neotropical Entomology). A, Simple multilocular pores, with bilocular or trilocular center and 6–8 (very rarely 0) outer loculi. B, Short hair-like seta. C, Long hair-like seta. D, Various types of simple multilocular pores, each with star-shaped center and 4–6 outer loculi. E, Flagellate seta. F, Simple multilocular pores surrounding anal opening, each with bilocular or trilocular center and 8–10 elongate outer loculi. G, Simple multilocular pores surrounding vulva, with bilocular or trilocular center and each with 8–14 elongate outer loculi. H, Abdominal spiracle. I, Simple multilocular pores on ventromedial abdomen, with reniform center and 4–6 outer loculi. J, Simple multilocular pores, with bilocular or trilocular center and 8–10 outer loculi. K, Enlargement of setal base. L, Various types of simple multilocular pores, with triangular, cruciform or star-shaped center and 4–7 (very rarely 0) outer loculi. M, Various types of simple multilocular pores present on ventral abdomen, with triangular or cruciform center and 3–6 outer loculi.
Figure 1 in Report of new invasive scale insects (Hemiptera: Coccoidea), Crypticerya multicicatrices Kondo and Unruh (Monophlebidae) and Maconellicoccus hirsutus (Green) (Pseudococcidae), on the islands of San Andres and Providencia, Colombia, with an updated taxonomic key to iceryine scale insects of South America
Figure 1. Adult females (center) and nymphs (on each side) of Crypticerya multicicatrices on coconut leaf. Notice empty egg chorions on median slit (arrowed) on ovisac from where first-instar nymphs exit ovisac.
Figure 4 in Report of new invasive scale insects (Hemiptera: Coccoidea), Crypticerya multicicatrices Kondo and Unruh (Monophlebidae) and Maconellicoccus hirsutus (Green) (Pseudococcidae), on the islands of San Andres and Providencia, Colombia, with an updated taxonomic key to iceryine scale insects of South America
Figure 4. Natural enemies of C. multicicatrices. A. Encyrtid sp. 1. B. Encyrtid sp. 2. C. Left. Diomus? sp. Center and Right. Delphastus? sp. D. Delphastus? sp. on ovisac of C. multicicatrices preying upon eggs (see arrow). Photos A‒C by TK; D by R. L. Bermúdez.
Figure 3. Crypticerya multicicatrices. A in Report of new invasive scale insects (Hemiptera: Coccoidea), Crypticerya multicicatrices Kondo and Unruh (Monophlebidae) and Maconellicoccus hirsutus (Green) (Pseudococcidae), on the islands of San Andres and Providencia, Colombia, with an updated taxonomic key to iceryine scale insects of South America
Figure 3. Crypticerya multicicatrices. A. On Cajanus cajan. B. On Spondias purpurea. C. On Tectona grandis. D. On Citrus latifolia. E. On Delonix regia. F. On a palm. G. On Carica papaya. H. On Artocarpus altilis. Notice sooty mold on leaves. I. Dieback of Erythrina variegata street trees.
Figure 1 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 1. Schematic design of cubic clod sampling. (a) Protocol for sampling in June 2002; (b) protocol for sampling in January 2002. At each sampling event we randomly chose a ground surface area for sampling clods, from which individuals of Acropyga sauteri and its symbiont Eumyrmococcus smithii were collected. The dates of sampling events and the numbers and sizes of areas and cubic clods are listed in Table I.
Figure 10 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 10. Seasonal changes in the average numbers (with SE) of individuals of Eumyrmococcus smithii per colony and the age structure (percentage of components). Numerals above the bars indicate the sample size (presumed number of ant colonies). ''Pupa'' here includes pupae of both sexes and male prepupa, which were difficult to discriminate when not on slides.
Figure 13 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 13. First-instar nymph, right side shows venter of the nymph; left side shows dorsum of the nymph. Anal lobe setae are long, but here only a part of the setae are drawn. Scale bar: 0.1 mm.
Figure 4 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 4. Schematic illustration of the presumed life cycle of Eumyrmococcus smithii. The first-instar nymph is followed by the pupa and adult in the female and by the prepupa, pupa, and adult in the male.
Figure 12 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 12. (a) Female pupa; (b) male prepupa; (c) male pupa. Right sides show venter of the prepupal or pupal stages; left sides show dorsum of the prepupal or pupal stages. Scale bars: 0.2 mm.
Figure 6 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 6. Average numbers (with SD) of workers of Acropyga sauteri in clods with Eumyrmococcus smithii (open area) or without E. smithii (shaded area) in August and June. Numerals above the bars indicate the sample size (number of cubic clods).
