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Fig. 5 Erythraeus phalangoides, larva. a in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 5 Erythraeus phalangoides, larva. a Gnathosoma (and scutum), dorsal view. b Odontus. c Gnathosoma, ventral view. d Palp tarsus
Figures 13–19 in Protocol for the in vitro rearing of Frieseomelitta varia workers (Hymenoptera: Apidae: Meliponini)
Figures 13–19. Development phases of Frieseomelitta varia reared in vitro: (13) Pw: white-eyed pupa, unpigmented cuticle; (14) Pp: pink-eyed/pharate-adult transition, unpigmented cuticle; (15) Pb: brown-eyed pharate-adult, unpigmented cuticle; (16) Pbl: brown-eyed pharate-adult, light pigmented cuticle; (17) Pbm: brown-eyed pharate-adult, intermediary pigmented cuticle; (18) Pbd: brown-eyed pharate-adult, dark pigmented cuticle; (19) recently emerged (all pupae incubated at 30 C and 75% humidity). Developmental phases modified from Hartfelder et al. (2006). Images made with a Carl-Zeiss microscope. Scale bars: 13–18 = 4 mm, 19 = 5 mm.
Figures 1–3 in Protocol for the in vitro rearing of Frieseomelitta varia workers (Hymenoptera: Apidae: Meliponini)
Figures 1–3. Photo of a representative healthy Frieseomelitta varia nest used to collect larval food for in vitro rearing experiments showing: (1) the interior of the F. varia nest with brood cells and pollen pots; (2) the shape of the brood cells in clusters; (3) arrow A indicates a brood cell of a queen developing in the nest and arroe B indicates a brood cell of a worker. Note that the size of both cells are different sizes.
Figures 4–8 in Protocol for the in vitro rearing of Frieseomelitta varia workers (Hymenoptera: Apidae: Meliponini)
Figures 4–8. Procedure to transfer larvae to new clean and sterilized acrylic plates: (4) preparation of larvae for transfer, arrow A indicates an acrylic plate on which F. varia workers were produced and arrow B indicates paper towels; (5) acrylic plate with wells facing down and paper towel, arrow A indicates larvae inside the plate wells with the presence of larval food remains during the defecation period and arrow B indicates paper towels; (6) Larvae transferred to paper towel; (7) arrow indicates collecting larvae with an adapted toothpick. The size of the toothpick is 7 mm and the tape is 10 mm; (8) larvae transferred to clean and sterilized acrylic plates.
Figures 9–12 in Protocol for the in vitro rearing of Frieseomelitta varia workers (Hymenoptera: Apidae: Meliponini)
Figures 9–12. Creation of a larval capture device: (9) arrow A indicates the toothpick and B indicates the antiseptic string or line fitted to the toothpick; (10) arrow indicates an adhesive tape (any tape can be used); (11) arrow indicates the tape was wrapped around the toothpick, securing the thread; (12) larvae capture device (larvae are C-shaped and fit perfectly with the line capture method).
Figure 2 in Molecular tool for monitoring the safety of Aedes (Stegomyia) aegypti Rockefeller rearing in arthropod containment facilities
Figure 2 Single Nucleotide Polymorphisms sites distribution in Aedes aegypti haplotypes according to the ND5 molecular marker. A) Phylogenetic estimation using the UPGMA method. Aa Rock 1 to 22, A. aegypti Rockefeller sequences obtained from 22 laboratory-bred Rock strain individuals. Aa, A. aegypti sequences obtained from towns located in the southeast of Buenos Aires Province (Lezama (LEZ), Castelli (CAS), Dolores (DOL), San Clemente del Tuyú (SC), Chascomús (CHA), La Plata City (LP) and from Buenos Aires City (BA). H1 to H14, 14 haplotypes reported by Albrieu Llinás and Gardenal (2012) and Díaz-Nieto et al. (2016) Rock contig 1 to 14, Illumina-contigs (A. aegypti Rock_Contig 1 to 14). Aa LVP, sequence from mitochondrial genome of A. aegypti Liverpool strain (LVP_AGWG). LVPib, A. aegypti inbred sub-strain LVPib12 according to Table 1. B) Its distribution along South America. The map was drawn from free maps of the website of the National Geographic Institute http://www.ign.gob.ar/AreaServicios/Descargas/MapasEscolares. The areas on the map were colored using Adobe Illustrator CS6 program.
