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229 results for “gall associated”
Figure 13 in Description, molecular phylogeny, and natural history of a new kleptoparasitic species of gelechiid moth (Lepidoptera) associated with Melastomataceae galls in Brazil
Figure 13. Seasonal abundance of cecidogenous (Palaeomystella fernandesi, dashed line) and kleptoparasite (Locharcha opportuna, solid line) larvae in galls (total = 164 and 169 individuals, respectively) induced on Tibouchina sellowiana plants at CPCN Pró-Mata, from April 2012 through June 2013. Arabic numbers from 1 to 14 represent 30-day sampling intervals. Upper horizontal bars indicate host plant phenological phases: red, flowering; green, fruiting; blue, dormancy; black, forming new shoots.
Figure 7 in Description, molecular phylogeny, and natural history of a new kleptoparasitic species of gelechiid moth (Lepidoptera) associated with Melastomataceae galls in Brazil
Figure 7. Locharcha opportuna pupa, in dorsal (A), ventral (B) and lateral (C) views, respectively. Scale bar = 1 mm.
Fig. 1 in Management of staining and galling associated with oxhorn bucida trees in Florida
Fig. 1. Staining on street caused by the caterpillars and mites that feed on oxhorn bucida (black olive) trees. Fig. 2. Bean-like galls caused by the eriophyid mites that feed on oxhorn bucida (black olive) flowers. Normal flower clusters in background. Note the piles of dark caterpillar frass ejected from holes in galls.
Figure 2 in Insect galls associated with Copaifera sabulicola J.A.S Costa & L.P Queiroz (Fabaceae): Characterization and new records
Figure 2 Gall morphotypes found on Copaifera sabulicola J.A.S Costa & L.P. Queiroz (Fabaceae) in Serra da Bandeira (Barreiras, Bahia, Brazil) from April 2015 to March 2016.
Figure 1 in Insect galls associated with Copaifera sabulicola J.A.S Costa & L.P Queiroz (Fabaceae): Characterization and new records
Figure 1 (A) Abundance and (B) frequency of gall morphotypes (%) found on Copaifera sabulicola J.A.S Costa & L.P. Queiroz (Fabaceae) in Serra da Bandeira (Barreiras, Bahia, Brazil) from April 2015 to March 2016.
Figure 1 in The community components associated with two common rose gall wasps (Hymenoptera: Cynipidae: Diplolepidini) in Turkey
Figure 1. Relative abundances of the community members in Diplolepis fructuum galls (community members that have less than 1% abundance were not included in the graph).
Figs. 11–13 in Lopesia leandrae (Diptera, Cecidomyiidae), a new species of gall midge associated with Leandra ionopogon (Mart.) Cogn. (Melastomataceae), a native plant to Brazil
Figs. 11–13. Lopesia leandrae, sp. n., female. 11. Fifth flagellomere. 12. 6th–8th abdominal segments (lateral view). 13. Cerci (ventral view). Scale bars in mm.
Figs. 3–4 in Lopesia leandrae (Diptera, Cecidomyiidae), a new species of gall midge associated with Leandra ionopogon (Mart.) Cogn. (Melastomataceae), a native plant to Brazil
Figs. 3–4. Lopesia leandrae, sp. n., pupa. 4. Head (ventral view).5. Seventh abdominal segment (dorsal view). Scale bars in mm.
Figs. 1–2 in Lopesia leandrae (Diptera, Cecidomyiidae), a new species of gall midge associated with Leandra ionopogon (Mart.) Cogn. (Melastomataceae), a native plant to Brazil
Figs. 1–2. Lopesia leandrae, sp. n., larva 1. Prothoracic spatula and associated papillae (ventral view). 2. 8th–9th abdominal segments (ventral view). Scale bars in mm.
Fig. 1 in Ant fauna associated with Microgramma squamulosa (Kaulf.) de la Sota (Polypodiaceae) fern galls
Fig. 1. (A) Stem gall on Microgramma squamulosa (arrow); (B) Ecdyse of the microlepidoptera galler that emerged from the gall (arrow); (C) hole left by the exiting galler (arrow); (D) sectioned gall exhibiting ants living inside.
Fig. 5 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)
Fig. 5. Susceptibility of Jatropha gossypiifolia to Prodiplosis longifila. Morphologically similar galls induced on control Jatropha clavuligera (A) and Jatropha gossypiifolia (B) plants under no-choice conditions in quarantine in Pretoria, South Africa. Galling on a transplanted Jatropha gossypiifolia plant under the natural field conditions in Bolivia (C).
Fig. 4 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)
Fig. 4. Relationship between the number of branches per plant and number of shoot tips with Prodiplosis longifila galls (A) and percentage of shoots (± SE) with Prodiplosis longifila galls (B) across 3 sites in Bolivia in Feb 2016. Different letters above SE bars indicate significant differences (Tukey's test, P <0.001).
