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1,854 results for “Host plant”
FIGURES 555–560 in Rearing mining flies (Diptera: Agromyzidae) from host plants as an instrument for associating females with males, with the description of seven new species
FIGURES 555–560. Phytomyza artemisivora Spencer; 555: cephalopharyngeal skeleton; 556: frontal view of head; 557: head viewed from the side; 558: oviscape, ventral receptacle and spermathecae proportionally; 559: spermatheca; 560: ventral receptacle.
FIGURES 412–420. Figures 412–415 in Rearing mining flies (Diptera: Agromyzidae) from host plants as an instrument for associating females with males, with the description of seven new species
FIGURES 412–420. Figures 412–415: Cerodontha (Dizygomyza) iraeos (Robineau-Desvoidy); 412: cephalopharyngeal skeleton; 413: frontal view of head; 414: head viewed from the side; 415: spermathecae. Figures 416–420: C. (Poemyza) incisa (Meigen); 416: cephalopharyngeal skeleton; 417: frontal view of head; 418: head viewed from the side; 419: oviscape and spermatheca proportionally; 420: spermatheca.
FIGURES 261–269. Figures 261–264 in Rearing mining flies (Diptera: Agromyzidae) from host plants as an instrument for associating females with males, with the description of seven new species
FIGURES 261–269. Figures 261–264: Phytomyza ranunculi (Schrank); 261: mines in Ranunculus repens leaf; 262–263: posterior segments of puparium; 262: lateral view; 263: posterior view; 264: posterior spiracles (posterior view). Figures 265–269: P. sedicola Hering; 265: mines in Hylotelephium telephium leaf; 266: "pupal blister" with puparium; 267–268: posterior segments of puparium; 267: lateral view; 268: posterior view; 269: posterior spiracles (posterior view).
FIGURES 104–111. Figures 104–106 in Rearing mining flies (Diptera: Agromyzidae) from host plants as an instrument for associating females with males, with the description of seven new species
FIGURES 104–111. Figures 104–106: Cerodontha (Poemyza) muscina (Meigen); 104: mine in Lolium giganteum leaf; 105– 106: posterior segments of puparium; 105: lateral view; 106: posterior view. Figures 107–108: C. (Poemyza) phragmitidis Nowakowski, posterior segments of puparium; 107: lateral view; 108: posterior view. Figures 109–111: C. (Poemyza) pygmaea (Meigen); 109: mine in Lolium giganteum leaf; 110–111: posterior segments of puparium; 110: lateral view; 111: posterior view.
FIGURES 19–28. Figures 19–22 in Rearing mining flies (Diptera: Agromyzidae) from host plants as an instrument for associating females with males, with the description of seven new species
FIGURES 19–28. Figures 19–22: Melanagromyza achilleacaulis spec. nov.; 19: puparium (indicated by arrow) in Achillea millefolium stem; 20–21: posterior segments of puparium; 20: lateral view; 21: posterior view; 22: posterior spiracles (posterior view). Figures 23–25: M. aenea (Meigen); 23–24: posterior segments of puparium; 23: lateral view; 24: posterior view. 25: posterior spiracles (posterior view). Figures 26–28: M. angeliciphaga Spencer; 26–27: posterior segments of puparium; 26: lateral view; 27: posterior view. 28: posterior spiracles (posterior view).
FIGURES 150–158. Figures 150–154 in Rearing mining flies (Diptera: Agromyzidae) from host plants as an instrument for associating females with males, with the description of seven new species
FIGURES 150–158. Figures 150–154: L. pusilla (Meigen); 150–151: mines; 150: "f. eupatorii" in Centaurea jacea leaf; 151: "f. pusilla" in Galeopsis bifida leaf. 152–153: posterior segments of puparium; 152: lateral view; 153: posterior view. 154: posterior spiracles (posterior view). Figures 155–158: Liriomyza heringi Nowakowski; 155: mine in Euphorbia esula leaf; 156–157: posterior segments of puparium; 156: lateral view; 157: posterior view. 158: posterior spiracles (posterior view).
Figure 5 in Effects of different ant species on the attendance of neighbouring hemipteran colonies and the outcomes for the host plant
Figure 5. Comparative analysis of abundance of non-trophobiont herbivores in plants with (a) Camponotus crassus and (b) Ectatomma tuberculatum interaction on shrubs of Banisteriopsis campestris in a Brazilian tropical savanna. [Mann-Whitney U-test; * indicates statistical difference in plants with C. crassus attending mealybugs; p <0.05; means ± 1 standard error (SE) are presented].
Figure 7 in Multi-scale patterns in the host specificity of plant-dwelling arthropods: the influence of host plant and temporal variation on species richness and assemblage composition of true bugs (Hemiptera)
Figure 7. The percentage of singleton and doubleton species from the sampling period spring 2001 that are common in other locations (ground fauna, introduced species, another habitat), or during another sampling period (season, previous spring). Unknown fauna cannot be allocated an origin because they are never abundant in the total dataset (>29,000 specimens).
