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Figure 2 in Production of Honeydew by Scale Insects Associated with Bracatinga (Mimosa scabrella Benth) in Serra Catarinense, Southern Brazil
Figure 2 Instantaneous volume available per drop of honeydew (µl) (bars) and sugar concentration (%) (line). Average values of the volume and concentration of sugars during the three evaluation years (Fig. A). Average values of honeydew volume and sugar concentration over the months of 2002 (Fig. B), 2003 (Fig. C) and 2004 (Fig. D). No evaluations were carried out in January, November and December 2002; January, February, April and November 2003; or March, November and December of 2004. Capital letters in bars and lower letters in lines refer to the mean test for the volume and concentration of honeydew sugars, respectively. Means followed by the same letter (uppercase or lowercase) indicate that the values do not differ significantly (SNK = 0.05).
Figure 1 in Production of Honeydew by Scale Insects Associated with Bracatinga (Mimosa scabrella Benth) in Serra Catarinense, Southern Brazil
Figure 1 Studied Bracatingal, Bom Retiro, SC,Brazil (A), bracatinga plant (Mimosa scabrella Benth.) (B), trunk of bracatinga infested by scale insects (C), and detail of trunk showing anal filaments of excretion of the scale insect (D and E). WF: wax filament; HD: honeydew drop. Photo: Maritza Martins.
Fig. 5 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA
Fig. 5. Maximum Likelihood phylogenetic reconstruction of Conoideocrella species, using an SSU-LSU-tef1-ITS concatenated dataset with Metarhizium granulomatis (Sigler) Kepler, S.A. Rehner & Humber (Clavicipitaceae) as designated outgroup taxon, and showing host, sexual state and county of isolation. Ex-type species denoted as ExT.
Fig. 4 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA
Fig. 4. Features of Conoideocrella luteorostrata: (A) stromatic tissue (white arrow) on Fiorinia externa (black arrow); (B) details of stromatic hyphae on 10% KOH, 40×; (C) 1 mo old culture on PDA (lef) and oatmeal agar (right); (D) conidiophore; and (E) spores, 100×.
Fig. 3 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA
Fig. 3. Field view of Fiorinia externa collected on Abies fraseri from Glade Creek, North Carolina, USA (FDACS-DPI, sample #2019-6449) (A); its slide-mounted view (B); antennae on submargin of the head with short spur (C); anterior spiracle with pores (D); pygidium with five marginal macroducts (E); close-up of wide macroduct (F); antennae on the margin of head, with a long spur, of F. fioriniae collected on Chamaerops humilis from Ocala, Florida, USA (2019-4546) (G); antennae on the margin of head, with a short spur and processing between antennae, of F. phantasma collected on Ligustrum japonicum from Boynton Beach, Florida, USA (2020-1365) (H); pygidium with 4 marginal macroducts (I); close-up of narrow macroduct (J).
Fig. 2 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA
Fig. 2. Original localities of intercepted shipments of Christmas trees in 2019 (shown as circle) and 2020 (triangle). Samples with entomopathogenic fungus Conoideocrella luteorostrata are colored in blue and without fungus in red. Major cities are shown as black diamonds.
Fig. 1 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA
Fig. 1. Features of Fiorinia externa: (A) 30× view of alive first instar (crawler); (B) 30× view of adult female body (inside cover) with exuviae of first and second instar; (C) naked eye view of entomopathogenic fungus Conoideocrella luteorostrata on different stages of F. externa (black arrow heads); (D) close-up of C. luteorostrata covering F. externa (black arrow heads).
FIG. 8 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 8. — Microphotographs of female specimens of Pseudococcus luciae n. sp. A, body; B, oral rim tubular duct with upper view (picture above) and lateral view (picture down); C, discoidal bilocular pore; D, antenna; E, eyespot with upper view (picture above) and lateral view (picture down); F, tarsal digitules; G, circulus; H, anal lobe; I, multilocular disc pore; J, oral collar tubular duct. Scale bars: A, 300 µm; B, C, H-J, 4 µm; F, µm; 10 D, E, G, 20 µm.
FIG. 6 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 6. — Microphotographs of female specimens of Paraputo nasai Caballero n. sp.: A, body; B, cerarii; C, eyespot associated with discoidal pores; D, hind femur and hind tibia with translucent pores; E, tarsal digitules; F, circulus; G, anal lobes; H, multilocular disc pores on abdominal segment VII; I, large oral collar tubular ducts (one-tipped arrow) and small oral collar tubular duct (double-tipped arrow) on margin of abdominal segment V. Scale bars: A, 400 µm; B, 30 µm; C, E, G-I, 20 µm; D, 50 µm; F, 40 µm.
FIG. 5 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 5. — Taxonomic illustration of Paraputo nasai n. sp. adult ♀, with enlarged details: A, cerarii; B, trilocular pore; C, smaller discoidal pore; D, larger discoidal pore; E, antenna; F, hind femur and tibia; G, multilocular disc pore; H, smaller oral collar tubular duct; I, larger oral collar tubular duct; J, trilocular pore; K, discoidal pore. Scale bars: A, D, H-J, 5 µm; B, K, 3 µm; C, L, 2 µm; E, F, 100 µm.
