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707 results for “host plant species”
FIGURES 11–18 in Documenting trumpet leaf-miner moths (Tischeriidae): new Neotropical Coptotriche and Astrotischeria species, with notes on Sapindaceae as a host-plant family
FIGURES 11–18. Astrotischeria serjaniphaga Remeikis & Stonis, sp. nov. 11–13, leaf mines on Serjania Mill., possibly S. squarrosa Radlk. (Sapindaceae), Curahuasi, Apurímac Department, central Peru, at an elevation of about 2700 m; 14, 15, male adult, holotype; 16–18 pupal exuviae (NRC)
FIGURES 47–52 in Documenting trumpet leaf-miner moths (Tischeriidae): new Neotropical Coptotriche and Astrotischeria species, with notes on Sapindaceae as a host-plant family
FIGURES 47–52. Female genitalia of new Astrotischeria species. 47, 48, A. yungasi Diškus & Stonis, sp. nov., paratype, genitalia slide no. AD1068; 49, 50, A. mystica Diškus & Stonis, sp. nov., paratype, genitalia slide no. AD1051; 51, 52, A. parapallens Diškus & Stonis, sp. nov., paratype, genitalia slide no. AD1042 (ZIN)
FIGURES 41–46 in Documenting trumpet leaf-miner moths (Tischeriidae): new Neotropical Coptotriche and Astrotischeria species, with notes on Sapindaceae as a host-plant family
FIGURES 41–46. Male genitalia of Astrotischeria parapallens Diškus & Stonis, sp. nov. 41, capsule with phallus removed, holotype, genitalia slide no. AD1045; 42, dorsal lobes of valvae, paratype, genitalia slide no. AD1052; 43, basally connected valvae and vinculum, paratype, genitalia slide no. AD1052; 44, apex of phallus, paratype, genitalia slide AD1052; 45, general view of phallus, paratype, genitalia slide no. 1046; 46, same, holotype, genitalia slide no. AD1045 (ZIN)
FIGURES 1–6 in Documenting trumpet leaf-miner moths (Tischeriidae): new Neotropical Coptotriche and Astrotischeria species, with notes on Sapindaceae as a host-plant family
FIGURES 1–6. Bionomics of Astrotischeria mystica Diškus & Stonis, sp. nov. 1–3, host plant Verbesina L. (possibly V. plowmanii Sagást.) (Asteraceae), Urubamba Province, Peru, 2180 m; 4–6, leaf mines
Figure 1 in Host plant utilisation of two Dicraeus species (Diptera: Chloropidae) feeding on bamboo flowers
Figure 1. Photos of Dicraeus species and its host plants. (a) Dicraeus nartshukae larva feeding on the floret of Sasa palmata. (b) Adult of D. nartshukae on an inflorescence of S. palmata. (c) Many short and slender shoots of Phyllostachys nigra var. henonis emerging from the forest floor. (d) Branch buds of Pleioblastus chino var. chino covered with culm sheath (left) and with culm sheath removed (right). (e) Eggs of D. phyllostachyus oviposited under the culm sheath of short and slender shoots of P. nigra var. henonis. (f) Final instar larva of D. phyllostachyus feeding on the internode of short and slender shoots of P. nigra var. henonis. (g) Eggs of D. nartshukae on a floret of Lolium arundinaceum. (h) Larva of D. nartshukae on a floret of Leymus mollis. (i) D. nartshukae adults coupling on an inflorescence of L. mollis. Scale bar = 0.5 mm.
Tri-trophic interactions with avian predators: the effect of host plant species and herbivore-induced plant volatiles on recruiting avian predators
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Data from: Allopatric origin of cryptic butterfly species that were discovered feeding on distinct host plants in sympatry
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Data from: Contrasting effects of host identity, plant community, and local species pool on the composition and colonisation levels of arbuscular mycorrhizal fungal community in a temperate grassland
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Species complex diversification by host plant use in an herbivorous insect: The source of Puerto Rican cactus mealybug pest and implications for biological control
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Data from: Host-plant dissections reveal contrasting distributions of Crematogaster ants and their symbionts in two myrmecophytic Macaranga species
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Data from: Gene flow in the green mirid, Creontiades dilutus (Hemiptera: Miridae), across arid and agricultural environments with different host plant species
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Data from: Bottom-up effects of host-plant species diversity and top-down effects of ants interactively increase plant performance
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Congruent population genetic structures and divergence histories in anther-smut fungi and their host plants Silene italica and the S. nutans species complex
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Figure 4 in Systematics, host plants, and life histories of three new Phyllocnistis species from the central highlands of Costa Rica (Lepidoptera, Gracillariidae, Phyllocnistinae)
Figure 4. Phyllocnistis drimiphaga sp. n., genitalia. A Male, ventral view B right valva, mesal view C aedeagus D female, lateral view E ventral view of terminal segments. (Scale bar 0.5 mm except for figure B, 0.2 mm.)
