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Supplementary material 1 from: Ranjbar F, Jalali MA, Ziaaddini M, Gholamalizade Z, Talamas EJ (2021) Stink bug egg parasitoids (Hymenoptera, Scelionidae) associated with pistachio in Iran and description of a new species: Trissolcus darreh Talamas. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 291-308. https://doi.org/10.3897/jhr.87.72838
FASTA file
Figs. 285–294. Noideattella farihy, new species. 285. Habitus male, dorsal view. 286. Same, ventral view. 287. Same, lateral view. 288. Cephalothorax, dorsal view. 289. Same, ventral view. 290. Palp male, prolateral view. 291. Cephalothorax male, anterior view. 292. Palp male, retrolateral view. 293. Genitalia female, ventral view. 294 in Noideattella and Tolegnaro, Two New Genera of Goblin Spiders from Madagascar, with Comments on the Gamasomorphoid and Silhouettelloid Oonopids (Araneae, Oonopidae)
Figs. 285–294. Noideattella farihy, new species. 285. Habitus male, dorsal view. 286. Same, ventral view. 287. Same, lateral view. 288. Cephalothorax, dorsal view. 289. Same, ventral view. 290. Palp male, prolateral view. 291. Cephalothorax male, anterior view. 292. Palp male, retrolateral view. 293. Genitalia female, ventral view. 294. Same, dorsal view. Scale bars = 0.2 mm, except genitalia: 0.1 mm.
Figure 291 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 291 - Adult specimens of A Potamyia flava (Hydropsychidae) B Mystacides sepulchralis (Leptoceridae) C Leptocerus americanus (Leptoceridae) D Mystacides interjecta (Leptoceridae) E Nectopsychidae candida (Leptoceridae) F Nectopsyche exquisita (Leptoceridae).
Figs. 291–300. Escaphiella chiapa, new species. 291. Male habitus, dorsal view. 292. Same, ventral view. 293. Male carapace, dorsal view. 294. Male habitus, anterior view. 295. Same, lateral view. 296. Male carapace, lateral view. 297. Male epigastric region, ventral view. 298. Male cephalothorax, ventral view. 299. Male abdomen, ventral view. 300 in The American Goblin Spiders Of The New Genus Escaphiella (Araneae, Oonopidae)
Figs. 291–300. Escaphiella chiapa, new species. 291. Male habitus, dorsal view. 292. Same, ventral view. 293. Male carapace, dorsal view. 294. Male habitus, anterior view. 295. Same, lateral view. 296. Male carapace, lateral view. 297. Male epigastric region, ventral view. 298. Male cephalothorax, ventral view. 299. Male abdomen, ventral view. 300. Female carapace, lateral view.
Figure 4 from: Guidoti M, Guilbert E (2018) A new species of Zetekella Drake from Ecuador with comments on Zetekella and Minitingis Barber (Heteroptera, Tingidae). In: Wheeler Jr AG (Ed.) A Festschrift Recognizing Thomas J. Henry for a Lifetime of Contributions to Heteropteran Systematics. ZooKeys 796: 291-299. https://doi.org/10.3897/zookeys.796.23869
Figure 4 Distribution records for species of Zetekella and Minitingis. Blue icons = Zetekella species; square, circle, and star = Z.zeteki, Z.pulla, and Z.henryi sp. n., respectively; red icons = Minitingis records; triangle = M.minisculus and hexagon = M.elsae. Internal crosses = holotype localities; internal plus signs = new records.
Figure 2 from: Guidoti M, Guilbert E (2018) A new species of Zetekella Drake from Ecuador with comments on Zetekella and Minitingis Barber (Heteroptera, Tingidae). In: Wheeler Jr AG (Ed.) A Festschrift Recognizing Thomas J. Henry for a Lifetime of Contributions to Heteropteran Systematics. ZooKeys 796: 291-299. https://doi.org/10.3897/zookeys.796.23869
Figure 2 Rostral reach of Zetekella and Minitingis species. aZ.henryi sp. n. bM.minusculuscM.minusculus abdominal groove highlighted with a red square. Scale bar: 1 mm.
