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Figures 1-3 from: Starý J, Roháček J (2015) Rediscovery of Rhabdomastix (Rhabdomastix) incapax Starý, 2005 (Diptera, Limoniidae), a crane fly species flightless in both sexes and probably endemic to Sardinia. ZooKeys 498: 93-101. https://doi.org/10.3897/zookeys.498.9446
Figures 1-3 - Rhabdomastix (Rhabdomastix) incapax. 1 Male wing 2–3 Female terminalia, general view, lateral (2) and internal structures, ventral (3). Scale bars 0.5 mm. ce – cercus; gfk – genital fork (vaginal apodeme); hv – hypogynial valve; ifa – infra-anal plate; spt – spermathecae; s9 – sternite 9; t10 – tergite 10.
Figures 8-15 from: Camargo A, Vieira R, Köhler A, Rafael JA (2016) Leinendera achaeta sp. n., a new species of robber fly from Brazil (Diptera, Asilidae, Asilinae). ZooKeys 558: 109-118. https://doi.org/10.3897/zookeys.558.6671
Figures 8-15 - Leinendera achaeta sp. n. Holotype male. 8 Terminalia, dorsal view 9 Terminalia, ventral view 10 Epandrium, gonocoxite and gonostylus 11 Terminalia, lateral view 12 Hypandrium 13 Gonocoxite and gonostylus 14 Subepandrial sclerite 15 Aedeagus. Abbreviations: aed: aedeagus; cerc: cercus; ej apod: ejaculatory apodeme; epand: epandrium; goncx: gonocoxite; gonst: gonostylus; hypd: hypandrium; sub scl: subepandrial sclerite.
Figures 24-31 from: Camargo A, Vieira R, Köhler A, Rafael JA (2016) Leinendera achaeta sp. n., a new species of robber fly from Brazil (Diptera, Asilidae, Asilinae). ZooKeys 558: 109-118. https://doi.org/10.3897/zookeys.558.6671
Figures 24-31 - Leinendera rubra Carrera, 1945. Ordinary specimen male (modified from Vieira 2012). 24 Head, lateral view 25 Head, frontal view 26 Wing 27 Terminalia, dorsal view 28 Subepandrial sclerite 29 Gonocoxite and gonostylus 30 Hypandrium 31 Aedeagus. Abbreviations: aed: aedeagus; cerc: cercus; ej apod: ejaculatory apodeme; epand: epandrium; goncx: gonocoxite; gonst: gonostylus; hypd: hypandrium; sub scl: subepandrial sclerite.
Figures 2-7 from: Camargo A, Vieira R, Köhler A, Rafael JA (2016) Leinendera achaeta sp. n., a new species of robber fly from Brazil (Diptera, Asilidae, Asilinae). ZooKeys 558: 109-118. https://doi.org/10.3897/zookeys.558.6671
Figures 2-7 - Leinendera achaeta sp. n. (2–6 Holotype male.). 2 Habitus, lateral view 3 Head, frontal view 4 Head & thorax, lateral view 5 Antenna, lateral view 6 Wing 7 Paratype wing. Abbreviations: pp: postpedicel.
Figures 16-23 from: Camargo A, Vieira R, Köhler A, Rafael JA (2016) Leinendera achaeta sp. n., a new species of robber fly from Brazil (Diptera, Asilidae, Asilinae). ZooKeys 558: 109-118. https://doi.org/10.3897/zookeys.558.6671
Figures 16-23 - Leinendera nigra Vieira, 2012. Holotype male (modified from Vieira 2012). 16 Head, lateral view 17 Head, frontal view 18 Wing 19 Terminalia, dorsal view 20 Subepandrial sclerite 21 Gonocoxite and gonostylus 22 Hypandrium 23 Aedeagus. Abbreviations: aed: aedeagus; cerc: cercus; ej apod: ejaculatory apodeme; epand: epandrium; goncx: gonocoxite; gonst: gonostylus; hypd: hypandrium; sub scl: subepandrial sclerite.
