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714 results for “neotype designation”
PLATE 1 in Taxonomic status of Chrysophanus phoenicurus transcaucasicus Miller, 1923 (Lepidoptera, Lycaenidae), with the designation of a neotype
PLATE 1. Athamanthia transcaucasica (Miller, 1923), stat. nov., imagines: 1—neotype, ♂, Turkey, Kars prov., 6 km E Kagyzman, Akçay vill., 1500–1700 m, 22.VII.1977, leg. Eckweiler (ZMMU); 2—♀, same locality as in the neotype, 22–28.VII.1976, leg. Eckweiler (AKM); 3—label of the neotype; 4—♂, Azerbaijan, Nakhchivan Autonomous Republic, vic. of Nehram, 29.V.1982 (holotype of Lycaena melicertes Nekrutenko, 1985) (ZISP); 5—labels of the holotype of Lycaena melicertes.
FIGURE 3 in Redescription and neotype designation of the Antarctic springtail Folsomotoma octooculata (Collembola: Isotomidae)
FIGURE 3. Folsomotoma octooculata; scanning electron microscopy. A, Mouth region shoWing labrum (Lbr), labium (Lbm) and maXillary outer lobe (Mol); scale bar, 20 µm; B, Labial palp With labial papilla (A, B, C, D and E); C, Ocular plate and PAO; D, Antennal organ III; E, Retinacle; F, Ventral tube. Scale bars: 20 µm (A, C, E), 10 µm (B, F), 5 µm (D).
FIGURE 2 in Redescription and neotype designation of the Antarctic springtail Folsomotoma octooculata (Collembola: Isotomidae)
FIGURE 2. Folsomotoma octooculata; A, Number and distribution of dorsal sensilla (accp–s, al–s and as) and microsensilla (ms); B, C, E, F, Number and distribution of dorsal aXial setae along Th. II (E), Th. III (F), Abd. I (B) and Abd. II (C); asterisks indicate setae alWays present in all the specimens obserVed; D, ChaetotaXy of Abd. V–VI; G, Abd. IV p roW shoWing the position of the accp–s. Scale bar: 50 µm (D, G).
FIGURE 1 in Redescription and neotype designation of the Antarctic springtail Folsomotoma octooculata (Collembola: Isotomidae)
FIGURE 1. Folsomotoma octooculata: A, Dorsal chaetotaXy;, Ventral chaetotaXy of the head; C, Labium; Lp–Labial palp; Bmf–Basomedian field (submentum); Blf–Basolateral field (mentum); D, Ventral tube; E, Manubrium anterior VieW shoWing 3+3 spine–like setae, F, Ant. I lateral sensilla; G, Ant. Organ III; H, ChaetotaXy of tibiotarsus III; I, ChaetotaXy of the furca; K, Female genital opening; L, Male genital opening. Scale bars: 200 µm (A), 100 µm (B, I), 50 µm (D, K, L), 25 µm (C, E–H).
FIGURE 4 in Redescription and neotype designation of the Antarctic springtail Folsomotoma octooculata (Collembola: Isotomidae)
FIGURE 4. Folsomotoma octooculata; scanning electron microscopy. A, Mucro; B, ClaW and empodial appendage; C, Ant. IV shoWing seVeral seta–like sensilla; D, Macrochaeta on the last abdominal tergites; E, EXample of long accp–s of the p–roW on Abd. III–IV; F, Lateral microsensilla (ms) and al–s of Th. II; G, EXample of long tubular accp–s of the p–roW on Abd. V; H, Ant. I lateral microsensilla (ms). Scale bars: 10 µm (A–E), 5 µm (F).
FIGURES 12–14 in Neotype designation and redescription of Inostemma indicum (Platygastroidea: Platygastridae) parasitizing ivy gourd gall midge
FIGURES 12–14. Stem galls of Coccinia grandis, 12. Dried galls; 13. Fresh gall; 14. Close up view of stem gall showing a) emergence hole of parasitoid b) emergence hole of gall midge with pupal case.
FIGURES 7–11 in Neotype designation and redescription of Inostemma indicum (Platygastroidea: Platygastridae) parasitizing ivy gourd gall midge
FIGURES 7–11. Inostemma indicum (ICAR/NBAIR/P2495) 7. Male habitus (dorsal view), 8. Mesoscutellum and T1 (male), 9. Frons (female, ICAR/NBAIR/P1935), 10. Head and pleuron (female), 11. Wings (female).
FIGURES 1–6 in Neotype designation and redescription of Inostemma indicum (Platygastroidea: Platygastridae) parasitizing ivy gourd gall midge
FIGURES 1–6. Inostemma indicum, neotype female (ICAR/NBAIR/P1935) 1. Habitus (dorsal view), 2. Habitus (lateral view), 3. Head and mesoscutum, 4. Male antenna, 5. Female antenna, 6. Metasoma.
