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Figure 4 Hybosa acutangula Boheman, 1855 in Description of larva, pupa, and genitalia of Hybosa acutangula Spaeth, 1913 (Coleoptera: Chrysomelidae: Cassidinae) from the Brazilian Cerrado

Figure 4 Hybosa acutangula Boheman, 1855. Fifth instar larvae, mouthparts: a, left mandible, ventral view; b, right mandible, ventral view; c, labium, ventral view. LBM, labium; LBP, labial palpus; LGL, ligula; MAL, mala; MDT, mandibular teeth; MXP, maxillary palpus; PPG, palpiger. PRM, prementum; PSM, postmentum. Scale bar = 1 mm.

opencc-by-4.0Feb 2024View details →
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Figure 3 Hybosa acutangula Boheman, 1855 in Description of larva, pupa, and genitalia of Hybosa acutangula Spaeth, 1913 (Coleoptera: Chrysomelidae: Cassidinae) from the Brazilian Cerrado

Figure 3 Hybosa acutangula Boheman, 1855. Fifth instar larvae, frontal view of the head. ANT, antenna; ECS, epicranial suture; LBR, labrum; STM, stemma. Scale bar = 1 mm.

opencc-by-4.0Feb 2024View details →
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Figure 4 in The predatory behavior of Hydrotaea albuquerquei (Lopes) larvae on the larvae of Musca domestica Linnaeus under laboratory conditions

Figure 4. Functional Response. The predatory capacity of H. albuquerquei larvae (predator) on Musca domestica larvae (prey) at different proportional prey densities to the total number of larvae (200 individuals) of predators and prey in other encounters. The statistical model (Poisson distribution with correction of the distribution for Quasipoisson) of the predatory capacity is in the upper portion of the graph. H1M1, H. albuquerquei first-instar larvae versus M. domestica first-instar larvae. H2M1, H. albuquerquei second-instar larvae versus M. domestica first-instar larvae. H3M1, third-instar larvae of H. albuquerquei versus first-instar larvae of M. domestica. H3M2, third-instar larvae of H. albuquerquei versus second-instar larvae of M. domestica.

opencc-by-4.0Dec 2023View details →
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Figure 3 in The predatory behavior of Hydrotaea albuquerquei (Lopes) larvae on the larvae of Musca domestica Linnaeus under laboratory conditions

Figure 3. Survival of predator (%) of Hydrotaea albuquerquei larvae (predator) at different proportional densities of prey with the total number of larvae (200 individuals) of predators and prey in other encounters. The statistical model (Binomial distribution with correction of the distribution for Quasibinomial) of the predator's survival is in the upper portion of the graph to the H1M1, H2M1 and H3M1 encounters. H1M1, H. albuquerquei first-instar larvae versus M. domestica first-instar larvae. H2M1, H. albuquerquei second-instar larvae versus M. domestica first-instar larvae. H3M1, third-instar larvae of H. albuquerquei versus first-instar larvae of M. domestica. H3M2, third-instar larvae of H. albuquerquei versus second-instar larvae of M. domestica.

opencc-by-4.0Dec 2023View details →
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Figure 2 in The predatory behavior of Hydrotaea albuquerquei (Lopes) larvae on the larvae of Musca domestica Linnaeus under laboratory conditions

Figure 2. Survival of prey (%) of Musca domestica larvae (prey) at different proportional prey densities to the total number of larvae (200 individuals) of predators and prey in other encounters. The statistical model (Binomial distribution with correction of the distribution for Quasibinomial) of the prey survival is in the upper portion of each graph. H1M1, H. albuquerquei first-instar larvae versus M. domestica first-instar larvae. H2M1, H. albuquerquei second-instar larvae versus M. domestica first-instar larvae. H3M1, third-instar larvae of H. albuquerquei versus first-instar larvae of M. domestica. H3M2, third-instar larvae of H. albuquerquei versus second-instar larvae of M. domestica.

opencc-by-4.0Dec 2023View details →
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Figure 1 in The predatory behavior of Hydrotaea albuquerquei (Lopes) larvae on the larvae of Musca domestica Linnaeus under laboratory conditions

Figure 1. Diagram showing the sampling design of the interaction of larvae of different instars (1, 2 and 3) between the predator Hydrotaea albuquerquei (H) and the prey Musca domestica (M). The other encounters (HM) considered the differences in size between the larvae of the species. In each encounter (HM) of the different instars, 200 larvae of the species were placed together in different proportions considering the ratio of M. domestica larvae (M) to eachH.albuquerquei larva (H), establishing proportional densities between predators (H) and preys (M) in agreement with Table 1. For each encounter and density, triplicates were performed.

opencc-by-4.0Dec 2023View details →
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Fig. 3 in The Oriental Genus Shangomyia Saether & Wang (Chironomidae: Diptera): Immature Stages, Biology, Putative Relationships And The Evolution Of Wood Mining In Chironomid Larvae

Fig. 3. Reduced phylogeny for Chironominae, strict consensus, all characters unordered. Abbreviations – 'Pseu' – 'Pseudochironomini', a paraphyletic grade on these data; 'INF' – monophyletic clade, 'K1', Imparipecten, Nilodosis, Fissimentum; SSH – monophyletic clade, Stenochironomus, Shangomyia, Harrisius. 'connectens' 1 and 2 – an informal grouping, possibly monophyletic but unresolved in this analysis, comprising 1. Polypedilum, Pagastiella and relatives, and 2 Stictochironomus and relatives with 6-segmented larval antenna and alternate Lauterborn organs.

opencc-by-4.0Dec 2003View details →
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Fig. 2 in The Oriental Genus Shangomyia Saether & Wang (Chironomidae: Diptera): Immature Stages, Biology, Putative Relationships And The Evolution Of Wood Mining In Chironomid Larvae