Fig. 3 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)
Fig. 3. Incidence of Prodiplosis longifila galls on Jatropha clavuligera (percentage of plants with galls) in relation to (A) sites and (B) sampling yr and season (± SE). Different letters above SE bars indicate significant differences (Tukey's test, P <0.001).
Fig. 1 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)
Fig. 1. Rosette galls induced by Prodiplosis longifila in the growing shoot tip of Jatropha clavuligera. (A) Rosette gall in the terminal and axillary buds of Jatropha clavuligera with swollen petiole and rachis and malformed leaves. (B) Young gall in Jatropha clavuligera showing early stage larvae feeding on the nutritive tissue of the gall with no evidence of cell necrosis and fungal growth.
Fig. 2 in Host associations of gall-inducing Prodiplosis longifila (Diptera: Cecidomyiidae) from Bolivia: implications for its use as a biological control agent for Jatropha gossypiifolia (Euphorbiaceae)
Fig. 2. Morphological and histological changes in the rosette galls induced by Prodiplosis longifila on Jatropha clavuligera. (A) Vertical sectional view of a portion of the galled shoot showing the inflamed axillary position (*) (bar = 1 mm). (B) Cross sectional view of a portion of the galled shoot showing the hyperplasied stems and leaves (bar = 0.33 mm); * indicates the location where the larvae congregate; le = leaf. (C) Cross sectional view of a galled leaf showing the intense hyperplasied upper mesophyll (bar = 0.18 mm); arrows point to the hypertrophied epidermis. (D) Cross sectional view of a leaf axil (bar = 0.33 mm); * indicates the location where the larvae congregate; note the vertically dividing epidermal cells towards the bottom, whereas the laterally occurring epidermal cells are hypertrophied. (E) Cross sectional view of the stem showing variously dividing cortical cells (bar = 30 μm); the arrow indicates cell proliferation. (F) Compactly arranged parenchymatous nutritive cells, each with a prominent nucleus (n) and dense cytoplasm (cyt) (bar = 10 μm). (G) Low magnification image of galled stem showing layers of nutritive cells (nc), where the larvae feed (lfs) (bar = 30 μm). In fact, the cells lying opposite, which appear to be empty, show signs of regeneration (rc). In the far interior of the stem cortex, numerous phenol-included cells (pic) occur. Far interior into the stem cortex numerous phenol including cells (pic) occur. (H) An enlarged view of a phenol-including cell (bar = 18 μm).
Linked collectors and determiners for: One hundred and sixty years of taxonomic confusion resolved: Belonocnema (Hymenoptera: Cynipidae: Cynipini) gall wasps associated with live oaks in the USA.
Natural history specimen data linked to collectors and determiners held within, "One hundred and sixty years of taxonomic confusion resolved: Belonocnema (Hymenoptera: Cynipidae: Cynipini) gall wasps associated with live oaks in the USA". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/9182a649-923b-4a69-bac0-d41873ded32e">https://bionomia.net/dataset/9182a649-923b-4a69-bac0-d41873ded32e</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/9182a649-923b-4a69-bac0-d41873ded32e">https://gbif.org/dataset/9182a649-923b-4a69-bac0-d41873ded32e</a>. Formatted as a Frictionless Data package.
Figures 5-7 in A new species of gall midge (Diptera, Cecidomyiidae) associated with Pleroma raddianum (DC.) Gardner (Myrtales: Melastomatacea), an endenic plant to Brazil
Figures 5-7. Lopesia pleromatis, sp. nov. Maia, male: (5) Wing; (6) 6th-8th abdominal segments (lateral view); (7) Terminalia, dorsal view.
Figures 12-14 in A new species of gall midge (Diptera, Cecidomyiidae) associated with Pleroma raddianum (DC.) Gardner (Myrtales: Melastomatacea), an endenic plant to Brazil
Figures 12-14. Lopesia pleromatis, sp. nov. Maia, female: (12) 6th-8th abdominal segments (dorsal view); (13) 6th-8th abdominal segments (ventral view); (14) Cerci (ventral view).
Figures 19-24 in A new species of gall midge (Diptera, Cecidomyiidae) associated with Pleroma raddianum (DC.) Gardner (Myrtales: Melastomatacea), an endenic plant to Brazil
Figures 19-24. Lopesia pleromatis, sp. nov. Maia, pupa: (19) Prothoracic spiracle; (20-22) Apex of prothoracic spiracle; (23) 2nd-4th abdominal segments (dorsal view); (24) terminal segment (dorsal).
Figures 25-26 in A new species of gall midge (Diptera, Cecidomyiidae) associated with Pleroma raddianum (DC.) Gardner (Myrtales: Melastomatacea), an endenic plant to Brazil
Figures 25-26. Lopesia pleromatis, sp. nov. Maia, larva: (25) Prothoracic spatula and associated papillae (ventral view); (26) Terminal segment (dorsal view).
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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)
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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.