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1,108 results for “parasitoid wasp”
Mapping of multiple complementary sex determination loci in a parasitoid wasp
<p>Files required to reproduce the analysis from the manuscript "Mapping of Multiple Complementary Sex Determination Loci in a Parasitoid Wasp" published in Genome Biology and Evolution (doi: 10.1093/gbe/evz219). The code is hosted on the github repository CSD_lfabarum github repository (https://github.com/cmdoret/CSD_lfabarum.</p>
Figs 7–9. Macroteleia bicolora Kieffer, 1908 in Parasitoid wasps new to Britain (Hymenoptera: Platygastridae, Eurytomidae, Braconidae & Bethylidae)
Figs 7–9. Macroteleia bicolora Kieffer, 1908, ♀. 7. Dorsal habitus. 8. Lateral view. 9. Fore wing. Specimen number BMNH(E)938241. Scale bars all 1 mm. © Natural History Museum, London.
Figs 10–12. Macroteleia brevigaster Masner, 1976 in Parasitoid wasps new to Britain (Hymenoptera: Platygastridae, Eurytomidae, Braconidae & Bethylidae)
Figs 10–12. Macroteleia brevigaster Masner, 1976, ♀. 10. Dorsal habitus. 11. Lateral view. 12. Fore wing. Specimen numbers BMNH(E)968239 and BMNH(E)968240. Scale bars all 1 mm. © Natural History Museum, London.
Figs 20–25 in Parasitoid wasps new to Britain (Hymenoptera: Platygastridae, Eurytomidae, Braconidae & Bethylidae)
Figs 20–25. Schizoprymnus collaris (Thomson, 1874), ♀, lectotype. 20. Lateral mesosoma. 21. Fore wing. 22. Lateral metasoma. 23. Hind wing. 24. Thomson's locality label. 25. Other labels. Scale bars all 1 mm. © Natural History Museum, London.
Figs 4–6 in Parasitoid wasps new to Britain (Hymenoptera: Platygastridae, Eurytomidae, Braconidae & Bethylidae)
Figs 4–6. Macroteleia atrata Kozlov & Kononova, 1987, ♀. 4. Dorsal habitus. 5. Lateral view. 6. Fore wing. Specimen number BMNH(E)968238. Scale bars all 1 mm. © Natural History Museum, London.
Figs 1–3 in Parasitoid wasps new to Britain (Hymenoptera: Platygastridae, Eurytomidae, Braconidae & Bethylidae)
Figs 1–3. Fidiobia hispanica Popovici & Buhl, 2010. 1. Dorsal habitus, ♀. 2. Host egg with half emerged ♀. 3. Fragment of old Andricus kollari gall showing cavity - a vacated cell of Synergus umbraculus – containing beetle eggs, the true host of F. hispanica. Body length of wasp c. 0.8 mm. © Ovidiu Popovici.
Figs 13–14. Sycophila binotata Fonscolombe, 1832 in Parasitoid wasps new to Britain (Hymenoptera: Platygastridae, Eurytomidae, Braconidae & Bethylidae)
Figs 13–14. Sycophila binotata Fonscolombe, 1832, ♀. 13. Lateral habitus. 14. Fore wing. Specimen number BMNH(E)969430. Scale bars both 1 mm. © Natural History Museum, London.
Fig. 31. A–B in Synopsis of the parasitoid wasp genus Cotesia Cameron, 1891 (Hymenoptera: Braconidae: Microgastrinae) in Australia, with the description of seven new species
Fig. 31. A–B. Cotesia urabae Austin & Allen, 1989, paratype, ♀ (WINC). A. Habitus in dorsal view. B. Fore wing. C–E. Cotesia vestalis (Haliday, 1834), ♀ (WINC). C. Head in dorsal view and anteromesoscutum. D. Propodeum and dorsal metasoma E. Fore wing.
Fig. 34. A in Synopsis of the parasitoid wasp genus Cotesia Cameron, 1891 (Hymenoptera: Braconidae: Microgastrinae) in Australia, with the description of seven new species
Fig. 34. A. Fore wing terminology, abbreviation: pt = pterostigma. B. General morphological terminology, abbreviations: ams = anteromesoscutum, mt = metanotum, pp = propodeum, sc = scutellum (also referred to as the mesoscutellum), sd = scutellar disk, ss = scutellar sulcus, T1 = first metasomal tergite, T2 = second metasomal tergite, T3 = third metasomal tergite.
Fig. 28 in Synopsis of the parasitoid wasp genus Cotesia Cameron, 1891 (Hymenoptera: Braconidae: Microgastrinae) in Australia, with the description of seven new species
Fig. 28. Cotesia rufiventris (Bingham, 1906), paralectotype, ♀ (NHMUK). A. Mesosoma in dorsal view and T1–3 B. Habitus in dorsal view and fore wing C. Habitus in lateral view.
Fig. 27 in Synopsis of the parasitoid wasp genus Cotesia Cameron, 1891 (Hymenoptera: Braconidae: Microgastrinae) in Australia, with the description of seven new species
Fig. 27. Cotesia ruficrus (Haliday, 1834), ♀ (ANIC 32 130230) A. Habitus in lateral view. B. Habitus in dorsal view. C. Fore wing.