Figure 1 from: Guidoti M, Guilbert E (2018) A new species of Zetekella Drake from Ecuador with comments on Zetekella and Minitingis Barber (Heteroptera, Tingidae). In: Wheeler Jr AG (Ed.) A Festschrift Recognizing Thomas J. Henry for a Lifetime of Contributions to Heteropteran Systematics. ZooKeys 796: 291-299. https://doi.org/10.3897/zookeys.796.23869
Figure 1 Dorsal habitus of Zetekella and Minitingis species. aZetekellahenryi sp. n. bZ.pulla, brachypterous specimen cZ.pulla, macropterous specimen dZ.zetekieMinitingisminusculusfMinitingiselsae. Scale bar: 1 mm.
FIGURES 286–291 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 286–291. Scanning electron micrographs of H. thumbelipes.
Figures 291-293 from: Zaifu X, Huayan C, van Achterberg K, He J (2014) A revision of the Chinese Trigonalyidae (Hymenoptera, Trigonalyoidea). ZooKeys 385: 1-207. https://doi.org/10.3897/zookeys.385.6560
Figures 291-293 - Taeniogonalos similis (Tsuneki, 1991), holotype, male. 291 Habitus lateral 292 head anterior 293 head dorsal.
Figure 8 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 8 - Scanning electron micrographs of Spinivalva gaucha fifth larval instar: A head and prothorax, general, dorsal view B antenna, dorsal view C stemmata (open arrow indicates sixth stemma), lateral view D head and prothorax, general, ventral view E labium, ventral view F maxilla, lateral view G spinneret, lateral view H left side of prothoracic shield, dorsal view I prothoracic spiracle, lateral view J prothoracic leg, postero-lateral view K pseudopodium on A4, antero-lateral view L crochets of pseudopodium A4 in detail. Scale bars = 200, 25, 25, 200, 20, 20, 20, 75, 10, 25, 75, 10 µm, respectively.
Figure 5 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 5 - Larval and pupal morphology of Spinivalva gaucha under light microscopy: A first larval instar, dorsal and ventral views B fifth larval instar, dorsal and ventral views C–E pupa, dorsal, ventral and lateral views, respectively. Scale bars = 50 µm; 0.5, 0.5 mm, respectively.
Figure 6 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 6 - Scanning electron micrographs of Spinivalva gaucha first larval instar: A head, general, dorso-lateral view B mandible, dorsal view C antenna, lateral view D spinneret, lateral view; seta indicates hypopharyngeal papillae E maxilla (asterisk), lateral view F labial palpi. Scale bars = 20, 5, 5, 5, 3, 1 µm, respectively.
Figure 11 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 11 - Diaphanized portion and histological sections of a Passiflora actinia leaf, showing through transparency the organization levels ofa Spinivalva gaucha mine in relation to larval ontogeny: A general aspect of the mine, containing a last-instar larva; Roman numerals indicate larval instar numbers and corresponding positions of head capsules in the mine; closed arrow indicates the beginning of the mine B detail of head capsule shed by the fourth-instar larva (bar indicates position used for measurement of head-capsule width) C transverse section of serpentine portion of the mine (location indicated by the horizontal dashed line in A) D transverse section of blotch portion of the mine (location indicated by the vertical dashed line in A) E transverse section of intact portion of leaf lamina (indicated by left arrow in D) F transverse section of mined portion of leaf lamina (indicated by right arrow in D). Ab abaxial surface of epidermis; Ad adaxial surface of epidermis; Lm leaf mine; Pp palisade parenchyma; Sp spongy parenchyma. Scale bars =1.5, 0.15, 2.0, 3.0 mm; 500, 600 µm, respectively.
Figure 3 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 3 - Genital morphology of Spinivalva gaucha under light microscopy:A male genitalia, ventral view (aedeagus omitted; open arrow indicates gnathal lobe) B aedeagus, lateral view C male right valve, median view D units of the coremata anterior pair, ventral view (open and closed arrows indicate tubular pouch and hair pencil, respectively) E female genitalia, lateral view. Scale bar = 0.2 mm.
Figure 2 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 2 - Spinivalva gaucha adult morphology: A head, anterior view B fore- and hind-wing venation C detail of retinaculum D detail of basal frenulum (open arrow) and more distal pseudofrenulum (closed arrow). Scale bars = 0.2, 0.5 mm; 50, 100 µm, respectively.