Figure 2 from: Tanga CM, Manrakhan A, Daneel JH, Mohamed SA, Khamis FM, Ekesi S (2015) Comparative analysis of development and survival of two Natal fruit fly Ceratitis rosa Karsch (Diptera, Tephritidae) populations from Kenya and South Africa. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 467-487. https://doi.org/10.3897/zookeys.540.9906
Figure 2 - Linear and non-linear regressions of temperature related developmental rates of immature stages of two groups of Ceratitis rosa from South Africa
Figure 1 from: Tanga CM, Manrakhan A, Daneel JH, Mohamed SA, Khamis FM, Ekesi S (2015) Comparative analysis of development and survival of two Natal fruit fly Ceratitis rosa Karsch (Diptera, Tephritidae) populations from Kenya and South Africa. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 467-487. https://doi.org/10.3897/zookeys.540.9906
Figure 1 - Linear and non-linear regressions of temperature related developmental rates of immature stages of two groups of Ceratitis rosa from Kenya.
Figure 4 from: Břízová R, Vaníčková L, Faťarová M, Ekesi S, Hoskovec M, Kalinová B (2015) Analyses of volatiles produced by the African fruit fly species complex (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 385-404. https://doi.org/10.3897/zookeys.540.9630
Figure 4 - The results of statistical analyses of the male-borne volatiles produced by Ceratitis fasciventris (blue), Ceratitis anonae (green) and Ceratitis rosa (red). (A) Multivariate principal component analysis (PCA) of the 22 common compounds identified in the pheromone of the males of the FAR complex. (B) Multivariate correspondence analysis (CA) of the 12 antennal active compounds. The three species are clearly segregated. Each symbol on the plot represents one sample. The numbers in italics denote the retention indices (RI) of the species-specific compounds. For the structural identification of the compounds see the Suppl. materials 1–3: Tables 1–3.
Figure 3 from: Břízová R, Vaníčková L, Faťarová M, Ekesi S, Hoskovec M, Kalinová B (2015) Analyses of volatiles produced by the African fruit fly species complex (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 385-404. https://doi.org/10.3897/zookeys.540.9630
Figure 3 - A comparison of female antennal responses of Ceratitis fasciventris, Ceratitis anonae, and Ceratitis rosa to standard solutions. The FID/EAD on the y-axis represents the ratio between an electroantennographic response and a conventional detector. The higher the number, the higher the response (N = 3).
Figure 2 from: Břízová R, Vaníčková L, Faťarová M, Ekesi S, Hoskovec M, Kalinová B (2015) Analyses of volatiles produced by the African fruit fly species complex (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 385-404. https://doi.org/10.3897/zookeys.540.9630
Figure 2 - GC-FID/EAD analyses of the Ceratitis fasciventris, Ceratitis anonae, and Ceratitis rosa male-borne volatiles using a conspecific female antenna as an EAD detector. The numbers indicate EAD-active compounds and correspond to Table 1. The symbols EAD-1-3 denote the three independent repetitions of the GC-EAD analyses.
Figure 1 from: Břízová R, Vaníčková L, Faťarová M, Ekesi S, Hoskovec M, Kalinová B (2015) Analyses of volatiles produced by the African fruit fly species complex (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 385-404. https://doi.org/10.3897/zookeys.540.9630
Figure 1 - GC×GC-TOFMS chromatograms (TIC mode) of the male (N = 5) volatiles of Ceratitis fasciventris, Ceratitis anonae and Ceratitis rosa. Each spot represents one compound; the identified compounds are numbered in each chromatogram, with the numbering corresponding to the respective Table 1 of compounds. The intensity of each spot is colour-coded (blue - 0, red - maximum).
Figure 3 from: Vaníčková L, Břízová R, Pompeiano A, Ekesi S, De Meyer M (2015) Cuticular hydrocarbons corroborate the distinction between lowland and highland Natal fruit fly (Tephritidae, Ceratitis rosa) populations. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 507-524. https://doi.org/10.3897/zookeys.540.9619
Figure 3 - Section of the GC×GC/MS analysis of the female (A) and male (B) cuticular hydrocarbon profiles of coastal population (R1) of Ceratitis rosa from Kenya. The intensity of the signals is colour-coded from green (zero) to red (maximum). The compounds are assigned according to Table 1.