Fig. 25 in Synopsis of the parasitoid wasp genus Cotesia Cameron, 1891 (Hymenoptera: Braconidae: Microgastrinae) in Australia, with the description of seven new species
Fig. 25. Cotesia reidarum sp. nov., holotype, ♀ (QM T246703). A. Habitus in dorsal view. B. Habitus in lateral view. C. Head in dorsal view. D. Head in anterior view. E. Propodeum. F. Fore wing.
Fig. 22 in Synopsis of the parasitoid wasp genus Cotesia Cameron, 1891 (Hymenoptera: Braconidae: Microgastrinae) in Australia, with the description of seven new species
Fig. 22. Cotesia ocellata sp. nov., holotype, ♀ (SAMA 32-44404). A. Head in dorsal view and anteromesoscutum. B. Habitus in lateral view. C. T1–3. D. Habitus in dorsal view. E. Head in anterior view. F. Mesoscutum and propodeum. G. Fore wing.
Figure 1 in First described fossil representatives of the parasitoid wasp taxa Asaphesinae n. n. and Eunotinae (Hymenoptera: Chalcidoidea: Pteromalidae sensu lato) from Eocene Baltic amber
Figure 1. (a–c) Coriotela lasallei n. gen., n. sp. holotype female: (a) Body, dorso-lateral; (b) Head, mesosoma, and anterior part of metasomal, lateral, frl = frenal groove, occ = occipital carina. (c) Fore wing, clv = clava, clavomeres numbered. (d,e) Butiokeras costae n. gen., n. sp. holotype male: (d) Body, dorso-lateral; (e) Body, ventro-lateral.
Data from: Different genetic structures revealed resident populations of a specialist parasitoid wasp in contrast to its migratory host
Genetic comparisons of parasitoids and their hosts are expected to reflect ecological and evolutionary processes that influence the interactions between species. The parasitoid wasp, Cotesia vestalis, and its host diamondback moth (DBM), Plutella xylostella, provide opportunities to test whether the specialist natural enemy migrates seasonally with its host or occurs as resident population. We genotyped 17 microsatellite loci and two mitochondrial genes for 158 female adults of C. vestalis collected from 12 geographical populations, as well as nine microsatellite loci for 127 DBM larvae from six separate sites. The samplings covered both the likely source (southern) and immigrant (northern) areas of DBM from China. Populations of C. vestalis fell into three groups, pointing to isolation in northwestern and southwestern China and strong genetic differentiation of these populations from others in central and eastern China. In contrast, DBM showed much weaker genetic differentiation and high rates of gene flow. TESS analysis identified the immigrant populations of DBM as showing admixture in northern China. Genetic disconnect between C. vestalis and its host suggests that the parasitoid did not migrate yearly with its host but likely consisted of resident populations in places where its host could not survive in winter.
Supplementary material 1: Accumulation Curve Data from: DNA Barcoding of the parasitoid wasp subfamily Doryctinae (Hymenoptera: Braconidae) from Chamela, Mexico - Biodiversity Data Journal 3: e5109 (18 May 2015) https://doi.org/10.3897/BDJ.3.e5109
Table containing the Process ID of specimens sampled and Barcode Index Number (BIN) used for the species accumulation curve.
Figure 3. from: DNA Barcoding of the parasitoid wasp subfamily Doryctinae (Hymenoptera: Braconidae) from Chamela, Mexico - Biodiversity Data Journal 3: e5109 (18 May 2015) https://doi.org/10.3897/BDJ.3.e5109
Figure 3. - DNA barcoding species accumulation curve for the Doryctinae from the CBS (Suppl. material 1).
Figure 1. from: DNA Barcoding of the parasitoid wasp subfamily Doryctinae (Hymenoptera: Braconidae) from Chamela, Mexico - Biodiversity Data Journal 3: e5109 (18 May 2015) https://doi.org/10.3897/BDJ.3.e5109
Figure 1. - Study area. The Chamela Biological Station (IB-UNAM), located within the Chamela-Cuixmala Biosphere Reserve in the estate of Jalisco, Mexico.
Figure 2. from: DNA Barcoding of the parasitoid wasp subfamily Doryctinae (Hymenoptera: Braconidae) from Chamela, Mexico - Biodiversity Data Journal 3: e5109 (18 May 2015) https://doi.org/10.3897/BDJ.3.e5109
Figure 2. - Neighbour-joining tree obtained from BOLD that includes 883 nucleotide sequences belonging to doryctine specimens. The distance model used was the Kimura 2 Parameter, the marker was COI-5P, and the 1st, 2nd and 3rd codon positions were included. The sequences had a lengrh greater than 200bp. See Suppl. material 1.
Fig. 52 in Systematic revision of the parasitoid wasp genus Glyptapanteles Ashmead (Hymenoptera: Braconidae: Microgastrinae) for Australia results in a ten-fold increase in species
Fig. 52.Glyptapanteles vergrandiacus Fagan-Jeffries, Bird & Austin sp. nov., paratype, ♀ (QM T250990). A. Lateral habitus. B. Anterior head. C. Fore wing. D. Dorsal head. E. Lateral head. F. Dorsal habitus.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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