Fig. 2. Shangomyia impectinata Saether & Wang, 1993, Pupa, male hypopygium; A. Tergites, dorsal; B. anterior tergite IV; C. posterior tergite VI. D. Male hypopygium, left side dorsal, right side ventral/ stylised internal.

opencc-by-4.0Dec 2003View details →
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Figure 6 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever

Figure 6. Aedes aegypti larval mortality when exposed to 1000 infective juveniles (IJs) of Heterorhabditis bacteriophora at different depths of water.

opencc-by-4.0Aug 2021View details →
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Figure 2. A in Susceptibility of Agriotes spp. larvae (Coleoptera: Elateridae) to stress-and-kill strategies using spinosad and the entomopathogenic fungus Metarhizium brunneum

Figure 2. A: MetarhIzIum brunneum strain ART2825 growth in the tracheae of AgrIotes obscurus 22 days posttreatment. B: ART2825 fungal colonization in the integument of A. obscurus 22 days posttreatment.

opencc-by-4.0Jun 2021View details →
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Figure 3. A in Susceptibility of Agriotes spp. larvae (Coleoptera: Elateridae) to stress-and-kill strategies using spinosad and the entomopathogenic fungus Metarhizium brunneum

Figure 3. A: Sporulation of MetarhIzIum brunneum strain 16P on AgrIotes sordIdus 21 days posttreatment (zoom ×6.7). B: M. brunneum strain 16P primary and secondary fungal growth, with melanotic spots (black arrow) on A. sordIdus (×6.7). C: ART2825 fungal growth on the cuticle of A. obscurus 22 days posttreatment. D: Fungal growth on the cuticle of A. obscurus, which could correspond to the secondary growth on the sclerites.

opencc-by-4.0Jun 2021View details →
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Figure 2 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever

Figure 2. Susceptibility of Aedes aegypti larvae to different species of EPN. Five 3rd instar larvae exposed to 1000 infective juveniles (IJs) and mortality assessed daily over 3-day period (DPI).

opencc-by-4.0Aug 2021View details →
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Figure 1. A in Susceptibility of Agriotes spp. larvae (Coleoptera: Elateridae) to stress-and-kill strategies using spinosad and the entomopathogenic fungus Metarhizium brunneum

Figure 1. A: Leg of AgrIotes obscurus exposed to MetarhIzIum brunneum strain ART2825 48 h posttreatment. B: intersegment area of A. obscurus exposed to M. brunneum strain F52 36 h posttreatment, C: Depression at the base of a setae of A. obscurus with F52 conidia 24 h posttreatment, D: Melanization on A. sordIdus exposed to M. brunneum strain 16P 21 days posttreatment (zoom x 6.7).

opencc-by-4.0Jun 2021View details →
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Figure 4 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever

Figure 4. Melanization of Heterorhabditis bacteriophora within Aedes aegypti larvae (3rd instar). A melanized H. bacteriophora within dead Ae. aegypti larvae (a), close up picture of melanized nematode upon larval dissection (b), nematodes representing different stages of melanization recovered from one dead Ae. aegypti larvae (c). Arrows indicate melanized nematode within Ae. aegypti larvae.

opencc-by-4.0Aug 2021View details →
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Figure 7 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever

Figure 7. Aedes aegypti larval mortality when exposed to supernatants and cell suspensions of Xenorhabdus nematophila (X. n.) and Photorhabdus laumondii (P. l.) in 24 well plates. Different uppercase or lower letters above error bars indicate statistical significance (Tukey's test p ≤ 0.05).

opencc-by-4.0Aug 2021View details →
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Figure 3 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever

Figure 3. Different stages of Heterorhabditis bacteriophora colonization of Aedes aegypti larvae (3rd instar). H. bacteriophora within larvae at 2-day post inoculation (a), H. bacteriophora emerging out of larvae upon larval dissection at 7-day post inoculation) (b), adult H. bacteriophora within larvae along with large number of infective juveniles (IJs) released from another adult H. bacteriophora (c). Black arrows indicate adult H. bacteriophora, whereas green arrows indicate newly emerged IJs.

opencc-by-4.0Aug 2021View details →
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Figure 3 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae

Figure 3. Weight (mean ± SE) of the nymphs in (a) first, (b) second, (c) third, (d) fourth, and (e) fifth instars and of (f) adults of Euborellia annulipes fed on an artificial diet, fourth instar larvae, and pupae of Plutella xylostella with different ages (days of development). Different letters on bars indicate significant differences among treatments in each treatment (as analyzed by the Student-Newman-Keuls test, p <0.05); ns = no significant differences among treatments.

opencc-by-4.0Jan 2022View details →
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Figure 2 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae

Figure 2. Survival of Euborellia annulipes adult females fed on an artificial diet, fourth instar larvae, and pupae of Plutella xylostella at different ages (days of development). Different letters indicate significant differences among treatments according to the log-rank test (p <0.05).

opencc-by-4.0Jan 2022View details →
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Figure 1 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae

Figure 1. Developmental time (mean ± SE) of the nymph stages of Euborellia annulipes fed on an artificial diet, fourth instar larvae, and pupae with different ages (days of development) of Plutella xylostella. Means followed by the same letter in the bars are not significantly different among treatments by the Student-Newmann-Keuls test (p <0.05).

opencc-by-4.0Jan 2022View details →
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Figure 2 in Genotoxic effects of oxyclozanide on hemocytes of Galleria mellonella (Lepidoptera: Pyralidae) larvae

Figure 2. Tail length (μm) in hemocytes of seventh instar larvae of G. mellonella. Bars represent the means (± SE) of four replicates. Means followed by different letters are significantly different from each other, p <0.05 (LSD Test).

opencc-by-4.0Apr 2023View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record