Figure 9 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 9. Seasonal changes in the average numbers (with SE) of individuals of Acropyga sauteri per colony and the age structure (percentage of components). Numerals above the bars indicate the sample size (presumed number of ant colonies).
Figure 8 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 8. Distribution of the numbers of alate female ants (a) and alate male ants (b) per colony of Acropyga sauteri. A plot represents the variable for a colony or the average for multiple colonies in the vicinity. When multiple queens were sampled from certain clods in the vicinity, we estimated the average numbers of the reproductives by dividing the total number of queens into the total numbers of the reproductives. Numerals above the solid circles indicate the number of colonies used for the average estimation.
Figure 5 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 5. Percentage of clods containing more than five workers of Acropyga sauteri across depths. Numerals above the bars indicate the sample size (number of cubic clods).
Figure 11 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 11. Adult male, right side shows venter of the adult male; left side shows dorsum of the adult male. (a) Lateral view of genitalia of the adult male; (b) ventral view of genitalia of the adult male. Scale bar: 0.1 mm.
Figure 2 in Biological characterization of the obligate symbiosis between Acropyga sauteri Forel (Hymenoptera: Formicidae) and Eumyrmococcus smithii Silvestri (Hemiptera: Pseudococcidae: Rhizoecinae) on Okinawa Island, southern Japan
Figure 2. Schematic illustration of the method used to determine colony identity. (a) Distance (D) between two particular ant aggregations was defined as the distance between the centre of the two clods containing the two aggregations; (b) five workers were placed in a plastic cup covered with black paper; (c) an ant worker was introduced into another cup (of recipient workers); (d) the contact behaviour of recipient and introduced workers was observed; (e) the trial ended after contact had occurred two or three times, after which the introduced worker was returned to the original cup. In a match between two aggregations, the method described from (c) to (e) was repeated five times.
Fig. 2 in A new species and a new record of the genus Balanococcus Williams (Hemiptera: Coccoidea: Pseudococcidae) from China
Fig. 2. Adult female of Balanococcus kwoni Pellizzari & Danzig, 2007. A. Antenna. B. Trilocular pore. C. Spiracle. D. Hind leg. E. Tarsus and claw of hind leg. F. Small size of oral collar tubular duct. G. Large szie of oral collar tubular duct. H. Multilocular disc pores. I. Cerarius on anal lobe. J. Dorsal flagellate seta. K. Ventral flagellate seta.
Fig. 1 in A new species and a new record of the genus Balanococcus Williams (Hemiptera: Coccoidea: Pseudococcidae) from China
Fig. 1. Adult female of Balanococcus zhejiangensis sp. nov. A. Antenna. B. Dorsal flagellate setae. C. Small size of oral collar tubular duct. D. Trilocular pore. E. Cerarius on anal lobe. F. Ventral flagellate setae. G. Large size of oral collar tubular duct. H. Claw of hind leg. I. Hind coxa. J. Multilocular disc pores.
Figure 1 in The records of Nipaecoccus viridis (Newstead) (Hemiptera: Pseudococcidae) deposited in the Florida State Collection of Arthropods
Figure 1. Infestation of Nipaecoccus viridis on blueberries, Vaccinium sp. L., in Florida (FDACS-DPI # E2021-1340-1). a) Adult female. b) Adult female with ovisac. c) Adult females with ovisacs stacked on top of one another. d) Close-up (10×) view of an adult female.
Figure 3 in The records of Nipaecoccus viridis (Newstead) (Hemiptera: Pseudococcidae) deposited in the Florida State Collection of Arthropods
Figure 3. Infestation of Nipaecoccus viridis on Nerium oleander L. (FDACS-DPI # E2027-01-04292022-03815) and Jatropha sp. L. (FDACS-DPI # E2028-01-04292022-03816) in Florida. a) Adult females with ovisacs coinfested with Fiorinia phantasma Cockerell and Robinson on jatropha (naked eye view). b) Clusters of adult females on oleander (naked eye view).
Figure 2 in The records of Nipaecoccus viridis (Newstead) (Hemiptera: Pseudococcidae) deposited in the Florida State Collection of Arthropods
Figure 2. Infestation of Nipaecoccus viridis on hemp, Cannabis sativa L., in Florida (FDACS-DPI # E2021-1852-1). a) Settled 3rd instar and young adult females. b) 1st and 2nd instar (10 ×).
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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.