Figure 2 from: Vaníčková L, Břízová R, Pompeiano A, Ekesi S, De Meyer M (2015) Cuticular hydrocarbons corroborate the distinction between lowland and highland Natal fruit fly (Tephritidae, Ceratitis rosa) populations. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 507-524. https://doi.org/10.3897/zookeys.540.9619
Figure 2 - Section of the GC×GC/MS analysis of the female (A) and male (B) cuticular hydrocarbon profiles of the highland population (R2) of Ceratitis rosa from Kenya. The intensity of the signals is colour-coded from green (zero) to red (maximum). The compounds are assigned according to Table 1.
Figure 1 from: Vaníčková L, Břízová R, Pompeiano A, Ekesi S, De Meyer M (2015) Cuticular hydrocarbons corroborate the distinction between lowland and highland Natal fruit fly (Tephritidae, Ceratitis rosa) populations. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 507-524. https://doi.org/10.3897/zookeys.540.9619
Figure 1 - A heat map of the 46 cuticular hydrocarbons (columns, CH1-46) and the two Ceratitis rosa populations (rows, f-female, m-male) from the GC×GC/MS data set. The dendrograms are created using correlation-based distances and the Ward method of hierarchical clustering (P < 0.05). Putative morphotypes (R1 for the coastal population and R2 for the highland population) are depicted in the row dendrogram.
Figure 2 from: Virgilio M, Delatte H, Nzogela YB, Simiand C, Quilici S, De Meyer M, Mwatawala M (2015) Population structure and cryptic genetic variation in the mango fruit fly, Ceratitis cosyra (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 525-538. https://doi.org/10.3897/zookeys.540.9618
Figure 2 - Individual Bayesian assignments. STRUCTURE sequential individual assignments of 348 specimens of Ceratitis cosyra from 13 African countries.
Figure 1 from: Virgilio M, Delatte H, Nzogela YB, Simiand C, Quilici S, De Meyer M, Mwatawala M (2015) Population structure and cryptic genetic variation in the mango fruit fly, Ceratitis cosyra (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 525-538. https://doi.org/10.3897/zookeys.540.9618
Figure 1 - Unconstrained and constrained ordination. Principal Component Analysis (PCA) and Discriminant Analysis of Principal Components (DAPC) of 348 Ceratitis cosyra microsatellite genotypes. Specimen groups are labelled inside their 95% inertia ellipses and genotypes are connected to the corresponding group centroids.
Figure 6 from: Leblanc L, Doorenweerd C, Jose MS, Pham HT, Rubinoff D (2018) Descriptions of four new species of Bactrocera and new country records highlight the high biodiversity of fruit flies in Vietnam (Diptera, Tephritidae, Dacinae). ZooKeys 797: 87-115. https://doi.org/10.3897/zookeys.797.29138
Figure 6 Bactrocera (Asiadacus) connecta. A, B head C head and scutum D, E, F, G abdomen variation H, I wing.
Figure 5 from: Leblanc L, Doorenweerd C, Jose MS, Pham HT, Rubinoff D (2018) Descriptions of four new species of Bactrocera and new country records highlight the high biodiversity of fruit flies in Vietnam (Diptera, Tephritidae, Dacinae). ZooKeys 797: 87-115. https://doi.org/10.3897/zookeys.797.29138
Figure 5 Maximum likelihood tree based on COI sequences of B.connecta sp. n. and several of its genetically closest neighbors, which include both Bactrocera and Zeugodacus species. Bootstrap branch supports shown for intraspecific relationships. HT = holotype.
Figure 12 from: Leblanc L, Doorenweerd C, Jose MS, Pham HT, Rubinoff D (2018) Descriptions of four new species of Bactrocera and new country records highlight the high biodiversity of fruit flies in Vietnam (Diptera, Tephritidae, Dacinae). ZooKeys 797: 87-115. https://doi.org/10.3897/zookeys.797.29138
Figure 12 Bactrocera (Bactrocera) adamantea. A head B head and scutum C, D abdomen E wing F lateral view.
Supplementary material 1 from: Wood CT, Nihei SS, Araujo PB (2018) Woodlice and their parasitoid flies: revision of Isopoda (Crustacea, Oniscidea) – Rhinophoridae (Insecta, Diptera) interaction and first record of a parasitized Neotropical woodlouse species. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 401-414. https://doi.org/10.3897/zookeys.801.26052
Compilation of Isopoda-Rhinophoridae records (Dataset) :
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