FIGURES 10 & 11 in Designation of a neotype for the Australian robber fly Ommatius dimidiatus Macquart, a new senior synonym of Ommatius pilosus White and Ommatius levis White (Diptera: Asilidae: Ommatiinae)
FIGURES 10 & 11. Neotype of Ommatius dimidiatus Macquart. (10). Lateral view; (11). Dorsal view. Scale bar, 2 mm.
FIGURES 1–9 in Designation of a neotype for the Australian robber fly Ommatius dimidiatus Macquart, a new senior synonym of Ommatius pilosus White and Ommatius levis White (Diptera: Asilidae: Ommatiinae)
FIGURES 1–9. Ommatius spp. (1). Macquart's 1850 plate 8, fig. 11 of the ♂ wing of O. dimidiatus; (2). Hardy's 1928 illustration of the ♂ terminalia of O. dimidiatus. The illustration is of O. flavicaudus Malloch; (3). Hardy's (1928: 64) illustration of the ♂ terminalia of O. pilosus; (4–6). Specimen MNHN ED9078, a ♀ specimen of O. dimidiatus labelled syntype in MNHN; (4). Dorsolateral view; (5). Ventrolateral view; (6). Labels on specimen ED9078; (7–9). Specimen MNHN ED9077, a ♀ specimen of O. dimidiatus labelled syntype in MNHN; (7). Dorsal view; (8). Lateral view; (9). Macquart's handwritten label on specimen MNHN ED9077; despite bearing syntype labels, these specimens have no type status. Figures are not to scale.
FIGURE 6 in Redescription of Mastigias papua (Scyphozoa, Rhizostomeae) with designation of a neotype and recognition of two additional species
FIGURE 6. nMDS analysis of the morphological variation of Mastigias medusae including data from all historically described species. A. Analysis including Mastigias from both lake (open colored symbols) and ocean (filled colored symbols) samples, and also from historical descriptions (black filled symbols). B. Analysis including only Mastigias from ocean habitats and from the historical descriptions. Circle emphasizes the close morphological match between new samples from the Philippines and historical descriptions of M. albipuntatus.
FIGURE 5 in Redescription of Mastigias papua (Scyphozoa, Rhizostomeae) with designation of a neotype and recognition of two additional species
FIGURE 5. Adult Mastigias papua medusa (103 mm bell diameter) from the type locality: waigeo, west Papua (specifically from Mastigias Papua Cove). A. Profile view of M. papua, with details of the oral arm and margin of the bell. Two rhopalia are marked with arrows, delineating an octant. B. Details of the subumbrellar view of the terminals clubs, showing the typical 'tricorn' cross-section of lagoonal animals. C. Details of the contracted bell margin and oral arm. Note the patches of endosymbiontic zooxanthellae (here most easily visible as tan tiny dots in the unwinged part of oral arm). D. Subumbrellar view of canals dyed in the laboratory, note the perradial canal (p) and the interradial canal (i) which are both generally simple canals originating at the gastrovascular cavity and ending at the ring canal; the origins of the highly anastomosing adradial canals are marked with yellow circles where they join the gastrovascular cavity. E. Subumbrellar view of the bell margin, with velar lappets in between the two pairs of rhopalar lappets (r).
FIGURE 4 in Redescription of Mastigias papua (Scyphozoa, Rhizostomeae) with designation of a neotype and recognition of two additional species
FIGURE 4. Mastigias papua from the type locality: waigeo, west Papua (specifically from Mastigias Papua Cove, November 2007) showing ontogenetic variation within species. A. Mature medusa, 150 mm bell diameter B. Juvenile medusa, 16 mm bell diameter. (i) unwinged portion of the oral arm, (ii) winged portion of oral arm, and (iii) terminal club.
FIGURE 3 in Redescription of Mastigias papua (Scyphozoa, Rhizostomeae) with designation of a neotype and recognition of two additional species
FIGURE 3. nMDS analysis of morphological variation of 229 Mastigias samples collected in 5 regions in the western Pacific and China Sea. Lake samples are represented by unfilled symbols; ocean samples are represented by filled symbols. The type specimen is represented by a filled star.
