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34 results for “endoparasitoids”
FIGURE 10 in A new Australian genus and five new species of Rogadinae (Hymenoptera: Braconidae), one reared as a gregarious endoparasitoid of an unidentified limacodid (Lepidoptera)
FIGURE 10. Teresirogas prestonae gen. et. sp. nov. A, fore wing; B, hind leg and mesosoma, lateral view; C, propodeum and metasomal tergites 1–4, dorsal view.
FIGURE 3 in A new Australian genus and five new species of Rogadinae (Hymenoptera: Braconidae), one reared as a gregarious endoparasitoid of an unidentified limacodid (Lepidoptera)
FIGURE 3. Teresirogas australicolorus gen. et. sp. nov. A, head dorsal view; B, head and mesosoma, lateral view; C, mesosoma, except anterior part, dorsal view; D, metasoma, dorsal view.
FIGURE 12 in A new Australian genus and five new species of Rogadinae (Hymenoptera: Braconidae), one reared as a gregarious endoparasitoid of an unidentified limacodid (Lepidoptera)
FIGURE 12. Teresirogas williamsi gen. et. sp. nov. A, fore wing; B, posterior of mesosoma and anterior of metasoma, dorsal view; C, metasomal tergites 2 and following, dorsal view.
FIGURE 11 in A new Australian genus and five new species of Rogadinae (Hymenoptera: Braconidae), one reared as a gregarious endoparasitoid of an unidentified limacodid (Lepidoptera)
FIGURE 11. Teresirogas williamsi gen. et. sp. nov. A, habitus; B, hind leg; C, head, front view; D, head, lateral view; E, head, dorsal view.
FIGURE 9 in A new Australian genus and five new species of Rogadinae (Hymenoptera: Braconidae), one reared as a gregarious endoparasitoid of an unidentified limacodid (Lepidoptera)
FIGURE 9. Teresirogas prestonae gen. et. sp. nov. A, habitus; B, head, dorsal view; C, mesoscutum, dorsal view; D, head, front view.
FIGURE 8 in A new Australian genus and five new species of Rogadinae (Hymenoptera: Braconidae), one reared as a gregarious endoparasitoid of an unidentified limacodid (Lepidoptera)
FIGURE 8. Teresirogas nolani gen. et. sp. nov. A, posterior of mesosoma and metasomal tergite 1, lateral view; B, scutellum, propodeum, tergite 1, dorsal view; C, wings; D, wings, detail of subdiscal cell.
FIGURE 4 in A new Australian genus and five new species of Rogadinae (Hymenoptera: Braconidae), one reared as a gregarious endoparasitoid of an unidentified limacodid (Lepidoptera)
FIGURE 4. Teresirogas australicolorus gen. et. sp. nov. A, hind leg and middle and hind claws showing pointed basal lobes; B, wings; C, mummified prepupal host remains, note incompletely emerged wasp, upper right.
Data from: Plant quantity affects development and survival of a gregarious insect herbivore and its endoparasitoid wasp
Virtually all studies of plant-herbivore-natural enemy interactions focus on plant quality as the major constraint on development and survival. However, for many gregarious feeding insect herbivores that feed on small or ephemeral plants, the quantity of resources is much more limiting, yet this area has received virtually no attention. Here, in both lab and semi-field experiments using tents containing variably sized clusters of food plants, we studied the effects of periodic food deprivation in a tri-trophic system where quantitative constraints are profoundly important on insect performance. The large cabbage white Pieris brassicae, is a specialist herbivore of relatively small wild brassicaceous plants that grow in variable densities, with black mustard (Brassica nigra) being one of the most important. Larvae of P. brassicae are in turn attacked by a specialist endoparasitoid wasp, Cotesia glomerata. Increasing the length of food deprivation of newly molted final instar caterpillars significantly decreased herbivore and parasitoid survival and biomass, but shortened their development time. Moreover, the ability of caterpillars to recover when provided with food again was correlated with the length of the food deprivation period. In outdoor tents with natural vegetation, we created conditions similar to those faced by P. brassicae in nature by manipulating plant density. Low densities of B. nigra lead to potential starvation of P. brassicae broods and their parasitoids, replicating nutritional conditions of the lab experiments. The ability of both unparasitized and parasitized caterpillars to find corner plants was similar but decreased with central plant density. Survival of both the herbivore and parasitoid increased with plant density and was higher for unparasitized than for parasitized caterpillars. Our results, in comparison with previous studies, reveal that quantitative constraints are far more important that qualitative constraints on the performance of gregarious insect herbivores and their gregarious parasitoids in nature.
Data from: Plant quantity affects development and survival of a gregarious insect herbivore and its endoparasitoid wasp
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FIGURE 1 in Braconid wasps of subfamily Alysiinae (Hymenoptera: Braconidae) as endoparasitoids of Selachops flavocinctus Wahlberg, 1844 (Diptera: Agromyzidae) in the Central Urals, Russia
FIGURE 1. View of spring shore vegetation aspect on Verkh-Isetsk pond (Yekaterinburg City).
FIGURES 45 in Braconid wasps of subfamily Alysiinae (Hymenoptera: Braconidae) as endoparasitoids of Selachops flavocinctus Wahlberg, 1844 (Diptera: Agromyzidae) in the Central Urals, Russia
FIGURES 45. Map of distribution of Selachops flavocinctus Wahlberg.
Figs 17-19 – 17 in The egg endoparasitoids of Macrolenes dentipes (Olivier) (Coleoptera: Chrysomelidae), with description of a new species of Aprostocetus Westwood and notes on its host (Hymenoptera: Eulophidae)
Figs 17-19 – 17, Macrolenes dentipes, hatching first instar larva; 18, first instar larva; 19, head of the first instar larva, frontal view.
Figs 9-12 – 9 in The egg endoparasitoids of Macrolenes dentipes (Olivier) (Coleoptera: Chrysomelidae), with description of a new species of Aprostocetus Westwood and notes on its host (Hymenoptera: Eulophidae)
Figs 9-12 – 9, last instar larva of Aprostocetus macrolenei Viggiani, sp. nov. mounted on slide; 10, egg of Macrolenes dentipes with exit hole of Aprostocetus macrolenei (left) and an unhatched egg (right); 11, hatched eggs of Macrolenes dentipes; 12, severe damage of M. dentipes infestation on lentisk.
Functional response and egg distribution among hosts by <i>Pseudapanteles dignus</i> (Hymenoptera: Braconidae), a larval endoparasitoid of <i>Tuta absoluta</i> (Lepidoptera: Gelechiidae)
<p>This dataset contains the raw data that support the results obtained in the research</p>
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