Figure 12 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 12 - Bayesian consensus phylogeny of Spinivalva. A unrooted tree based on 1.5 Kb bp of the mitochondrial genes cytochrome oxidase c subunit I, tRNA-Leu and cytochrome oxidase c subunit II. Specimens from three different localities (termed Populations 1, 2 and 3; see Material and Methods for details), field-collected from different host plants (Passiflora suberosa [ ], Passiflora misera [] and Passiflora actinia []) were analyzed. Numbers indicate raw branch lengths B phylogenetic relationships of Spinivalva within the Parectopa group of gracillariids (sensu Kawahara et al. 2011), based on 610 bp of the barcoding region (cytochrome oxidase c subunit I gene). Numbers above branch indicate node support (posterior probability); those located below represent the raw branch length. A species of Bucculatricidae (Bucculatrix ulmella) was used to root the tree.
Figure 10 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 10 - Life history of Spinivalva gaucha: A Passiflora actnia shoot at the type locality B Spinivalva gaucha mine on upper leaf surface (leaf marked with an asterisk in A; open and closed arrows indicate respectively the beginning of a mine and a last-instar larva visible through transparent blotch section of the mine); C chorion of empty egg on lower surface D first-instar larva (indicated by closed arrow) visible through transparent serpentine section of a young mine (open arrow indicates the beginning of the mine on the upper leaf surface) E initial portion of blotch section in detail, showing frass and damage to leaf parenchyma left by last-instar larva within the mine F fourth-instar larva in the mine G exit hole (arrow) used by a last-instar larva to leave the mine H last-instar larva after changing color, building the cocoon outside the mine on the leaf surface I cocoon, with pupa visible through transparency J pupa in detail, after removing the cocoon K pupal exuvium protruding from the cocoon exit hole onto plastic substrate, just after the adult emergence. Scale bars = 20, 10, 0.2, 1.5, 1, 0.5, 0.5, 2, 2, 1, 2 mm, respectively.
Figure 4 from: Moreira G, Brito R, Gonçalves G, Vargas H (2013) A new Brazilian Passiflora leafminer: Spinivalva gaucha, gen. n., sp. n. (Lepidoptera, Gracillariidae, Gracillariinae), the first gracillariid without a sap-feeding instar. ZooKeys 291: 1-26. https://doi.org/10.3897/zookeys.291.4910
Figure 4 - Genital morphology of Spinivalva gaucha under scanning electron microscopy:A male valvae (scales partly removed), showing saccular processes in crossed position and aedeagus (indicated by arrow), ventral view B setae of costa valvular in detail (open arrow indicates distal portion of saccular process), median view C female papilla annalis in detail, latero-dorsal view D saccular processes in detail (squared area in A; asterisk indicates distal sensillum of the right process) E caudal portion of aedeagus, showing terminal spine (indicated by closed arrow) and vesica (indicated by asterisk), lateral view F female ostium bursae, ventral view. Scale bars = 50, 25, 20, 10, 25, 50 µm, respectively.
Figures 30-35 from: Solis A, Metz M (2013) Phylogenetic systematics of Schacontia Dyar with descriptions of eight new species (Lepidoptera, Crambidae). ZooKeys 291: 27-81. https://doi.org/10.3897/zookeys.291.3744
Figures 30-35 - Tympanal organs and male abdominal segments. 30–32. Tympanal organs. 30 Schacontia lachesis male, Bolivia, Cf. Fig. 11 31 Schacontia lachesis female, Bolivia, Cf. Fig. 11 32 Schacontia atropos male, Venezuela, Cf. Fig. 12 33–35. Male abdominal segments, illustrating coremata. 33 Schacontia nyx Venezuela, Cf. Fig. 22 34 Schacontia clotho holotype, Catamayo, Ecuador, 1287, Cf. Fig. 9 35 Schacontia lachesis Bolivia, Cf. Fig. 24.
Figures 52-60 from: Solis A, Metz M (2013) Phylogenetic systematics of Schacontia Dyar with descriptions of eight new species (Lepidoptera, Crambidae). ZooKeys 291: 27-81. https://doi.org/10.3897/zookeys.291.3744
Figures 52-60 - Male, female genitalia. 52 Schacontia rasa (a) male, Mexico; f. Fig. 21 53 Phallus, data as above 54 Female, Mexico JAL 19 (same data) 55 Schacontia nyx (a) male, Venezuela, Cf. Fig. 22 56 Phallus, data as above 57 Female, Venezuela; Cf. Fig. 8 58 Schacontia clotho (a) male, HOLOTYPE, Ecuador; Cf. Fig. 9 59 Phallus, data as above 60 Female, Ecuador: Loja, Catamayo, 1300 m, 20 XII 1992, V.O. Becker JAL 5 May 2003 #24.
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