Figure 3 in Patterns of trophic relationships between planthoppers (Hemiptera: Fulgoromorpha) and their host plants on the Mascarene Islands
Figure 3. MCA with non-exotic plants only (i.e. indigenous non-endemic and endemic plants). The planthopper families (Figure 3A) are represented by indigenous, among them endemic species (Figure 3B) on different non-exotic host plants (Figure 3C) distributed on monocotyledons and dicotyledons. Derbidae (DR) are associated only on monocotyledons (SNCOM and SCOM) (Figure 3D). Notes: see Figure 2.
FIGURE 13 in <strong>The Eurasian species of <em>Xyela</em> (Hymenoptera, Xyelidae): taxonomy, host plants and distribution</strong>
FIGURE 13. Records of Xyela altenhoferi (12 specimens from 1 collection site) and natural distribution of the host plant, Pinus halepensis (solid line, according to Barbéro et al. 1998). "B?" and "H?" denote additional collection sites of similar, unidentified Xyela specimens collected close to or reared from P. brutia or P. halepensis (see text).
FIGURE 11 in <strong>The Eurasian species of <em>Xyela</em> (Hymenoptera, Xyelidae): taxonomy, host plants and distribution</strong>
FIGURE 11. Records of Xyela curva (480 specimens from 67 collection sites) and natural distribution of the host plant, Pinus nigra (solid line, combined from Meusel et al. 1965 and Barbéro et al. 1998). Additional record included for Sicily (Turrisi 2007).
FIGURE 10 in <strong>The Eurasian species of <em>Xyela</em> (Hymenoptera, Xyelidae): taxonomy, host plants and distribution</strong>
FIGURE 10. Records of Xyela koraiensis (31 specimens from 5 collection sites) and X. ussuriensis (39 specimens from 10 collection sites), and natural distribution of the supposed host plant, Pinus koraiensis (solid line, according to Mirov 1967).
FIGURE 1 in Systematics of the weevil genus Mecinus Germar, 1821 (Coleoptera: Curculionidae). II. Phylogenetic analysis based on adult morphological characters and host plant information
FIGURE 1. Phylogenetic hypothesis for the species of Mecinus based on combined morphological and ecological characters. The diagram is a majority (50%) rule consensus tree with unambiguous character state optimizations, derived from parsimony analysis of the complete equal-weights matrix (34 characters). Character (above) and state (below) distributions are mapped under unambiguous transformation. Black squares indicate unique transformed characters whereas white circles represent homoplastic characters.
FIGS 54 in The jumping plant-lice (Hemiptera, Psylloidea) associated with Schinus (Anacardiaceae): systematics, biogeography and host plant relationships
FIGS 54±56. Associations of Schinus/L ithrea (left) and psylloids (right): (54) Calophya rubra group; (55) Calophya hermicitae group; (56) Tainarys.
FIGS 50 in The jumping plant-lice (Hemiptera, Psylloidea) associated with Schinus (Anacardiaceae): systematics, biogeography and host plant relationships
FIGS 50±52. Biogeographic reconstructions with DIVA: (50) C. hermicitae group; (51) Tainarys; (52) C. rubra group.
FIG. 17 in The jumping plant-lice (Hemiptera, Psylloidea) associated with Schinus (Anacardiaceae): systematics, biogeography and host plant relationships
FIG. 17. Calophya orbicola, last instar larva: A, outline of body; B, antenna, C, tarsus; D, anal region.
FIGURE 2 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 2. (a) Minimal tree. (b)–(f) Subtrees derived from paralogy-free analysis. Abbreviations for biogeographic areas as follows: ED = Eastern Desert; EQ = Eastern Queensland; MM = Macleay-McPherson; P = Pilbara; SE = Southeast New South Wales; SW = Southwest Western Australia; TAS = Tasmania; and, WD = Western Desert.
FIGURE 5 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 5. Photographs of Australian Lasiacantha species: L. aureolus sp. nov. (habitus and lateral), L. darwini sp. nov., L. dysmikos sp. nov., L. ephemera sp. nov, L. eremophila sp. nov, L. inaquosa sp. nov., L. luritja sp. nov., L. nipha sp. nov. and L. pilbara sp. nov.. Scale = 1mm. Plate 1 of 2.
FIGURE 18 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 18. Alternative optimizations of character 24 mapped onto the phylogeny shown in Fig. 17; left side: accelerated optimization (ACCTRAN); right side: delayed optimization (DELTRAN).
FIGURES 1–5 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURES 1–5. (1) Rhinusa conicirostris male, rostrum in dorsal view; (2) R. conicirostris male, rostrum in lateral view: (3) R. linariae male, rostrum in lateral view; (4) R. linariae female, femur and tibia of anterior leg; (5) R. asellus female, femur and tibia of anterior leg. Numbers indicate characters and states. Not drawn to the same scale.
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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.