Fig. 1 in Cotesia invirae, sp. nov., from South Brazil: a new gregarious microgastrine wasp (Hymenoptera: Braconidae) reared from Opsiphanes invirae (Nymphalidae) feeding on palms
Fig. 1. (a) Lateral view of female Cotesia invirae; (b) view of the labrum, mandibles and labial palps; (c) front view of the face; (d) lateral view of the antenna; (e) dorsal view of the mesosoma; (f) dorsal view of abdomen; (g) view of the forewing in situ; (h) details of the spurs of the tibia (inner and outer); (i) larvae of C. invirae; (j) front view of the pupa of C. invirae; (k) dorsal view of pupa of C. invirae; (l) lateral view of the pupa of C. invirae; (m) front view of head, the larvae of C. invirae; (n) view of the cocoons of C. invirae, arranged regularly and secured with silk threads to each other in the form of palisades on the host. Some material here previously reported in Salgado-Neto (2013) as from C. alius.
Fig. 2 in Rearing Frankliniella zucchini Nakahara & Monteiro (Thysanoptera: Thripidae) on zucchini (Cucurbita pepo L. 'Caserta') fruits
Fig. 2. Morphology of adult female and instar II immature. Adult female (Frankliniella zucchini): (a) habitus; (b) head and pronotum; (c) abdominal tergites VIII–X; (d) hind coxae upper surface. (e) Hind coxae upper surface of Frankliniella gemina. Instar II immature (F. zucchini): (f) habitus; (g) head and pronotum; (h) meso- and metanotum; (i) abdominal tergites VIII–X.
Figure 2 in Rearing Fopius arisanus (Sonan) (Hymenoptera: Braconidae) on Mediterranean Fruit Fly and its Introduction into Senegal against Oriental Fruit Fly (Diptera: Tephritidae)
Figure 2. Mean (± SEM) numbers of B. dorsalis per kg and mean (± SEM) percent parasitism by F. arisanus from samples of mango and orange sampled from twelve locations between May 2012 and August 2014*.
Figure 1 in Rearing Fopius arisanus (Sonan) (Hymenoptera: Braconidae) on Mediterranean Fruit Fly and its Introduction into Senegal against Oriental Fruit Fly (Diptera: Tephritidae)
Figure 1. Twelve mango and orange sampling sites in the Casamance region of Senegal, with percent parasitism at each site in 2014.
Figure 1 in Performance of Anastrepha fraterculus (Wiedemann) (Diptera: Tephritidae) rearing on fruits of two guava varieties under forced infestation
Figure 1. Infestation parameters of Anastrepha fraterculus in guavas "Tailandesa" (red pulp) and "Kumagai" (white pulp). Bars with different letters indicate significant differences by Student´s t-test (P <0.05).
Figure 4 in Performance of Anastrepha fraterculus (Wiedemann) (Diptera: Tephritidae) rearing on fruits of two guava varieties under forced infestation
Figure 4. Plots of the principal component analysis of physical and physicochemical profile data for two guavas. PC1/PC2 scores () and loadings plot () accounted for 100.00% of the total variation. Samples: Red pulp ("Tailandesa" guava), White pulp ("Kumagai" guava). Trait abbreviations: pupae per fruit [PPF], pupal weight [PW], pupae per kg [PPK], pupal viability [PV], luminosity peel [LPE], a* peel [APE], b* peel [BPE], angle Hue peel [HPE], chromaticity peel [CPE], luminosity pulp [LPU], a* pulp [APU], b* pulp [BPU], angle Hue pulp [HPU], chromaticity pulp [CPU], peel firmness [PEF], pulp firmness [PUF], pH [PH], titratable acidity [TA], soluble solids [SS], ratio [RAT].