Figure 7 in Systematics, host plants, and life histories of three new Phyllocnistis species from the central highlands of Costa Rica (Lepidoptera, Gracillariidae, Phyllocnistinae)
Figure 7. Phyllocnistis drimiphaga sp. n., pupa. A Ventral view of head B ventral view of cocoon-cutter C frons D lateral view of head E lateral view of cocoon-cutter F dorsal view of fifth abdominal tergum G spines on fifth abdominal tergum H lateral view of spines on fifth abdominal tergum I view of abdominal tip Į dorsal view of A9–10 K lateral seta on seventh abdominal tergum L ventral view of A9–10. Scale bars 100 µm.
Figure 9 in Systematics, host plants, and life histories of three new Phyllocnistis species from the central highlands of Costa Rica (Lepidoptera, Gracillariidae, Phyllocnistinae)
Figure 9. Phyllocnistis tropaeolicola sp. n., pupa. A Ventral view of head B ventral view of cocoon-cutter C frons D lateral view of head E lateral view of cocoon-cutter F dorsal view of fourth abdominal tergum G spines on fourth abdominal tergum H lateral view of spines on fourth abdominal tergum I view of abdominal tip Į dorsal view of A9–10 K lateral seta on A9–10 L lateral seta on seventh abdominal tergum. Scale bars 100 µm.
Figure 5 in Systematics, host plants, and life histories of three new Phyllocnistis species from the central highlands of Costa Rica (Lepidoptera, Gracillariidae, Phyllocnistinae)
Figure 5. Phyllocnistis maxberryi sp. n., genitalia. A Male, ventral view B right valva, mesal view C aedeagus D female, lateral view E ventral view of terminal segments F signa. (Scale bar 0.5 mm except for figure B, 0.2 mm.)
Host plant defense produces species-specific alterations to flight muscle protein structure and flight-related fitness traits of two armyworms
<p>Insects manifest phenotypic plasticity in their development and behavior in response to plant defenses, via molecular mechanisms that produce tissue-specific changes. Phenotypic changes might vary between species that differ in their preferred hosts and these effects could extend beyond larval stages. To test this, we manipulated the diet of southern armyworm (SAW; Spodoptera eridania) and fall armyworm (FAW; Spodoptera frugiperda) using a tomatomutant for jasmonic acid plant defense pathway (def1), and wild-type plants, and then quantified gene expression of Troponin t (Tnt) and flight muscle metabolism of the<br> adult insects. Differences in Tnt spliceform ratios in insect flight muscles correlate with changes to flight muscle metabolism and flight<br> muscle output. We found that SAW adults reared on induced def1 plants had a higher relative abundance (RA) of the A isoform of Troponin t (Tnt A) in their flight muscles; in contrast, FAW adults reared on induced def1 plants had a lower RA of Tnt A in their flight muscles compared with adults reared on def1 and controls. Although massadjusted flightmetabolic rate showed no independent host plant effects in either species, higher flight metabolic rates in SAW correlated with increased RA of Tnt A. Flight muscle metabolism also showed an interaction of host plants with Tnt A in both species, suggesting that host plants might be influencing flight muscle metabolic output by altering Tnt. This study illustrates how insects respond to variation in host plant chemical defense by phenotypic modifications to their flight muscle proteins, with possible implications for dispersal.</p>
Figure 5 in You are what you eat: native versus exotic Crotalaria species (Fabaceae) as host plants of the Ornate Bella Moth, Utetheisa ornatrix (Lepidoptera: Erebidae: Arctiinae)
Figure 5. Utetheisa ornatrix raised on leaves versus beans of two Crotalaria species: (A) rates of development of the last instar raised on beans versus leaves of C. lanceolata; (B) rates of larval development on beans versus leaves of C. pallida; (C) pupal weight of moths raised on beans versus leaves of C. pallida. (B and C – based on data from Ferro et al. 2006).
Figure 4 from: Jiao R-J, Bai L-H, Gao J-J (2020) Descriptions of two new species of the genus Colocasiomyia (Diptera, Drosophilidae) breeding on Rhaphidophora host plants in Yunnan, China. ZooKeys 968: 127-141. https://doi.org/10.3897/zookeys.968.56677
Figure 4 Colocasiomyia todai Jiao & Gao, sp. nov. Adult male (holotype #10122) and female (paratype, #10100) from Ertaipo, Gaoligong Mountains, Baoshan, Yunnan, China A periphallic organs (lateral view) B periphallic organs (ventral view) C surstylus (right one, inner view) D phallic organs (dorsal view) E phallic organs (lateral view) F oviscapt (lateral view). Abbreviations: aed = aedeagus, aed a = aedeagal apodeme, aed b p = aedeagal basal process, cerc = cercus, epand = epandrium, epand a = epandrial apodeme, hypd = hypandrium, pm = paramere, 10S = tenth sternite. Scale bars: 0.1 mm.
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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.