FIGURE 2 in Redescription of Mastigias papua (Scyphozoa, Rhizostomeae) with designation of a neotype and recognition of two additional species
FIGURE 2. Bayesian phylogenetic reconstruction using COI of Mastigias. Branches are labeled with symbols that represent the Bayesian posterior probability for the alignments 1, 2 and 3 respectively; * 0.95–1.00, ^ 0.90–0.95, + 0.80–0.90. Branches in black are present in all three alignments (i.e. 1—keeping missing data, 2—excluding sequences with missing data, 3— excluding sites with ambiguous base calls); branches in grey are present in alignment 1 only or alignments 1 and 2, or 1 and 3. Points in the map represent the locations of the three monophyletic clades, named primarily following Swift et al. (2016): the 'China Sea' clade with samples from Berau, Japan, Komodo and Philippines; the 'Solomon Sea' clade with samples from Tufi; and a 'Tropical western Pacific Islands' clade with samples from Palau, Papua, and Enewetak.
FIGURE 1 in Redescription of Mastigias papua (Scyphozoa, Rhizostomeae) with designation of a neotype and recognition of two additional species
FIGURE 1. Map of the Indo-west Pacific showing the samples considered in this study (see also Table 1). Symbols represent the samples available from each location for each category of analysis (see key, top right). Locations for the museum samples are approximate as specific locations for those samples were not available. Type locality is shown for Mastigias papua as described by Lesson (1830).
FIGURE 2. Adult male Entocythere cambaria neotype USNM 1462653 including A in Redescription and Clarification of Type Designation of Entocythere cambaria Marshall, 1903 (Ostracoda: Entocytheridae) and synonymization of Entocythere illinoisensis Hoff, 1942
FIGURE 2. Adult male Entocythere cambaria neotype USNM 1462653 including A) photograph showing entire specimen; B) illustration of carapace, including cracks as they appear in its current state; C) photograph of entire copulatory complex of E. cambaria neotype USNM 1462653 in situ, with notations for peniferum (p), clasping apparatus (ca), dorsal finger (df), and ventral finger (vf); D) illustration of one of the paired halves of the copulatory complex of E. cambaria neotype USNM 1462653; E) illustration of one of the paired halves of the copulatory complex of allotype adult male E. illinoisensis USNM 8190; F) illustration of the second paired half of the copulatory complex of allotype adult male E. illinoisensis USNM 8190, bearing a bifid dorsal finger; D.1, D.2) each of the two clasping apparatuses isolated, E. cambaria neotype USNM 1462653, and; E.1, E.2) each of the two clasping apparatuses isolated from E and F, respectively, allotype adult male E. illinoisensis USNM 8190. Scale bar (100 µm) shared by A and B. Scale bar (10 µm) shared by C, D, D.1, D.2, E, E.1, F, F.1.
FIGURES 7–12 in Nomenclatural notes on some taxa of Bidessus Sharp and designation of a neotype (Coleoptera: Dytiscidae: Hydroporinae: Bidessini)
FIGURES 7–12: (7–10): Habitus of: (7) Bidessus unistriatus (Goeze, 1777), neotype (male); (8) B. unistriatus, matt female from Rømø, Denmark; (9) B. minutissimus, male from Lerma, Italy; (10) Hydroglyphus geminus, male from Wallern, Austria; (11) median lobe of aedeagus in lateral view of neotype of B. unistriatus; (12) labels of neotype of B. unistriatus. Scale bar: 2.0 mm for habitus, 1.0 mm for aedeagus.
FIGURE 5 in Two new species of Psolus Oken from Brazil (Holothuroidea: Psolidae), with neotype designation and redescription of Psolus vitoriae Tommasi, 1971, and a key to the southwestern Atlantic and Magellanic species
FIGURE 5. (A–D) Psolus thandari sp. nov., holotype (MZUSP 593). (A) Dorsal view. Note the oral and anal valves and granules (white, black and grey arrows, respectively). (B) Detail of oral (left) and anal valves (right). (C) Detail of ambulacral feet in ventral view. Note the inner and outer rows of tube feet (black and white arrows, respectively). (D) Outline of the interradial plate (IR) and radial plate (R) of the calcareous ring. Note in D only the radial plate is notched. Scale bars: A, 3 mm; B, 0.5mm; C, 2 mm; D, 500 µm.
FIGURE 6 in Two new species of Psolus Oken from Brazil (Holothuroidea: Psolidae), with neotype designation and redescription of Psolus vitoriae Tommasi, 1971, and a key to the southwestern Atlantic and Magellanic species
FIGURE 6. (A–I) Psolus thandari sp. nov., holotype (MZUSP 593). SEM photomicrographs of the ossicles. (A) Scales from the dorsal region of the body (the arrow indicates the dorsal granules in top view). (B) Detail of the dorsal tubercle in lateral view (red arrow). (C) Plate from the dorsal region of the body. (D–E) Plates from the sole. (F) Smooth plate from the sole. (G– H) Knobbed rods from the tube feet. (I) End plate from tube feet. Scale bars: A, 250 µm, B, 100 µm, C–I, 50 µm.
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