FIG. 4 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 4. — Microphotographs of female specimens of Distichlicoccus takumasae n. sp.: A, body; B, oral rim tubular duct in lateral and surface views; C, antenna; D, eyespot; E, hind leg with translucent pores (arrows); F, anal lobe; G, multilocular disc pore; H, oral collar tubular duct. Scale bars: A, 300 µm; B, G, H, 5 µm; C, 30 µm; D, 10; E, 40 µm; F 20 µm.
FIG. 1 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 1. — Taxonomic illustration of Newsteadia andreae n. sp. adult ♀: A, section of wax plate; B, spine; C, flagellate seta; D, type I quadrilocular pore; E, simple pore; F, type II quadrilocular pore; G, anal ring; H, antenna; I, labium in dorsal (left side) and ventral (right side) view; J, fore leg; K, trochanter with two spine-like setae (arrows); L, thoracic spiracle; M, abdominal spiracle; N, longitudinal section of ovisac band. Scale bars: A, M, N, 20 µm; B-D, F, 5 µm; E, 3 µm; G, K, L, 30 µm; H-J, 100 µm.
FIG. 3 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 3. — Taxonomic illustration of Distichlicoccus takumasae n. sp. adult ♀: enlarged details with measurements correspond to: A, cerarius; B, dorsal trilocular pore; C, dorsal oral rim tubular duct; D, dorsal simple discoidal pore; E, dorsal bilocular discoidal pore; F, antenna; G, hind femur and tibia; H, ventral trilocular pore; I*, multilocular disc pore, present in only one paratype; J, ventral simple discoidal pore; K, ventral bilocular pore; L, ventral oral rim tubular duct; M, ventral oral collar tubular duct. Scale bars: B, D, H, J, K, 3 µm; A, C, E, I, L, M, 5 µm; F, G, 50 µm.
FIG. 7 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 7. — Taxonomic illustration of Pseudococcus luciae n. sp. adult ♀, enlarged details: A, cerarius; B, tritubular pore; C, oral rim tubular duct; D, dorsal large discoidal pore; E, dorsal small discoidal pore; F, discoidal bilocular pore; G, antenna; H, hind femur and tibia; I, trilocular pore; J, multilocular disc pore; K, ventral discoidal pore; L, ventral discoidal bilocular pore; M, oral rim tubular duct; N, oral collar tubular duct. Scale bars: A-F, H-K, 5 µm; G, 100 µm; M, N, 6 µm.
FIG. 2 in Four new scale insect species (Hemiptera: Coccomorpha) associated with coffee roots in Colombia, South America, with identification keys for genera Newsteadia Green, 1902, Distichlicoccus Ferris, 1950, and Paraputo Laing, 1929
FIG. 2. — Microphotographs of female specimens of Newsteadia andreae n. sp.: A, body; B, quadrilocular pores in singles and pairs (single-headed arrows) and simple pores (double-headed arrows); C, anal ring; D, apex of antenna with apical longer fleshy setae (ls), subapical fleshy setae (sa), and apical shorter setae (ss); E, distal fleshy setae (ds) and flagellate setae (fs); F, eyespot separate from antennal base; G, mid-leg trochanter with spine-like setae (double-head arrows) and placoid sensilla (single-headed arrows); H, thoracic spiracle; I, abdominal spiracle. Scale bars: A, 400 µm; B, 4 µm; C, H, 30 µm; D, F, 40 µm; E, G, I, 20 µm.
Figure 2. Foldilecanium multisetosus Kondo. A in Transfer of the myrmecophilous soft scale insect Neolecanium amazonensis Foldi to Foldilecanium gen. nov. (Hemiptera: Coccidae), with description of a new species from Colombia.
Figure 2. Foldilecanium multisetosus Kondo. A) Colony of various growth stages, with adult females in center of photo. Inset photo showing an adult female with flaky, glassy wax cover. B) Colony of older and heavily sclerotized adult females being tended by Azteca sp. ants. All photos taken after removal of ant cartons.
Figures 1-9 in Notes on oak-infesting species of scale insects (Hemiptera: Coccoidea) in Korea
Figures 1-9. Two species of scale insects on oak trees in Korea. 1-4. Asterodiaspis luteola (Russell). 1) Habitus. 2) Female. 3) Apical setae. 4) Anterior and posterior spiracular furrows (arrow: quinquelocular pores). 5-9. Nidularia japonica Kuwana. 5) Habitus. 6) Female. 7) Antenna. 8) Anal ring. 9) Tubular ducts on dorsal abdominal segments.
Figure 1. Colombian Crypticerya spp. A in First records of the iceryine scale insects Crypticerya brasiliensis (Hempel) and Crypticerya genistae (Hempel) (Hemiptera: Monophlebidae) for Colombia
Figure 1. Colombian Crypticerya spp. A. Crypticerya abrahami (Newstead) after removing bark of tree trunk of Pithecelobium dulce. Note absence of long waxy secretions and ovisac. B. Crypticerya brasiliensis (Hempel). Note long and curved lateral waxy filament laterad to long caudal tuft (red arrow). C. Crypticerya genistae (Hempel). Note absence of long waxy tufts and presence of a long ovisac. D. Crypticerya montserratensis (Riley and Howard). Note very long thread-like waxy filaments. E. Crypticerya multicicatrices Kondo and Unruh. Note shorter waxy filament laterad to long caudal tuft (red arrow). F. Crypticerya zeteki (Cockerell). Note filament of intermediate length laterad to long caudal tuft. Photos: B by A. Caballero, A, C, E, F by T. Kondo, D reproduced from illustration by Riley and Howard (1890).
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.
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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.