Figure 3 in Performance of Anastrepha fraterculus (Wiedemann) (Diptera: Tephritidae) rearing on fruits of two guava varieties under forced infestation
Figure 3. Pupae of Anastrepha fraterculus per fruit or kg as function of pupal viability and, pupal weight versus guava weight of "Tailandesa" (red pulp) and "Kumagai" (white pulp) varieties (n=42).
Figure 2 in Performance of Anastrepha fraterculus (Wiedemann) (Diptera: Tephritidae) rearing on fruits of two guava varieties under forced infestation
Figure 2. Pupal infestation pattern of Anastrepha fraterculus in guavas "Tailandesa" (red pulp) and "Kumagai" (white pulp) (n=42).
Figure 7 in Postembryonic development of nonmarine ostracod Chlamydotheca arcuata (Sars, 1901 (Crustacea: Ostracoda), reared in the laboratory
Figure 7. Chlamydotheca arcuata (Sars, 1901). Instar A-4 (MLP 26775). A, An1; B, An2; C, Md; D, Mx; E, T1; F, T2AnT3; G, CR. Scale bar: 100 µm. Arrows indicate first appearance of a feature.
Figure 4 in Postembryonic development of nonmarine ostracod Chlamydotheca arcuata (Sars, 1901 (Crustacea: Ostracoda), reared in the laboratory
Figure 4. Chlamydotheca arcuata (Sars, 1901). A–C, instar A-8 (MLP 26771). A, An1; B, An2; C, Md. D–G, instar A-7 (MLP 26772). D, An2; E, Md; F, Mx; G, CR. Scale bar: 100 µm. Arrows indicate first appearance of a feature.
Figure 3 in Postembryonic development of nonmarine ostracod Chlamydotheca arcuata (Sars, 1901 (Crustacea: Ostracoda), reared in the laboratory
Figure 3. Chlamydotheca arcuata (Sars, 1901). A, B, instar A-4 (MLP 26775). A, LV, EV; B, detail of posterior part of LV. C–E, instar A-3 (MLP 26776). C, LV, external view; D, detail of muscle scars; E, LV, IV. F, G, instar A-2 (MLP 26777). F, LV, EV; G, detail of posterior part of LV. Scale bars: 100 µm for A, C, 200 µm for E, F.
Figure 2 in Postembryonic development of nonmarine ostracod Chlamydotheca arcuata (Sars, 1901 (Crustacea: Ostracoda), reared in the laboratory
Figure 2. Chlamydotheca arcuata (Sars, 1901). A–D, SEM photographs of eggs (MLP 26771). A, B, eggs. C, detail of egg. D, eggs attached to the internal surface of carapace. E, instar A-8 (MLP 26771), Cp, DV. F, G, instar A-7 (MLP 26772). F, RV, EV; G, LV, EV. H, instar A-6 (MLP 26773), RV, IV. I–L, instar A-5 (MLP 26774). I, RV, EV; J, LV, IV; K, RV, IV; L, detail of posterior part of RV. Scale bars: 50 µm for A, B, E, F, G; 100 µm for H, I, J, K.
Figure 6 in Postembryonic development of nonmarine ostracod Chlamydotheca arcuata (Sars, 1901 (Crustacea: Ostracoda), reared in the laboratory
Figure 6. Chlamydotheca arcuata (Sars, 1901). Instar A-5 (MLP26774). A, An1; B, An2; C, Mx; D, T2. Scale bar: 100 µm. Arrows indicate first appearance of a feature.
Figure 10 in Postembryonic development of nonmarine ostracod Chlamydotheca arcuata (Sars, 1901 (Crustacea: Ostracoda), reared in the laboratory
Figure 10. Chlamydotheca arcuata (Sars, 1901). Instar A-2 (MLP 26777). A, An1; B, An2; C, Md; D, Mx; E, T1; F, T2. Scale bar: 50 µm. Arrows indicate first appearance of a feature.
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Allen Brain Atlas
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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
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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
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